* Your assessment is very important for improving the workof artificial intelligence, which forms the content of this project
Download 1ST CHAPTER Long-questions-basic-concept
Abundance of the chemical elements wikipedia , lookup
Chemical element wikipedia , lookup
Hypervalent molecule wikipedia , lookup
Chemistry: A Volatile History wikipedia , lookup
Analytical chemistry wikipedia , lookup
Electron configuration wikipedia , lookup
Debye–Hückel equation wikipedia , lookup
History of chemistry wikipedia , lookup
Computational chemistry wikipedia , lookup
Biochemistry wikipedia , lookup
Inductively coupled plasma mass spectrometry wikipedia , lookup
Physical organic chemistry wikipedia , lookup
Size-exclusion chromatography wikipedia , lookup
Chemical bond wikipedia , lookup
Molecular dynamics wikipedia , lookup
Isotopic labeling wikipedia , lookup
IUPAC nomenclature of inorganic chemistry 2005 wikipedia , lookup
Rutherford backscattering spectrometry wikipedia , lookup
Mass spectrometry wikipedia , lookup
Stoichiometry wikipedia , lookup
History of molecular theory wikipedia , lookup
1st year chemistry notes Chapter No. 1 Chapter No. 1 e.c Basic Concepts om BASIC CONCEPTS ww w.a llon line fre Atom: The term atom is derived from the Greek word “atoms” meaning indivisible. The smallest particle of an element which may or may not have independent existence is called an atom. For example ,the atoms of He,Ne and A r exist independently while the atoms of hydrogen ,nitrogen and oxygen do not have independent existence .An atom is composed of more than 100 subatomic particles such as electron, proton , neutron , hyperons , neutrino, antineutrino, etc .However ,electron ,proton and neutron are the fundamental particles of atoms. The atoms are the smallest particle of an element which can take part in a chemical reaction. Evidence of Atoms: Atoms are extremely small. It is not possible actually to see them even with a powerful optical microscope However ,the direct evidence for their existence comes from an electron microscope. It uses beams of electrons instead of visible light. The wavelength of electron is much shorter than that of visible light. With optical microscopes, a clear and accurate image of an object that is smaller than the wavelength of visible light cannot be obtained. It can only measure the size of an object up to or above 500 nm. However, objects of the size of an atom be observed in an electron microscope. Like light, the characteristics of an electron beam change when it passes through or reflects off atoms in the thin layers of solids. The electron beam takes a picture of atoms layers which can be magnified about 15 millions of times. An electron microscope photograph of a piece of graphite is shown in the figure. The bright bands in the image are layers of carbon atoms. (Picture) Fig Electron microscope photograph of graphite www.allonlinefree.com 1st year chemistry notes ww w.a llon line fre e.c om X-ray work has shown that the diameters of atoms are of the order 2x10 -10 m which is0.2 nm. Masses of atoms range from 10-27 to 10-25 kg. We can get an idea about the small size of an atom from the fact that a full stop may have two million atoms present in it. They are often expressed in atomic mass units (a.m.u). amu= 1.661x 10-24 g=1.661x10-27 kg Molecule: “The smallest particle of a pure substance which can exist independently is called a molecule.” A molecule may contain one or more atoms. The number of atoms present in a single molecule of an element is called atomicity. The molecules of elements can be monatomic, diatomic,Triatomic and polyatomic etc, if they contain one, two and three atoms respectively. A molecule of an element consists of one or more similar atoms . For example , He, Ar, O2,CL2, O3, P4, S8. A molecule of a compound consists of two or more different atoms. For example, HCI, H 2S, CO2, NH3, H2SO4,C12H22 O11. The sizes of molecules are bigger than atoms. Their sizes depend upon the number of atoms present in molecules and their shapes. A molecule having a very high molar mass is called a macromolecule. For example, hemoglobin is a macromolecule which is found in blood. Hemoglobin carries oxygen from lungs to all parts of the body. Each molecule of hemoglobin is made up of nearly 10,000 atoms. Hemoglobin molecule is 68,000 times heavier than a hydrogen atom. Ions: “The species which carry either positive or negative charge are called ions.” An ion may be a charged atom, group of atoms or molecules. Ions are formed by the gain or loss of electrons by neutral atoms or molecules. The number of protons in the nucleus never changes in the formation of ions. Examples: Na+, Ca2+ , NH , Cl-, O2- , NO ,CO -, N ,CO+,CH Cation “An ion that has a positive charge is called a “Cation”. They are formed when an atom of an element loses one or more electrons. A A + + eThe charge on a cation may be +1, +2 or +3 . The charge present on an ion depends upon the number of electrons lost by an atom. Energy is always required to form positive ions. The Formation of the positive ion is an endothermic process. The most common positive ions are formed by the metal atoms. The positive ions having group atoms are less common. Examples: Anion Na + , K + ,Ca2+, Mg 2+ , A13+ , Sn 4+ , NH , H3 O + www.allonlinefree.com 1st year chemistry notes “An ion that has a negative charge is called an anion.” They are formed when a neutral atom of an element gains one or more electrons. B+ e - B – Usually, energy is liberated when an electron is added to the isolated neutral atom. The formation of a uninegetive ion is an exothermic process. The most common negative ions are formed by the non-metal atoms. line fre e.c om Examples: F- ,CI - ,Br - ,I - , O 2- ,OH -, CO -,SO -, PO ,MnO , Cr2 O - , etc Molecular Ion:“An ion which is formed when a molecule loses or gains an electron is called a molecular ion.” Positive molecular ions are formed by removing electrons from neutral molecules. Negative molecular ions are formed when extra electrons are attached to neutral molecules. Cationic molecular ions are more abundant than anionic ions. Molecular ions can be generated by passing a beam of high-energy electrons , alpha particles or X-rays through molecules in gaseous state. The break down of molecular ions obtained from the natural products can give important information about their structure. ww w.a llon Examples: N , CO + , CH , N , etc Positive ions of molecules can be generated by bombarding the gas, or vapour of the substance with electrons. The molecular ions produced often break into fragments, giving several different kinds of positive ions. Thus the original molecule can give rise to a number of ions . Relative Atomic mass:“The mass of an atom of an element as compared to the mass of an atom of carbon-12 is called relative atomic mass.” An atom is an extremely small particle . The mass of an individual atom is extremely small in quantity . It is not possible to weigh individual atoms or even small number of atoms directly . We do not have any balance to weigh such an extremely small mass. That is why for atoms, the unit of mass used is the atomic mass unit (amu) and not measurement I.e, grams , kilograms ,pounds and so on. Atomic Mass Unit (amu): “A mass unit equal to exactly one-twelfth ( th)the mass of a carbon -12 atom is called atomic mass unit.” For atoms , the atomic mass unit (amu) is used to express the relative atomic because its mass of 12 units has been determined very accurately by using mass spectrometer . The relative atomic mass of C is 12,000 amu and relative atomic mass of H is 1.0078 amu . www.allonlinefree.com 1st year chemistry notes H N O Na Mg 1amu=1.66x10 -24 g. Relative Atomic Element mass 1.0078 amu A1 14.0067 amu S 15.9994 amu C1 22.9897 amu Cu 24.3050 amu U Relative Atomic mass 26.9815 amu 32.066 amu 35.453 amu 63.546 amu 238.0289 amu om Remember that: Element Table: Relative atomic masses of some elements llon line fre e.c Isotopes {Greek Isotopes means → same place} The atoms of the same element having the same atomic number but different atomic mass are called isotopes.” Isotopes of the same element have the same number of protons and electrons but different number of neutrons in their nuclei. They are different kind of atoms of the same element. Isotopes of the same element have the same chemical properties but slightly different physical properties; they have the same position in the periodic table because they have the same atomic number. For example, hydrogen has three isotopes H, Hand H called proteome, deuterium and tritium. Carbon has three isotopes ww w.a written as C , C, C and expressed as C-12, C-13 and C-14 . Chlorine has two , oxygen has three nickel has five , calcium has six ,palladium has six, cadmium has nine and tin has eleven isotopes . Relative Abundance of Isotopes: The isotopes of the elements have their own natural abundance. The properties of a particular element mostly correspond to the most abundant isotopes of that element. The relative abundance of the isotopes of elements can be determined by mass spectrometry .At present above 280 different isotopes of elements occur in nature. They include 40 radioactive isotopes. About 300 unstable radioactive isotopes have been produced artificially. Table: Natural abundance of some common Isotopes Element Hydrogen Carbon www.allonlinefree.com Isotopes 1 H, 2 H 12 C, 13 C Abundance(%) 99.985, 0.015 98.893, 1.107 1st year chemistry notes om 14 Nitrogen N , 15 N 99.634, 0.366 16 17 18 Oxygen O, O, O 99759. 