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Chapter 7 “Chemical Formulas and Chemical Compounds” Yes, you will need a calculator for this chapter! Using Formulas • How many oxygen atoms in the following? 3 atoms of oxygen CaCO3 Al2(SO4)3 12 (3 x 4) atoms of oxygen • How many ions in the following? CaCl2 3 total ions (1 Ca2+ ion and 2 Cl1- ions) 2 total ions (1 Na1+ ion and 1 OH1- ion) NaOH Al2(SO4)3 5 total ions (2 Al3+ + 3 SO42- ions) Review Problems How many molecules of CO2 are in 4.56 2.75 x 1024 molecules moles of CO2? How many moles of water is 5.87 x 1022 0.0975 mol (or 9.75 x 10-2) molecules? How many atoms of carbon are in 1.23 moles of C6H12O6? 4.44 x 1024 atoms C How many moles is 7.78 x 1024 formula units of MgCl2? 12.9 moles More Practice How many grams is 2.34 moles of carbon? 28.1 grams C How many moles of magnesium is 24.31 g of Mg? 1.000 mol Mg How many atoms of lithium is 1.00 g of Li? 8.68 x 1022 atoms Li How many grams is 3.45 x 1022 atoms of U? 13.6 grams U What about compounds? In 1 mole of H2O molecules there are two moles of H atoms and 1 mole of O atoms (think of a compound as a molar ratio) To find the mass of one mole of a compound – determine the number of moles of the elements present – Multiply the number times their mass (from the periodic table) – add them up for the total mass Calculating Formula Mass Calculate the formula mass of magnesium carbonate, MgCO3. 24.31 g 12.01 g 16.00 g 24.31 g/mol + 12.01 g/mol + 3 x (16.00 g/mol) = 84.32 g/mol Thus, 84.32 grams/mol is the formula mass for MgCO3. Molar Mass Molar mass is the generic term for the mass of one mole of any substance (expressed in grams/mol) The same as: 1) Gram Molecular Mass (for molecules) 2) Gram Formula Mass (ionic compounds) 3) Gram Atomic Mass (for elements) – molar mass is just a much broader term than these other specific masses Examples Calculate the molar mass of the following: Na2S = 78.05 g/mol N2O4 = 92.02 g/mol C = 12.01 g/mol Ca(NO3)2 = 164.1 g/mol C6H12O6 = 180.156 g/mol (NH4)3PO4 = 149.096 g/mol Since Molar Mass is… The number of grams in 1 mole of atoms, ions, or molecules, We can make conversion factors from these. - To change between grams of a compound and moles of a compound. For example How many moles are in 5.69 g of NaOH? For example • How many moles are in 5.69 g of NaOH? æ 5.69 g ç è ö ÷ ø For example • How many moles are in 5.69 g of NaOH? æ 5.69 g NaOH ç è • mole NaOH ö ÷ gNaOH ø We need to change 5.69 grams NaOH to moles For example • How many moles are in 5.69 g of NaOH? æ mole NaOH ö 5.69 g NaOH ç ÷ gNaOH ø è l l We need to change 5.69 grams NaOH to moles 1mole Na = 22.99 g 1 mol O = 16.00 g 1 mole of H = 1.008 g For example • How many moles are in 5.69 g of NaOH? æ 5.69 g NaOH ç è l l l mole NaOH ö ÷ gNaOH ø We need to change 5.69 grams NaOH to moles 1mole Na = 22.99 g 1 mol O = 16.00 g 1 mole of H = 1.008 g 1 mole NaOH = 39.998 g For example • How many moles are in 5.69 g of NaOH? æ 1 mole NaOH ö 5.69 g NaOH ç ÷ è 39.998 gNaOH ø l l l We need to change 5.69 grams NaOH to moles 1mole Na = 22.99 g 1 mol O = 16.00 g 1 mole of H = 1.008 g 1 mole NaOH = 39.998 g For example • How many moles are in 5.69 g of NaOH? æ 1 mole NaOH ö 5.69 g NaOH ç ÷ = 0.142 mol NaOH è 39.998 gNaOH ø l l l We need to change 5.69 grams NaOH to moles 1mole Na = 22.99g 1 mol O = 16.00 g 1 mole of H = 1.008 g 1 mole NaOH = 39.998 g Calculating Percent Composition of a Compound Like all percent problems: part x 100 % = percent whole • Next, divide by the total mass of the compound; then x 100 • Find the mass of each of the components (the elements), Example Calculate the percent composition of a compound that is made of 29.0 grams of Ag with 4.30 grams of S. 29.0 g Ag X 100 = 87.09 % Ag 33.3 g total Total = 100 % 4.30 g S X 100 = 12.91 % S 33.3 g total Getting it from the formula If we know the formula, assume you have 1 mole, then you know the mass of the elements and the whole compound (these values come from the periodic table!). Examples Calculate the percent composition of C2H4. 