0.037, 0.204 32 33 34 36 Sulphur S , S , S, S 95.0,0.76,4.22.0.014 35 37 Chlorine C1, C1 75.53, 24.47 19 18 Bromine Br , Br 50.54,49.49 Odd- Even Relationships: 1. The elements with even atomic number usually have larger number of stable isotopes. 2. The elements with odd atomic number almost never possess more than two stable isotopes. For example, the elements As, I and Au have only single isotopes. These elements are known as monoisotopic elements. The isotopes whose mass number is multiples of four are most e.c 3. F, ww w.a llon line fre abundant. For example, O, Mg, Si, Ca and Fe. They form nearly 50% of the earth‟s crust. 4. The isotopes with even mass number and even atomic number are more abundant and more stable. Out of 280 naturally occurring isotopes, 154 isotopes belong to this type. Remember that: most of the elements with even atomic number have even mass number whereas most of the elements with odd atomic number have odd mass number. Determination of relative atomic masses of isotopes by mass spectrometry: Mass Spectrometer: “An instrument which is used to measure the relative atomic masses and relative abundances of different isotopes present in a sample of an elements is called a mass spectrometer.” It measures the mass to charge ratio of atoms in the form of positive ions. Types of mass spectrometers 1. Aston’s mass spectrograph The first mass spectrometer known as mass spectrograph was invented by Aston in 1919. It was designed to identify the isotopes of an element on the basis of their atomic masses. The mass spectrograph operates on the same principle as a mass spectrometer. The main difference is that a mass spectrograph uses a photographic plate to detect ions instead of an electrical device. 2. Dumpster’s mass Spectrometer It was designed for the identification of elements which were available in solid state. Mass spectrometry www.allonlinefree.com 1st year chemistry notes ww w.a llon line fre e.c om “The use of mass spectrometer to identify different isotopes of an element by measuring their masses is called mass spectrometry.” The method involves analysis of the path of a charged particle in a magnetic field . Principle of mass spectrometry In this technique, a substance is first vaporized. It is then converted to gaseous positive ions with the help of high energy electrons. The gaseous positive ions are separately on the basis of their mass to charge (m/e) ratios. The results are recorded alacrity in the form of peaks. The relative heights of the peaks give the relative isotopes abundances. Working of mass spectrometer The solid substance under examination for the separation of isotopes is converted into vapors. Under a very low pressure 10 -6 to 10-7 torr, these vapors are allowed to enter the ionization chamber . In ionization chamber, the vapors are bombarded with fast moving electrons from an electron gun .The atoms present in the form of vapours collide with electrons. The force of collision knocked out electrons from atoms. Usually, one electron is removed form an atom. The atoms turn into positive ions. These positive ions have different masses depending upon the nature of the isotopes present in them. The positive ion of each isotope has its own m/e value. When a potential difference (E) of 500-2000 volts is applied between perforated accelerating plates, then these positive ions are strongly attracted towards the negative plate. In this way the ions are accelerated. These ions are then allowed to pass through a strong magnetic field of strength (H), which will separate them on the basis of their values. On entering the magnetic field the ions begin to move in a circular path. The path they take depends on the mass to charge ratios. The ions of definite value will move in the form of groups one after the other and fall on the on the electrometer. The electrometer is also called an ion collector. The electrometer develops the electric current. The mathematical relationships for is: = Where H is the strength of magnetic field, E is the strength of electrical field , r is the radius of circular path . www.allonlinefree.com 1st year chemistry notes If E is increased, by keeping H constant then radius will increase and positive ion of a particular value will fall at a different palace as compared to the first place. This can also be done by changing the magnetic field, Each ion sets up a minute electrical current. The strength of the current thus measured gives the e.c om relative abundance of ions of ions of a definite value. Similarly the ions of other isotopes having different masses are made to fall on the collector and the current strength is measured. The current strength in each case gives the relative abundance of each of the isotopes. The same experiment is performed with C-12 isotopes and the current strength is compared. This comparison allows us to measure the exact mass number of the isotope. The line fre following figure shows the separation of isotopes of Ne. Smaller the value of an isotope, the smaller the radius of curvature produces b0 the magnetic field according to above equation. llon (Picture) Fig: A simple Mass Spectrometer ww w.a In modern Spectrometers, each ion hits a detector; the ionic current is amplified and is fed to the recorder. The recorder makes a graph showing the relative abundance of isotopes plotted against the mass number. A computer plotted graph for the isotopes of neon is shown in the following figure. (picture) Fig : (Computer plotted graph for the isotopes of neon) The separation of isotopes can be done by methods based on their properties. Some important methods are: gaseous diffusion, thermal diffusion, distillation, ultracentrifuge, electromagnetic separation and laser separation. Fractional Atomic mass: Atomic masses of elements are not exact numbers. Almost all elements have fractional values of atomic masses. This is because the atomic mass of an www.allonlinefree.com 1st year chemistry notes Fractional abundance =Percent abundance x Or Percent abundance = Fractional abundance x 100 fre 3. e.c om element is an average mass based on the number of isotopes of the element and their natural abundance. Natural abundances of atoms are given as atomic percentages. The mass contributed by each isotope is equal to fractional abundance multiplied by the isotopic mass. The average or fractional atomic mass for the element is obtained by taking the sum of the masses contributed by each isotope. In general. 1. Fractional atomic mass of an element = (fractional abundance)( Isotopic mass) . 2. By the symbol sigma , means “take the sum of the quantities . 20 21Ne 22 90.92x ww w.a Ne 0.9092x20=18.1840 llon line Example 1: A sample of neon is found to consist of the percentage of 90.92%,0.26% and 8.82% respectively . Calculate the fractional atomic mass of neon. Solution: The mass contribution for neon isotopes are: Isotope Fractional abundance Isotopic mass Mass contribution =0.9092 21 20 0.0026x21=0.0546 Ne 22 0.0882x22=1.9404 Average or fractional atomic mass of neon =20.179 =20.18amu : Answer Hence the fractional atomic mass of neon is 20.18 amu. Remember that no individual neon atom in the ordinary isotopic mixture has mass of 20.18amu .However Alternatively, the problem may by solved by applying the formula: Fractional atomic mass = (fractional abundance)(isotopic mass) =(fractional abundance of 20 Ne ) (isotopic mass of 20 21 Ne)+(fractional abundance of Ne ) (isotopic mass of 21 Ne)+(fractional abundance of 22Ne )(isotopic mass of 22 Ne). =(0.9092)(20)+(0.0026)(21+(0.0882)(22) =18.1840+0.0546+1.9404 www.allonlinefree.com 1st year chemistry notes =20.179 = 20.18 amu Answer ww w.a llon line fre e.c om Analysis of a compound _Empirical and molecular Formulas Both the empirical and molecular for a compound are determined from the percentage compositions of the compound and molecular mass of the compound obtained experimentally . The percentage of an element in a compound is the number of grams of the element present in 100 grams of the compound. 1. Percentage composition of a compound whose chemical formula is not known. When a new compound is prepared all the elements present in the compound are first identified by qualitative analysis. After that, the mass of each element in a given mass of the compound is determined by quantitative analysis. From this data, the percentage of each element in the compound is obtained by dividing the mass of the element present in the compound by the total mass ot the compound and when multiplying to 100. %of an element = x100 Once the percentage composition is determined experimentally the empirical formula can be calculated . The molecular mass of the compound is determined by experimental methods. From empirical formula and molecular mass , the molecular formula for the compound is determined. 2. Percentage Composition of a Compound whose chemical formula is known. The percentage composition of a compound can be determined theoretically,that is , without doing an experiment if we know the chemical formula of the compound .The relation which can be used for this purpose is: %of an element = x100 Remember that the percentage composition of a pure compound does not change. Example2: 8.657 g of a compound were decomposed into its elements and gave 5.217 g of carbon, 0.962 of hydrogen, 2.478 g of oxygen . Calculate the percentage composition of the compound under study. Solution: Given: Mass of compound = 8.657 g Mass of carbon =5.217 g Mass of hydrogen =0.962 g Mass of oxygen =2.478 g Formula used: (i) % of carbon= = =60.26% Answer (ii) % of hydrogen= www.allonlinefree.com 1st year chemistry notes = =11.11% Answer (iii) %of oxygen = ww w.a llon line fre e.c om = = 28.62% Answer Hence in 100 grams of the compound ,there are 60.26 grams of carbon, 11.11 grams of hydrogen and 28.62 grams of oxygen. Empirical Formula “ A chemical formula that gives the smallest whole number ratio of atoms of each elements present in a compound is called an empirical formula .” For example, in an empirical formula of a compound , A x By, there are x atoms of element A and y atoms of element B. The empirical formula can be determined from the percentage composition of the compound or from the experimentally determined mass relationships of elements that make up the compound. Calculation of Empiriacal Formula Empirical formula of a compound can be calculated by using the following steps: 1. Find the percentage composition of the compound. 2. Find the number of gram-atoms of each element .For this purpose divide the percentage of each element by its atoms mass. 3. Find the atomic ratio of each element. To get this, divide the number of gram-atoms (Moles) of each element by the smallest number of gram-atoms (moles). 4. Make the atomic ratio a simple whole number atomic ratio of not so multiply it with a suitable number. 5. Write the empirical formula having various atoms present in the above ratio. Example3: Ascorbic acid (vitamin C) contains 40.92% carbon, 4.58% hydrogen and 54.5% oxygen by mass. What is the empirical formula of the ascorbic acid? Solution: Calculation of empirical formula: On writing various steps in tabular from, we have Element % age Atomic mass C 40.92 12.0 Whole number ratio 1x3=3 H 4.58 1.33x3=4 1.008 www.allonlinefree.com No of gramatoms Atomic ratio 1st year chemistry notes O 54.5 16.0 1x3=3 ww w.a llon line fre e.c om Empirical Formula = C3 H4 O3 Answer Empirical Formula From Combustion analysis The empirical formula of organic compounds which only contain carbon, hydrogen and oxygen can be determined by combustion, the two products of combustion will be CO2 and H2O.These products of combustion are separately collected and their masses are determined. Combustion Analysis A weighed sample of the organic compound is placed in the combustion tube fitted in a furnace. An excess of pure oxygen is supplied to burn the compound. The carbon in the compound is converted to CO 2 and hydrogen to H2O vapors. These gases are passed through two pre-weighted absorbent tubes. One of the tubes contain Mf(CIO4)2 which absorbs water and the other contains 50% KOH which absorbs CO2. The increase in mass of potassium hydroxide tube gives the mass of CO2. From these masses of CO2 and H2O and the mass of the organic compound. the percentages of carbon and hydrogen in the compound can be calculated by using the following formulas: % of C= %pf H= The percentage of oxygen is obtained by the method of difference % of oxygen = 100-(%pf carbon +%of hydrogen) (Picture) Fig Combustion Analysis Example 4: A sample of liquid consisting of carbon, hydrogen, and oxygen was subjected to combustion analysis .0.5439 g of the compound gave 1.039g of H 2O. Determine the empirical formula of the compound. Solution: (i) Calculations of percentage composition: Mass of organic compound =0.5439 g Mass of CO2 =1.039g Mass of H2O 0.6369g % of C= = % of H = www.allonlinefree.com 1st year chemistry notes = % age of O= 100-(52.10+13.11)=34.79% (ii) Calculation of empirical formula: On writing the various steps in a tabular form, we have, H 13.11 1.008 O 34.79 16.0 atoms ratio formula om 52.10 12.0 Empirical e.c C Atomic C2 H6 O fre mass No of gram line Element %age Atomic Molecular Formula Empirical Formula = C2 H6 O llon “A chemical formula of a substance that shows the actual number of atoms of different elements present in the molecule is called a molecular formula” ww w.a The molecular formula of a compound can only be determined if the empirical formula and the molecular mass of the compound are known. Examples: H2 O2 (hydrogen peroxide) , C6 H6 (benzene ) , C6 H12 O6 ( glucose ). The empirical formulas of hydrogen peroxide, benzene and glucose are HO, CH and CH2 O respectively. Some of the examples of the compounds having the same empirical and molecular formulas are: H2O, CO 2 , NH3 , CH 4 and C12 H22 O11. The empirical formula and molecular formula for a covalent compound are related in this way: Molecular formula =n x (Empirical formula) www.allonlinefree.com 1st year chemistry notes The value of „n‟ must be a whole number. Actually the value of “n” is the ratio of molecular mass and empirical formula mass of a substance. n= When „n‟ is unity, the empirical formula becomes the molecular formula. Example 4: The combustion analysis of an organic compound shows it to contain om 65.44% carbon , 5.50% hydrogen and 29.06% oxygen . What is the empirical formula of the compound? If the molecular mass of this compound is 110.15 Solution: e.c .Calculate the molecular formula of the compound. (i) Calculation of empirical formula: C 65.44 12.0 H 5.50 O 29.06 16.0 Empirical atoms ratio formula ww w.a 1.008 Atomic line mass No of gram llon Element %age Atomic fre On writing the various steps in a tabular form , we have , (ii) C2 H6 O Calculation of molecular formula : Empirical formula mass = 36+3.024+16=55.04 Molecular mass=110.15 N== Molecular formula = n x (empirical formula) = 2 ( C3H3O) =C6 H6 O2 Concept of mole Gram atom (mole) www.allonlinefree.com 1st year chemistry notes “The atomic mass of an element expressed in grams is called a gram atom.” It is also known as a gram mole or a mole of element . Number of gram atoms (moles) of am element = Example : =1.008g 1 gram atom of carbon (C) =12.000g 1 gram atom of uranium (U) =238.0g e.c om 1 gram atom of hydrogen (H) 1 gram atom magnesium (Mg) =24.000g fre It means that one gram atoms of different elements have different mass in them . It also shown that one gram atom of magnesium is twice as heavy as an line atom of carbon Gram molecule (Gram mole or mole) “The molecular mass of a substance expressed in grams is called a gram llon molecule.” Examples : ww w.a No. of gram molecules (moles) of a molecular substance = 1 gram molecule of oxygen (O2) = 32g 1 gram molecule of hydrogen (H2) =2.016g 1 gram molecule of water (H2O) =18.0g 1 gram molecule of sulphuric acid (H2 SO 4)=98.0g 1 gram molecule of sucrose (C12 H22 O 11) =342.0g It means that one gram molecules of different molecular substances have different masses. Gram-formula (gram – mole or mole) “The formula mass of an ionic compound expressed in grams is called a gram formula of the ionic compound” www.allonlinefree.com 1st year chemistry notes Since ionic compounds do not exist in molecular form , therefore , the sum of atomic masses individual ions gives the formula mass. No .of gram –formula (moles ) of a substance = =58.5g 1 gram-formula of KOH =56.0g 1 gram-formula of Na2 CO3 =106g 1 gram-formula of Ag NO3 =170g fre Gram-Ion (Mole) e.c 1 gram-formula of Na C1 om Examples: “ The atomic mass , molecular mass formula mass or ionic mass of the line substance expressed in grams is called a mole.” Number of moles= Examples 6: Calculate the gram atoms (moles)in 0.1g of sodium (b) 0.1 kg of silicon (a) Given: Mass of sodium =0.1g Atomic mass of sodium =23g mole -1 ww