85.63% C, 14.37 % H How about aluminum carbonate? 23.06%Al, 15.40% C, and 61.54 % O Formulas Empirical formula: the lowest whole number ratio of atoms in a compound. Molecular formula: the true number of atoms of each element in the formula of a compound. • Example: molecular formula for benzene is C6H6 (note that everything is divisible by 6) • Therefore, the empirical formula = CH (the lowest whole number ratio) Formulas (continued) Formulas for ionic compounds are ALWAYS empirical (the lowest whole number ratio = cannot be reduced). Examples: NaCl MgCl2 Al2(SO4)3 K2CO3 Formulas (continued) Formulas for molecular compounds might be empirical (lowest whole number ratio). Molecular: H2O C6H12O6 C12H22O11 H2O CH2O C12H22O11 (Correct formula) Empirical: (Lowest whole number ratio) Calculating Empirical Just find the lowest whole number ratio = CH2O C6H12O6 CH4N = this is already the lowest ratio. A formula is not just the ratio of atoms, it is also the ratio of moles. In 1 mole of CO2 there is 1 mole of carbon and 2 moles of oxygen. In one molecule of CO2 there is 1 atom of C and 2 atoms of O. Calculating Empirical We can get a ratio from the percent composition. 1) Assume you have a 100 g sample - the percentage becomes grams (75.10% = 75.10 grams) 2) Convert grams to moles. 3) Find lowest whole number ratio by dividing each number of moles by the smallest value. Example Calculate the empirical formula of a compound composed of 38.67 % C, 16.22 % H, and 45.11 %N. Assume 100 g sample, so 38.67 g C x 1mol C = 3.2198 mol C 12.01 g C 16.22 g H x 1mol H = 16.0913 mol H 1.008 g H 45.11 g N x 1mol N = 3.2198 mol N 14.01 g N Now divide each value by the smallest value Example The ratio is 3.2198 mol N = 1 mol N 3.2198 mol N The ratio is 3.2198 mol C = 1 mol C 3.2198 mol N The ratio is 16.0913 mol H = 5 mol H 3.2198 mol N = C1H5N1 which is = CH5N Practice A compound is 43.64 % P and 56.36 % O. What is the empirical formula? P 2O 5 Caffeine is 49.48% C, 5.15% H, 28.87% N and 16.49% O. What is its empirical formula? C4H5N2O Empirical to Molecular Since the empirical formula is the lowest ratio, the actual molecule would weigh more. By a whole number multiple. Divide the actual molar mass by the empirical formula mass – you get a whole number to increase each subscript in the empirical formula Caffeine has a molar mass of 194 g. what is its molecular formula? = C8H10N4O2 Hydrates • Hydrate: a compound that has a specific number of water molecules bound to its atoms • You can determine the formula of a hydrate by heating it until the water is gone, and analyzing the data BaCl2 ?H2O • Mass of the compound before heating (hydrate): 5.00 g • Mass after heating (anhydrous): 4.26 g • Find the mass of the water lost by subtracting 5.00g – 4.26 g = 0.74 g H2O • The mass of just the BaCl2 is 4.26 g Continued • Convert the mass of BaCl2 and the mass of H2O to mol • 4.26 g BaCl21 mol BaCl2 = 0.02046 mol 208.2 g BaCl2 • 0.74 g H2O 1 mol H2O = 0.04107 mol 18.016 g H2O • Divide by the smallest molar value Continued • 0.02046 mol BaCl2 = 1 0.02046 mol BaCl2 • 0.04107 mol H2O = 2 0.02046 mol BaCl2 • Formula of the hydrate: BaCl2 2H2O Another Practice • FePO4 ? H2O • Mass before heating: 7.61 g • Mass after heating: 5.15 g • Mass of water: 2.46 g • Formula of the hydrate: FePO4 4H2O