w.a Solution: (b) =0.1g llon (a) No of gram atoms (moles ) of Na = =4.3x10-1 mol Given: Mass of silicon =0.1kg Atomic mass of silicon =28.086 g mol-1 =0.1x1000=100 g No of gram atoms (moles)of silicon = = 3.56 mol Example 7: Calculate the mass of 10-3 moles of Mg SO 4. www.allonlinefree.com = 1st year chemistry notes Solutions: = 10-3 mol Given: No of moles of MgSO4 =24+32+64=120g mol -1 Formula mass of MgSO4 Formula Used: Mass of substance =No of moles of substance x Molar om mass = 10-3 mol x 120 g mol -1 Mass of Mg SO 4 e.c = 0.12g Avogadro ,s Number (Avogadro Constant), NA) fre “The number of atoms, molecules and ions present in one gram – atom , one gram-molecule and one gram –ion respectively is called Avogadro ,s number line .” Avogadro, s number is 6.02x1023.It is a constant .One mole of any Examples: 1 mole of hydrogen (H) 1 mole of water (H2O) of H2O =1.008g of H =23g of Na ww w.a 1 mole of sodium(Na) llon substance always contains 6.02x10 23 Particles. =18g of H2O 1 mole of glucose (C6 H12 O6)=180g of C6 H12 O6 H12 O6 1 mole of SO - 1 mole of NO =6.02x1023 atoms of H =6.02x1023 atoms of Na =6.02x1023 molecules = 6.02x1023molecules of C6 - =6.02x1023 ions of SO =62g of NO =6.02x1023 ions of NO = 96 of SO - One mole of different compounds has different masses but the same number of particles . Important Relationships www.allonlinefree.com 1st year chemistry notes The following are some useful relationships between the amounts of substances mass and the number of particles present in them . 1. No of atoms of an element = 2. No of molecules of an compound = 3. No of ions in an ionic specie 4. Number of particles om =Number of moles x Avogadro Mass of atoms 6. = Mass of molecules = e.c number 5. = fre Examples 8: How many molecules of water are there in 10.0 g ice ? Also calculate the number of atoms of hydrogen and oxygen separately , the total line number of atoms and the covalent bonds present in the sample. Solution: (i) Calculation for the number of molecules of water Mass of water (ice) = 10.0g llon Molar mass of H2 O =2+16=18 g mol-1 No of water molecules = ? ww w.a Number of molecules of H2 O = x NA = (ii) 3.34x1023 molecules Calculation for the number of atoms of hydrogen and oxygen and total number of atoms: No of water molecules Now = 3.34x1023 1 Molecule of H2 O contains H atoms =2atom 3.34x1023 molecules of H2O contains H atoms =2x3.34x1023 atoms of H =6.68x1023 atoms of H Now, www.allonlinefree.com 1 Molecules of H2 O contains O atoms =1.atom 1st year chemistry notes 3.34x1023 Molecules of H2O contains O atoms =1x3.34x1023 atoms of O =3.34x1023 atoms of O Total number of atoms e.c (iii) om +3.34x1023 =6.68x 1023 =(6.68+3.34) x1023 10.02x1023 atoms Calculation for number of covalent bonds: =2 fre I Molecule of H2O contains the number of covalent bonds 3.34x1023 molecules of H2O contains, the number of covalent bonds line =2x3.34x1023 =6.68x1023 Examples 9: 10.0grams of H3PO4 have been dissolved in excess of water to llon dissociate it completely into ions. Calculate. (a) Number of molecules in 10.0g of H3 PO4 ww w.a (b) Number of positive and negative ions in case of complete dissociation in water. (c) Masses of individual ions. (d) Number of positive and negative charges dispersed in the solution. Solution: (a) Calculation for the number of molecules in H3PO4: Mass of H3PO4 =10g Molar mass of H3PO4 = 3+31+64=98g mol-1 No . of molecules of H3PO4 =xNA = =6.14x1022 molecules www.allonlinefree.com 1st year chemistry notes (b) Calculation for the number of positive and negative ions in H3PO4 : H3PO4 3H+ +PO - Now,1 molecule of H3PO4 contains positive H+ ions =3 =3x6.14x1022+ve H+ om 6.14x1023 molecule of contains negative PO - ions ions e.c ions =1.842x1023+ve H+ Now, 1 molecule of H3 PO4 contains negative PO - ions=1 =6.14x1022 –ve PO Calculation for the masses of individual ions: No, of H+ ions =1.842x1023 ions Ionic mass of H+ =1.0008 g mol-1 NA =6.02x1023 ions mol-1 Mass of H+ ions = = =0.308 g - ions ions llon line (c) fre 6.14x1023 molecule of contains negative PO - ions =1x6.14x1022-ve PO No of PO - ions ww w.a Ionic mass of PO - ion NA =6.14x1022 ions =31+64=95g mol -1 =6.02x1023 ions mol-1 Mass of PO - = (d) Calculation for the number of positive and negative charges dispersed in the solution: 1 molecule of H3 PO4 gives positive charges in solution =3 6.14x1022 molecule of H3 PO4 gives positive charges in solution =3x6.14x1023 =1.842x10 23 +ve charges Since the solution is always electrically neutral, therefore, number of positive and negative charges in solution is always equal Thus in the solution: No. of positive charges =No of negative charges Hence, the number of negative charges in the solution = 1.842x1023 www.allonlinefree.com 1st year chemistry notes (i) Calculation for the number of moles of an ideal gas at fre Solution: STP: e.c om Molar Volume “The volume , 22.414 dm3 occupied by one mole of an ideal gas at STP is called molar volume”. With the help of this information, we can convert the mass of a gas at STP into its volume and vice versa, Hence. 1. 1 mole of a gas at STP =22.414 dm3 2.6.02x1023 molecules of a gas at STP =22.414 dm3 3. 22.414 dm3 of a gas at STP =1 Mole 3 It should be remember that 22.414 dm of two gases has a different mass but the same number of molecules. The reason is that the masses and the sizes of the molecules do not affect the volumes. Example 10: A well known ideal gas is enclosed in a container having volume 500 cm3 at STP. Its mass comes out to be 0.72 g .What is the molar mass of this gas. ww w.a llon line Volume of ideal gas at STP =500 cm3 =0.5dm3 Now, 22.414 dm3 of ideal gas at STP = 3 0.5dm of ideal gas at STP =0.0223moles (ii) Calculation for the molar mass of the gas: Mass of gas =0.72g Number of moles of gas =0.0223 moles Molar mass of gas =? Molar mass of gas = = =32.28 g mol -1 Stoichiometry: “ The study of the quantities relationships between reactants and products in a balanced chemical equation is called Stoichiometry.” It is based on the chemical equation and on the relationship between mass and moles. Stoichiometry Amount “The amount of any reactant or product as given by the balanced chemical equation is called stoichiometric amount.” Assumptions All Stoichiometry calculations are based on the following three assumptions: 1. Reactants are completely converted into products. 2. No side reaction accurse. www.allonlinefree.com 1st year chemistry notes While doing Stoichiometry calculations, the law of conservation of mass and the law of definite proportions are obeyed. Types of Stoichiometric Relationships The various types is useful in determining an unknown mass of reactant or product from the given mass of one substance in a chemical reaction. 2. Mass-mole relationship or mole-mass relationship Such relationship is useful in determining the number of moles of a reactant or product from the given mass of one substance and vice-versa Number of moles= Mole-mass relation: om 3. ww w.a llon line fre e.c Remember that m is mass and MM is molar mass 3. Mass volume relationship Such relationship is useful in determining the volume of a gas from the given mass of another substance and vice-versa . This relationship allows us to calculate the volume of any number of moles of a gas at STP. Mole-volume relation: Number of moles= Example 11: Calculate the number of grams of K3 PO4 and water produced when 14g of KOH are reacted with excess of H2SO4 . Also, calculate the number of molecules of water produced. Solution: (i) Calculation for the number of grams of K2SO4: Mass of KOH =14 g Molar mass of KOH =39+16+1=56g mol-1 No . of moles KOH = 0.25mol Equation: 2KOH(eq) + H2SO4(aq) 2moles Now, (ii) 2KOH (aq) + H2SO4(aq) K2SO4(aq) +2H2O(1) 2moles of KOH =1 mole of K2 SO4 0.25 mole of KOH = = 0.125 moles of K2SO4 Molar mass of K2SO4 =78+32+64=174g Mol-1 Mass of K2SO4 Produced =No of moles x molar mass Mass of K2SO4 Produced =0.125molx 174 g mol-1 Mass of K2SO4 Produced =21.75g Calculation for the number of molecules of water: www.allonlinefree.com 1st year chemistry notes 0.25mol Equation: 2KOH(eq) + H2SO4(aq) 2moles K2SO4(aq) +2H2O(1) 2 moles of KOH =2moles of H2O 0.25moles of HOH = Mass of H2O produced =0.25mol x 18g mol-1=4.5g Number of molecules of H2O =No of moles x NA =0.25mol x6.02x 1023 molecules mol-1 =1.51x1023 molecules Examples 12: Mg metal reacts with HCI to give hydrogen gas. What is the minimum volume of HCI solution (27%by weight ) required to produce 12.1 g of H2.The density of HCI solution if 1.14g cm-3 Mg(s) + 2HCI(aq) Mg C12(aq) +H2(g) Solution: Mass of H2 =12.1g Molar mass of H2 =2.016g mol-1 Mg(s) + 2HCI(aq) 1 mole of H2 Moles of H2 =2 mole of HCI = =12moles Molar mass of HCI =1+35.5=36.5g mol-1 Mass of HCI = No. of moles x molar mass =12mol x 36.5g mol-1 =438 g %age of HCI solution =27 ww w.a Now, llon 2moles = =x 6moles Mg C12(aq) +H2(g) line No. of moles of H2 fre e.c om Now , 27 g of HCI are present in a mass of solution =100g 438g of HCI are present in a mass of solution= =1622.2g Mass of HCI solution Density of HCI solution www.allonlinefree.com =1622.2g =1.14g cm -3 1st year chemistry notes Volume of HCI solution = = =1423 cm3 Limiting Reactant “A reactant that controls the amount of the product formed in a chemical om reaction is called a limiting reactant.” A limiting reactant gives the least number of moles of the product. e.c Generally, in carrying out chemical reactions m one of the reactants is deliberately used in excess quantity . This quantity exceeds the amount theoretically required fre by the balanced chemical wquation.This is done to ensure that the other expensive eractant is completely used up in the reaction .Sometimes, this strategy is applied line to increase the speedof reactions. In this way excess reactant is left behind at the end of reaction and the other reactant in completely consumed .This reactant which is completely used up in the reaction is Known as the limiting reactant .Once this llon reactant is used up , the reactant stops and no additional product is formed .Hence the limiting reactant controls the amount of the product formed in a chemical Example: ww w.a reaction . www.allonlinefree.com 1st year chemistry notes Identification of Limiting Reactant To identify a limiting reactant, the following three steps are performed. 1. Convert the given amount of each reactant to moles. 2. Calculate the number of moles of product that could be produced form each reactant by using a balanced chemical equation. om Example 13: NH3 gas can by prepared by heating together two solids NH4C1 and Ca (OH)2. If a mixture containing 100g of each solid is heated then. Calculate the number of grams of NH3 produced. (b) Calculate the excess amount of reagent left unrelated. Solution: (a) CaC12(s) +2NH3(s) + 2H2O(1) fre 2NH4C1(s) + Ca(OH) 2(s) e.c (a) Calculation for the number of grams of NH3 =100g line Mass of NH4 C1 Mass of Ca(OH)2 =100g =14+4+35.5=53.5g mol-1 Molar mass of NH4 C1 =40+34=74g mol -1 llon Molar mass of Ca(OH)2 = ww w.a No of moles of NH4 C1 No of moles of Ca(OH)2 1.87 moles .35 moles 2NH4C1(s) + Ca(OH) 2(s) CaC12(s) +2NH3(s) + 2H2O(1) 2moles 1mole Now, 2molesof NH4CI 1 mole of Ca(OH)2 1.35 www.allonlinefree.com moles 2moles =2moles of NH3 1.87 moles of NH4CI Also, = of = =2moles of NH3 Ca(OH)2 = 1st year chemistry notes =2.70 moles of NH3 Since NH4C1 produces the least number of moles of NH3 , therefore, it is limitation reactant. No of moles of NH3 produced =1.87moles Molar mass of NH3 =14+3=17g mol-1 =No of moles NH3xmolar mass of om Mass of NH3produced NH3 e.c =1.87mol x17g mol-1 =31.79g Calculation for the excess amount of reagent left un reacted fre (b) calculation as follows: Now, 2moles of NH4C1 =1 mole of Ca(OH)2 = llon 1.87 moles of NH4C1 line The reactant, Ca(OH)2 is used in excess , its amount left un reacted can be =0.935moles of Ca(OH)2 ww w.a Amount of excess Ca(OH)2=Amount of Ca(OH)2 taken-amount of Ca(OH)2reacted =1.35-0.935=0.415moles Mass of uncreated Ca(OH)2 =No of moles x Formula mass =0.415 mol x74 g mol -1 =30.71g It means we should mix 100g of NH4C1with 69.29g of Ca(OH)2to get 1.87 moles of NH3.. Yield “The amount of the product formed in a chemical reaction is called the yield. Theoretical Yield www.allonlinefree.com 1st year chemistry notes “The amount of the product calculated from the balanced chemical equation is called the theoretical yield of the product .’’ It is the maximum amount of the product that can be produced by a given amount of a reactant according to balanced chemical equation . In most chemical reactions the amount of the product is less than the theoretical yield. om Actual yield “The amount of the product actually abtained in a chemical reaction is e.c called the actual yield of the product .” The actual yield of the product is always less than the theoretical yield of fre the product. Causes of less actual yield line In most chemical reactions, the actual yield is always less than the theoretical yield of the product due to the following reasons: 1. A practically inexperienced worker cannot get the expected yield 2. llon because of many short comings. Product may be lost during the processes like filtration, separation ww w.a by distillation , separation by a separating funnel , washing ,drying and crystallization if not properly carried out. 3. 4. 5. Side reaction may occur which reduce the amount of the product. The reaction may not go to completion. There may have been impurities in one or more of the reactants. Percentage yield of product A chemist is usually interested in the efficiency of a reaction. The efficiency of a reaction is expressed by comparing the actual and theoretical yields in the form of the percentage yield. %age yield of product= www.allonlinefree.com 1st year chemistry notes Example 14: When lime stone,CaCO3 is roasted , quicklime, CaO is produced according to the following equation. The actual yield of CaO is 2.5kg, when 4.5gk of lime stone in roasted .What is the percentage yield of this reaction. CaC(s) +CO2(g) Solution: Actual yield of CaO =2.5kg =2500g Mass of lime stone CaCO3 =4.5kg =4500g =40+12+48=100g mol-1 Molar mass of CaCO3 = 40+16=56g mol -1 e.c Molar mass of CaO 45000g CaCO3(s) CaO(s) +CO2(s) 56g fre 100g 100g of CaCO3 4500g of CaCO3 =56g of CaO line Now , om CaCO3(s) llon Theoretical yield of CaO = =2520g pf CaO =2520 Q1. ww w.a %yield = = =99.21% EXERCISE Select the most suitable answer from the given ones in each question. (i) The mass of one mole of electrons is (a) Properties which depend upon mass (b) Arrangement of electrons in orbital (c) Chemical properties (d) The extent to which they may be affected in electromagnetic field www.allonlinefree.com 1st year chemistry notes (ii) which of the following statements is not true? (a) isotopes with even atomic masses are comparatively abundant (b) isotopes with odd atomic masses and even atomic number are comparatively abundant atomic masses are average masses of isotopes. om (c) (d) Atomic masses are average masses of isotopes Many elements have fractional atomic masses, this is because The mass of the atom is itself fractional (b) Atomic masses are average masses of isobars (c) Atomic masses are average masses of isotopes. fre (a) line (iii) e.c proportional to their relative abundance (d) Atomic masses are average masses of isotopes proportional to their relative abundance llon (iv) The mass of one mole of electrons is a 008mg(b) 0.55mg (c) 0.184mg (d) 1.673mg ww w.a (v) 27g of Al will react completely with how much mass of O2 to produce A12O3 (a) 8 g go oxygen (c) (vi) 32g of oxygen (viii) (d) 16g of oxygen 24g of oxygen The number of moles of CO2 which contain 8.0 g of oxygen . (a) (vii) (b) 0.25 (b) 0.50 (c) 1.0 (d) The largest number of molecules are present in (a) 3.6g of H2 O (b) 4.8g of C2H5 OH (c) 2.8 g of CO 5.4g of N2O5 (d) One mole of SO2 contains (a) www.allonlinefree.com 6.02x1023 atoms of oxygen 1.50 1st year chemistry notes (b) 18.1x1023 Molecules of SO2 (c) 6.02x1023 atoms of sulphur (d) 4 gram atoms of SO2 (a) 2.24 dm3 (c) 1.12 dm3 22.4dm3 (b) 112 cm3 (d) A limiting reactant is the one which (a) is taken in lesser quantity in grams as compared to other (b) is taken in lesser quantity in volume as compared to the e.c (x) The volume occupied by 1.4 g of N2at STP is om (ix) fre reactants reactants © give the maximum amount of the product which is required (e) give the minimum amount of the product under Q2: (ii)d (iii)d (iv)b (v)d (vi)a (vii)a (viii)c (ix)c ww w.a (x)d (i)a llon consideration Ans: line other Fill in the blanks : (i) (ii) The unit of relative atomic mass is----------- The exact masses of isotopes can be determined by ------------ spectrograph. (iii) The phenomenon of isotopes was first discovered by -------------- (iv) Empirical formula can be determined by combustion analysis for those compound which have-----------and -----------in them. (v) A limiting reagent is that which controls the quantities of ------------ www.allonlinefree.com 1st year chemistry notes (vi) I mole of glucose has-----------atoms of carbon ---------------of oxygen and ----------of hydrogen. (vii) 4g of CH4 at Oo C and I am pressure has ---------molecules of CH4 . (viii) Stoichiometry calculations can by performed only when ----------- amu (ii) mass (iii) (v) 1.505x1023 (vi) fre (viii) conservation Indicate true or false as the case my be: (i) Neon has three isotopes and the fourth one with atomic mass line Q3: carbon, hydrogen Products 6x6.02x1023,6x6.02x1023,12x6.02x1023 (vii) Soddy (iv) e.c Ans: (i) om --law is obeyed. 20.18 amu. (ii) Empirical formula gives the information about he total number (iii) During combustion analysis Mg(CIO4)2 is employed to absorb ww w.a water vapors. (iv) llon of atoms present in the molecule Molecular formula is the integral multiple of empirical formula and the integral multiple can never be unity. (v) The number of atoms in 1.79 g of gold and 0.023g of sodium are equal. (vi) The number of electrons in the molecules of CO an dN2 are 14 each, so 1 mg go each gas will have same number of electrons. (vii) Avogadro‟s hypothesis is applicable to all types of gases, i.e., ideal and non-ideal . (viii) Actual yield of a chemical reaction may by greater than the theoretical yield. www.allonlinefree.com 1st year chemistry notes Ans. (i) False (ii) False (iii) True (v) False (vi) true False (viii) Q4: (vii) (iv) false False What are ions? Under What condition are they produced ? can you explain the places of negative charge in PO , MnO and Cr2 O the negative charge resides on singly covalent om Ans: In PO , MnO and Cr2 O bonded oxygen because it contains seven electrons three electron pairs and one e.c electron from covalent bond in its cuter most shell. (Picture) (a) What are isotopes? How do you deduce the fractional atomic fre Q4: masses of line Elements form the relative isotopes abundance? Give two examples in support of your answer. How does a mass spectrograph show the relative aboundace of llon (b) isotopes of an element? © What is the justification of two strong peaks in the mass spectrum Ans ww w.a for bromine; while for iodine only one peak at 127 amu , is indicated? The two strong peak in the mass spectrum for bromine represent two different isotopes of bromine having nearly equal natural abundances. Only one peak at 127 amu in the mass spectrum for iodine indicates that it has only one isotope of atomic mass 127 amu. Remember that the peak heights are proportional to the natural abundances of the isotopes in the given sample , the larger the height of the peak, the greater is the natural abundance of the isotopes in the sample. www.allonlinefree.com 1st year chemistry notes Q5: Silver has atomic number 47 and has 16 known isotopes but two occur naturally I,e, Ag _____107 . and Ag _____109 . Given the following mass spectrometric data, calculated the average atomic mass of silver, Isotopes mass (amu) percentage abundance 107 Isotopes 48.16 The mass contribution for silver are: Fractional abundance isotopic mass Ag 109Ag mass 107 0.5184x107=55.4688 line fre contribution 107 108.90476 e.c Solution: Ag 51.84 om 109 Ag 106.90509 0.4816x109=52.4944 107 Fractional atomic mass of silver =107.9632 Q6: llon Hence the fractional atomic mass of silver is =107.9632 Ans Boron with atomic number 5 has two naturally occurring isotopes. Calculate the percentage abundance of Solution: ww w.a information. 10 B and 11 B from the following Average atomic mass of boron =10.81 amu Isotopic mass of 10B =10.0129 amu Isotopic mass of 11B =11.0093 Let, the fractional abundance of 10B =x The fractional abundance of 11B =1-x Remember that the sum of the fractional abundances of isotopes must be equal to one, now, The equation to determine the atomic mass of element is (fractional abundance ) (isotopic mass ) (fractional abundance of 10B)(isotopic mass of 10B )+(fractional abundance of 11B) (isotopic mass of 11B) www.allonlinefree.com 1st year chemistry notes =Average atomic mass of Boron (x)(10.0129)+(1-x)(11.0093) =10.81 10.0129x+11.00093x =10.81 10.0129x-11.00093x =10.81-11.0093 -0.9964x =-0.1993 e.c om x = 10 Fractional abundance of B =0.2000 Fractional abundance of 11B =(1-0.2000)=0.8000 By percentage the fractional abundance of isotope is %of 10B =0.2000x100 =20% Answer % of 11B (i) Gram atom molecular mass (iv) volume (v) Avogadro‟s number Gram molar (vii) Percentage yield (c) 23 g of sodium and 238g of uranium have equal number of atoms in Mg atom is twice heavier than that of carbon ww w.a (b) llon Justify the following statements: (a) the (viii) Gram molecular mass (iii) Gram ion (vi) Stoichiometry Q8: (ii) fre Define the following terms and give three examples of each. line Q7: =0.8000x100 =80%Answer 180g of glucose and 342 g of sucrose have the same number of molecules but different number of atoms present in them. (d) 4.9g of H2 SO4 when completely ionized in water , have equal number of positive and negative charges but the number of positively charged ions are twice the number of negatively charged ions. (e) One mg of K2 Cr O4 has thrice the number of ions than the number of formula units when ionized in water. (f) Two grams of H2 , 16 g of ch4 and 44g of CO2 occupy separately the volumes of 22.414 dm3 , although the sizes and masses of molecules of three gases are very different from each other. www.allonlinefree.com 1st year chemistry notes Solution: (a) 23g of Na =1 mole of Na =6.02x1023 atoms of Na 238g of U =1 mole of U =6.02x1023 atoms of U. Since equal number of gram atoms(moles) of different elements contain om equal number of atoms. Hence , 1 mole (23g ) of sodium and 1 mole (238)g of uranium contain equal number of atoms , i , e ,6.02x1023 atoms. Since the atomic mass of Mg (24) is twice the atomic mass of carbon e.c (b) (12) therefore, Mg atom is twice heavier than that of carbon. Or fre Mass of 1 atom of Mg= Mass of 1 atom of C = line Since the mass of one atom of Mg is twice the mass of one atom of C , therefore, Mg atom is twice heavier than that of carbon. (c) 180 g of glucose = 1 mole of glucose =6.02x1023 molecules of sucrose llon glucose 342 g og sucrose=1mole of sucrose =6.02x1023 molecules of ww w.a Since one mole of different compounds has the same number of molecules. Therefore 1 mole (180g) of glucose and I mole (342g) of sucrose contain the same number (6.02x1023)of molecules. Because one molecule of glucose , C6H12O6 contains 45 atoms whereas one molecules of glucose, C 12 H22 O11 contains 24 atoms. Therefore , 6.02x1023 molecules of glucose contain different atoms as compound to6.02x1023 molecules of sucrose. Hence , 180 g of glucose and 342g og sucrose have the same number of molecules but different number of atoms present in them. (d) H2 SO4 www.allonlinefree.com 2H+ + SO 1st year chemistry notes When one molecules of H2 SO4 completely ionizes in water it produces two H+ ion and one SO ion ,.Hydrogen ion carries a unit positive charge whereas SO ion carries a double negative charge. To keep the neutrality , the number of hydrogen are twice than the number of soleplate ions. Similarly the ions produced om by complete ionization of 4.8g of H2 SO4 in water will have equal number of positive and negative but the number of positively charged ions are twice the (e) e.c number of negatively charged ions. 2H+ + SO H2 SO4 ion. Thus fre K2 Cr O4 when ionizes in water produces two k+ ions one C O each formula unit of K2 Cr O4produces three ions in solution .Hence one mg of K2 line Cr O4 has thrice the number of ion than the number of formula units ionized in water. (f) 2g of H2 =1 mole of H2 =6.02x1023 molecules of H2 at STP llon =22.414dm3 16g of CH4 =1mole of CH4 =6.02x1023 molecules of CH4 at STP =22.414dm3 144 g of CO2 =1mole of CO2 =6.02x1023 ww w.a molecules of CO2 at STP =22.144dm3 Although H2 , CH4 and CO2 have different masses but they have the same number of moles and molecules . Hence the same mumber of moles or the same number of molecules of different gases occupy the same volume at STP . Hence 2 g of H2 ,16g of CH4 and 44 g of CO2 occupy the same volume 22.414 dm3 at STP. The masses and the sizes of the molecules do not affect the volumes. Q10: Calculate each of the following quantities (a) mass in grams of 2.74 moles of KMnO4 . (b) Moles of O atoms in 9.0g of Mg (NO3)2 . (c) Number of O atoms in 10.037g of Cu SO4 .5H2 O. (d) Mass in kilograms of 2.6x 1020 molecules of SO2 . www.allonlinefree.com 1st year chemistry notes Moles of C1 atoms in 0.822g C2H4C12 . (f) Mass in grams of 5.136 moles of silver carbonate . (g) Mass in grams of 2.78x1021 molecules of CrO2 C12 . (h) Number of moles and formula units in 100g of KC1O3 . (i) Number of K+ ions C1O ions, C1 atoms, and O atoms in (h) Solution: (a) No of moles of KMnO4 Mass of KMnO4 = no =39+55+64=158g mol -1 =? fre Mass of KMnO4 Formula used: =2.74moles e.c formula mass of KMnO4 om (e) of mole of KMnO4 x formula mass of KMnO4 line =2.74 mol x 158 g mol-1 =432.92g Answer Mass of Mg (NO3)2 =9g llon (b) Formula mass of Mg (NO3)2 =24+28+96=148g mol -1 No of moles of O atoms =? ww w.a Formula used: No of mole of Mg (NO3)2 = Now, I mole of Mg (NO3)2 contains =6moles of O atoms 0..06 moles of Mg (NO3)2contains =6x0.6 =0.36 moles of O atoms Alternatively , 148g of Mg (NO3)2 contains =6moles of O atoms g of Mg (NO3)2contains (c) = =0.36 mole Answer 4 Mass of CuSO . 5H2O=10.037g Formula mass of CuSO4. 5H2O=63.54+32+64+90 =249.546g mol -1 www.allonlinefree.com 1st year chemistry notes No of moles of CuSO4. 5H2O No of moles of CuSO4. 5H2O Now, 1 mole of CuSO4 .5H2O contains 9moles of O atoms 0.04 mole of CuSO4 .5H2O contains=9x0.04 =0.36 moles of O atoms I mole of O atoms contains =6.02x1023 O atoms 0.36 mole of O atoms contains =6.02x1023 x0.36 oxygen om = Now, =? = Now, No of molecules of SO2 . Molecular mass of SO2 . Avogadro‟s number , NA = Now, (f) mol-1 (g) llon =27.64x10-6 kg =2.764x10-3 kg Answer Mass of C2 H4C1 = 0.822g Molecular mass of C2 H4C1 =24+4+71=99 g mol-1 No of moles of C2 H4C1 = 1 mole of C2 H4C1 contains =2moles of C1 atoms 8.3x10-3mole of C2 H4C1 contains =2x8.3x10-3 mole of atom =16.6x10-3 =0.0166mole of C1 atom =0.017 mole Answer No of mole of Ag2 CO3 =5.136moles Formula mass of Ag2 CO3 =215.736+12+48=275.736 g ww w.a (e) = = =27.64x10-3 g line Mass of SO2 molecules fre (d) =2.17x1023 oxygen atoms =2.17x1023 atoms Answer =2.6x1020 molecules =32+32=64 g mol-1 =6.02x1023 molecules of SO2 e.c atoms Mass of Ag2 CO3=No of moles of Ag2 CO3xformula mass of Ag2 CO3 =5.136molx275.736 g mol-1 =416.18g =1416.2 g Answer Molecular mass of CrO2C12 =52+32+71=155g mol-1 NA =6.02x1023 molecules mol-1 www.allonlinefree.com 1st year chemistry notes Molecules of CrO2C12==2.78x1021 molecules Now, mass of CrO2C12 = = om Mass of KCIO3 Formula mass of KCIO3 No of moles of KCIO3 No of moles of KCIO3 = =0.816mole Answer No of moles x Avogadro,s No =0.816mole x 6.02x1023 formula units =4.91x1023 formula units =4.91x1023 Answer fre = No of K+ ions line No of formula units (i) e.c (h) =71.578x10-2 g =0.71578 =0.716 g Answer =100g =39x35.5+48=122g mol-1 =? =4.91x1023 Answer =4.91x1023 Answer = 4.91x1023 x3 =14.73x1023 =1.473x1024 Answer Q 11 Aspartame he artificial sweetener, has a molecular formula of C14 H18 N2O5 . (a) What is the mass of one mole of aspartame? (b) How many moles are present in 52g of aspartame? (c) What is the mass in grams of 10.122 moles of aspartame? (d) How many hydrogen atoms are present in 2.34g of aspartame? (a) Molecular mass of aspartame =168+18+28+80=295g mol-1 Mass of 1 mole of aspartame =294g mol-1 Answer (b) Mass of aspartame =52g Molecular mass of aspartame =294g mol-1 ww w.a llon No of CIO ions No of CIO ions No of O atoms No of moles of aspartame = = =0.1768 mol www.allonlinefree.com 1st year chemistry notes (c) om (d) =0.177 mol Answer No moles of aspartame = 10.122 moles Molecular mass of aspartame =294g mol-1 Mass of aspartame =No of moles x Molar mass =10.122mol x 294g mol-1 =2975.87 g Answer Mass of aspartame =243g Molar mass of aspartame =294g mol -1 No of molecules of aspartame=? ww w.a llon line fre e.c No of molecules of aspartame= xNA = = =4.98x1021 molecules. Now,1 molecule of aspartame contains=18 H atoms 4.98x 1022 molecules =18x4.98x1021 H atoms =89.64x1021H atoms =8.964x1022 H atoms Answer Q 12: A sample of 0.600 mole of a metal M reacts completely with excess of fluorine to from 46.8g MF2 . (a) How many moles of F are present in the sample of MF2 that forms. (b) which elements is represented by the symbol M ? Solution: (a) Formula of compound =MF2 No of moles of M =0.6 mol Mass of MF2 =46.8g The molar of M:F in the compounds; No of moles of F Mass of F =0.6x2=1.2mol Answer =No of moles of Fx At . mass Mass of compound =1.2x19=22.8g =46.8g of F www.allonlinefree.com 1st year chemistry notes Mass of metal, M =46.8-22.8 =24 At mass of M = ww w.a llon line fre e.c om = (b) The atomic mass of the elements, M =40 The metal is calcium, Ca Answer Q 12 : In each pair , choose the larger of the indicated quantity ,or state if the samples are equal. (a) Individual particles: 0.4 mole of oxygen molecules or0.4mole of oxygen atom. (b) Mass: 0.4 mole of ozone molecules or0.4mole of oxygen atoms (c) Mass: 0.6 mole of C2 H4 or 0.6mole of 12 (d) Individual particles: 4.0g N2O4 or 3.3g SO2 (e) Total ions: 2.3 moles of NaC1O3 or 2.0mole of MgC12 (f) Molecules: 11.0g of H2Oor 11.0g H2O2 (g) Na+ ion: 0.500 moles of NaBr or 0.0145kg NaC1 (h) Mass: 6.02x1023 atoms of 235U or 6.02x1023 atoms of 238U Ans: (a) Number of molecules =moles x NA Number of O2 molecules =0.4x6.02x1023 =2.408x1023 molecules No of O atoms=0.4x6.02x1023=2.108x1023 atoms There are equal number of individual particles in 0.4 mole of oxygen molecules and 0.4 mole of oxygen atom. In general, equal number of moles of different substances contains equal number of particles. Both are equal Answer (b) Mass of substance = moles x molar mass Mass of oxygen atoms =0.4x16=64g Mass of ozone, O3 molecules =0.4x48=19.2g 0.4 moles of ozone molecules have larger mass than 0.4mole of oxygen atoms. Ozone Answer (c) Mass of C2H4 =0.6x28=1.68g Mass of 12 =0.6x127=254g 0.6mole of 12 have larger mass than 0.6 mole of C2H4 12 Answers (d) No of molecules = www.allonlinefree.com 1st year chemistry notes No of molecules = NA x6.02x1023=3.68x1023 llon No of molecules in H2 O2 molecules = line (f) fre e.c om No of molecules in N2 O4 = x6.02x1023 =2.62 x1023 molecules No of molecules in SO2 =x6.02x1023 =3.1x1022 molecules 3.3g of SO2 have larger number of individual particles than 4.0 g of N2 O4 . SO2 Answer (e) No of formula units =Moles x NA 3 No of formula units of NaC1O =2.3x6.02x1023=1.38x1024 formula units No of ions in 1 formula units of NaC1O3=2 Total no of ions in MgC12 =2x1.38x1023=2.76x1024 ions No of formula units of MgC12 =2.0x6.02x1023 x3=3.6x1024 ions No .of ions in one formula unit of MgC12 =3 Total no of ions in MgC12 =1.20x1024 x3=3.6x1024 ions 2.0moles of MgC12 contain lager number of total ions than 2.3 moles of 3NaC1o MgC1 Answer units ww w.a (g) No of molecules in H2 O2 x6.02x1023=1.95x1023 molecules = 11.0g of H2 O2contains larger number of molecules than 11.0g of H2 O2 H2 O2Answer No of formula units =moles xNA No of formula units NaBr =0.5x6.02x1023=3.01x1023 formula One formula units o NaBr contain Na+ ions =1 3.01 x1023 formula unit of NaBr contains Na +ions =3.01x1023 Na+ ions No of formula units of NaC1 = x6.02x1023 =1.49x1023formula units One formula unit of NaC1 contains Na+ ions =1 23 1.49x10 formula units of NaC1 contains =1.49x1023 Na+ ions 0.500 moles of NaBr contains lager number of Na+ ions than 0.0145kg ofNaC1. NaBr Answer (h) Mass of atoms of an element = www.allonlinefree.com 1st year chemistry notes Mass of 235Uatoms Mass of 238U atoms =x6.02x1023 =235g =x6.02x1023=238g 238 U Answer Calculate the percentage of nitrogen in the four important fertilizer ww w.a llon line fre e.c om Q 13: (a) i.e., (i)NH3 (ii)NH2CONH2(Urea) (iii)(NH4)2SO4 (iv)NH4 NO3 (b) Calculate the percentage of nitrogen and phosphorus in each of the following: (i) NH4H2PO4 (ii) (NH4)) PO4 (iii) (NH4)4 PO4 Solution: (a) Mol-mass of NH3 =14+4=17g Mass of N =14g % of N =x100 =82.35% Answer (b) Mol-mass of NH2 CONH2 =28+4+12+16=60g Mass of N =28g %of N =x100 =46.35% Answer (c) Mol-mass of (NH2 )2 SO4 =28+8+32+64=132g Mass of N =28g % of N =x100 =21.21% Answer (d) Mol-mass of (NH2 )2 SO4 =28+4+48=80g Mass of N =28g %of N =x100 =35% Answer (I) Mol-mass of (NH2 )2 SO4 =14+6+31+64=115g Mass of N =14g Mass of P =31g %of N =x100=12.17% Answer %of P ==26.96% Answer (II) Mol-mass of ((NH2 )2 SO4 =28+9+31+64=132g Mass of N =28g Mass of P = %of N = =21.21% Answer %of P = =23.48% Answer (III) Mol-mass of (NH2 )2 SO4 =42+12+31+64=149g Mass of N =42g Mass of P =31g %of N = www.allonlinefree.com 1st year chemistry notes ww w.a llon line fre e.c om %of P = Q 14: Glucose C6 H12 O6 is the most important nutrient in the cell for generating chemical potential energy. Calculate the mass% of each element in glucose and determine the number of C,H and O atoms in 10.5g go the sample. Solution: Mol-mass of glucose C6 H12 O6 =72+12+96=180g Mass of C =72 Mass of H =12 Mass of O =96 % of C = =40% Answer % of H = =6.66% Answer % of O = =53.33% Answer Mass of C6 H12 O6 =10.5g Mol-mass of C6 H12 O6 =180g Mol-mass of =180g mol-1 No of moles of C6 H12 O6 = No of molecules of glucose =No of moles x NA =0.058 molx 6.02x1023 molecules mol-1 =0.35x1023 molecules =3.5x1022 molecules Now, 1 molecule of glucose contains =6C-atoms 22 3.4x10 molecules of glucose contains =6x3.5x1022 C-atoms =21x1022 =2.1x1023 C atoms Answer 1 molecules of glucose contains =12H-atoms 22 3.5x10 molecules glucose contains =12x3.5x1022 =4.2x1023 H- atoms Answer 1 molecule of glucose contains =6 O –atoms 22 3.5 x 10 molecules of glucose contains =6x3.5x1022 =2.1x1023 O-atoms Answer Q 16: Ethylene glycol is used as automobile antifreeze .It has 38.7% carbon, 9.7% hydrogen and 51.6% oxygen. Its molar mass is 62.1 grams mol-1 .Determine its molecular formula. Solution: % of C=38.37 g % of H =9.7g % of O=51.6g At. Mass of C=12g mol-1 At. Mass of H=1.008g mol-1 At. Mass of O =16g mol-1 No of moles of C = No of moles of H = No of moles of O = www.allonlinefree.com 1st year chemistry notes 1 :3 :1 3 Empirical formula =CH O Empirical formula mass =2x CH3 O =C2 H6 O2 Answer -1 Q 16: Serotonin (Molecular mass= 176g mol ) is a compound that conducts nerve impulses in brain and muscles. It contains 68.2 % C, 6.86% H, and 9.08% O. What is its molecular formula? Solution: No of moles of C = No of moles of H = No of moles of N = No of moles of O = C : H : N : O Atomic ratio ww w.a llon line fre Molecular formula =31 e.c n= om Atomic ratio is obtained by dividing the moles with 3.23, which is the smallest ratio. C :H :O 10 : 12 : 2 : 1 Empirical formula =C10 H12 N2 O Empirical formula mass =120+12+28+16=176g mol-1 Molecular mass =176g mol-1 n= Q17: An unknown metal M reacts with S to from a compound with a formula M2S3 .If 3.12 g of M reacts with exactly 2.88 g of sulphur ,what are the names of metal M and the compound M2 S3 . Solution: Formula of compound = M2 S3 Mass of M =3.12g Mass of S =2.88g Atomic mass of S =32g mol-1 No of moles of S = www.allonlinefree.com 1st year chemistry notes No of moles of M om No of moles of S = The molar ratio of M: S in the compound is : = Now, No of moles of M e.c =0.06 mole = line fre At. Mass M = The mass of M used in the formation of M2S3 is 3.12g. The product M2S3 therefore also contains 3.12g of M, because mass is conserved . The amount of M before and after reaction must be the same. Since we know both the number of moles of M and the mass of M , we can cal calculate the atomic mass of M as follows: = =52 Atomic number, Z =52 Q19: The octane present in gasoline burns according to the following equation. 2C8 H18 (i) + 2502(g) 16CO 2(g) + 18H2O (i) (a) How many moles of O2 are needed to react fully with 4 moles of actane? (b) How many moles of CO2 can be produced from one mole of actane? (c) How many moles of water are produced by the combustion of 6 moles of octane? (d) If this reaction is to be used to synthesize 8 moles of CO 2 how many grams of oxygen are needed? How many grams of octane will be used? Solution: ww w.a llon At. Mass of M 4 moles (a) 2C8 H18 (i) 2 moles + 2502(g) 25 moles 2 moles of C8 H18 4 moles of C8 H18 www.allonlinefree.com 16CO 2(g) + 18H2O (i) =25 moles of O2 = 1st year chemistry notes =50moles of O2 Answer (b) 1 moles 2C8 H18 (i) 2 moles + 2502(g) Now, 2 moles of C8 H18 1 mole of C8 H18 16CO 2(g) + 18H2O (i) =16 moles of CO2 = =8 moles of CO2 Answer + 2502(g) Now, 2 moles of C8 H18 6 moles of C8 H18 (c) =18 moles of H2 O(i) = =54 moles of H2 O 6 moles 2C8 H18 (i) 2 moles + 2502(g) 16CO 2(g) + 18H2O (i) 1800moles line =25 moles of O2 = =12.5 moles of CO2 Mol-mass of O2 =32g mol-1 =12.5 molx 32g mol-1 =400g of O2 Now, 16moles of CO2 =2moles of C8 H18 8 moles of CO2 = =1 mole of C8 H18 Mol-mass of C8 H18 =96+18=114g mol-1 Mass of C8 H18 =No of moles of C8 H18xMol.mass ofC8 H18 =1 molx 114 g mol-1 114g Answer Q19: Calculate the number of grams of A12 S3 which can be prepared by the reaction of 20 g of A1 and 30 g of sulphur. How much the non-limiting reaction is in excess ? Solution: Mass of A1 =20g Molar mass of A1 =27g mol-1 No of moles of A1 = Mass of S = 30g Molar mass of S =32g mol-1 No of moles of S = ww w.a llon Now, 16 moles of CO2 8 moles of CO2 16CO 2(g) + 18H2O (i) e.c 2C8 H18 (i) 2 moles om 6 moles fre (c) 0.74 mole 0.94 mole www.allonlinefree.com 1st year chemistry notes 2A1 + 2 mole 3S A12 S3 1 mole 3 mole Now, 2 moles of A1 0.74 moles of A1 Now, 3 moles of S 0.94 moles of S =1 mole of A12 S3 = =0.37 mole of A12 S3 =1 moles of A12 S3 = 0.94 mole 2A1 + 2 mole A12 S3 3 mole =2 moles of A1 = = Mass of A1 =No of moles of A1 x molar mass of A1 =0.63x 27 =17g of A1 Mass of A1available =20g Mass of A1 which reacts completely =17g with available S Excess of A1 =20-17=3g Q20: A mixture of two liquids, hydrazine N2H4 and N2 O4 are used as a fuel in rockets. They produce N2 and water vapors. How many grams of N2 gas will be formed by reacting 100g of N2 O4 and 200g g of N2 O4. 2N2H4 + N2O2 3N2 +4 H2O Solution: Mass of2N2H4 =100g Mass of N2O2 =200g Molar mass of 2N2H4 =28+4=32g mol-1 Molar mass of N2O2 =28+64=92g mol-1 No of moles of N2H4 = llon 3 moles of S 0.94 moles of S ww w.a Now , 3S line fre e.c om =0.313 mole of A12 S3 Since S give the least number of moles of A12 S3 therefore, it is the limiting reactant. No of moles of A12 S3 =0.313 mole Molar mass of A12 S3 =150g mol-1 Mass of A12 S3=No of moles of A12 S3xMolar mass of A12 S3 =0.313molx 150 g mol-1 =46.95 g of A12 S3 Answer The non-limiting reactant is A1 which is in excess. Now mass of A1 required reacting completely with 0.94 moles of S can be calculated as: www.allonlinefree.com 1st year chemistry notes No of moles of N2O2 = 3.125moles 2.174 moles 2N2H4 + N2O2 2 moles 1mole 3N2 +4 H2O 3moles =3moles of N2 = =4.69 mole of N2 Now , 1 mole of N2O2 =3moles of N2 2.174 moles of N2O4 = =6.52 mole of N2O2 Since N2H4gives the least number of moles of N2, hence it is the limiting reactant. Amount of N2 produced =4.69 moles 2 Molar mass of N =28g mol-1 Mass of N2 =4.69g molx 28g mol-1 =131032 g Answer Q21: Silicon carbide (SiC) is an important ceramic material . It is produced by allowing sand (SiO2 )to react with carbon at high temperature. SiO2 + 3C SiC + 2CO When 100kg sand isn reacted with excess of carbon, 51.4 kg of Sic is produced. Solution: Mass of SiO2 =100 kg=100000g Mass of SiC produced =5.14 kg =51400g SiO2 60g Now, ww w.a 100000g llon line fre e.c om Now , 2moles of N2H4 3.125moles of N2H4 + 3C SiC + 2CO 40g 60g of SiO2 100000g of SiO2 =40g of SiC = =66666.67 g Actual yield of Sic =51400 g Theoretical yield of SiC =66666.67g % yield = = =77.1% Q22: (a) What is Stoichiometry? Give its assumptions? Mention two important law , which help to perform the Stoichiometry calculations. (b) What is a limiting reactant? How does it control the quantity of the product formed? Explain with three examples www.allonlinefree.com 1st year chemistry notes (a) Define yield. How do we calculate the percentage yield of a chemical reaction? (b) What are the factors which are mostly responsible for the low yield of the products in chemical reactions. Q24: Explain the following with reasons. (j) Law of conservation of mass has to be obeyed during Stoichiometric calculations. (ii) Many chemical reactions taking place in our surrounding involves the limit reactants. (iii) No individual neon atom in the sample of the element has a mass of 20.18amu. (iv) One mole of H2 SO4 should completely react with two moles of NaOH. How does Avogadro, s number help to explain it. (v) One mole H2 O has two moles of bonds , three moles of atoms , ten moles of electrons and twenty eight moles of the total fundamental particles present in it. (vi) N2 and CO have the same number of electrons, protons and neutrons. Ans. (i) According to law of conservation of mass, the amount of each element is conserved in a chemical reaction. Chemical equations are written and balanced on the basis of law of conversation of mass. Stoichiometry calculations are related with the amounts of reactants and products in a balanced chemical equation. Hence, law of conservation of mass has to be obeyed during stoichiometric calculations. (ii) In our surrounding many chemical reactions are taking place which involve oxygen. In these reactions oxygen in always in excess quantity while other reactant are in lesser amount. Thus other reactants act as limiting reactants. (iii) Since the overall atomic mass of neon in the average of the determined atomic masses of individual isotopes present in the sample of isotopic mixture .Hence, no individual neon atom in the sample has a mass of 20.18amu. (iv) H2 SO4 +2NaOH Na2 SO4 + 2H2 O ww w.a llon line fre e.c om Q 23: 1 mole 2moles 2 moles of H+ ions 2x6.02x1023 H+ ions 2 moles of OH ions 2x6.02x1023 OH ions Once mole of H2 SO4 consists of 2 moles of H+ ions that contains twice the Avogadro‟s number of H+ ions. For complete neutralization www.allonlinefree.com 1st year chemistry notes (v) ww w.a llon line fre e.c om (vi) it needs 2 moles of one mole of H2 SO4 should completely react with two moles of NA OH. Since one molecule of H2 O has two covalent bonds between H and O atoms. Three atoms, ten electrons and twenty eight total fundamental particles present in it. Hence, one mole of H 2 O has two moles of bond, three moles of atoms, ten moles of electrons and twenty eight moles of total fundamental particle present in it. In N2 there are 2 N atoms which contain 14 electrons (2x7),14 protons (2x7) and 14 neutrons (2x7) . In CO, there are one carbon and one oxygen atoms. It contains 14 electrons (6carbon e +8 oxygen e), 14 protons (6 C proton +8 O proton ) and 14 neutrons (6 neutrons +8 O neutrons).Hence , N2 and CO have the same number of electrons, protons and neutrons. Remember that electrons, protons and neutrons of atoms remain conserved during the formation of molecules in a chemical reaction. www.allonlinefree.com