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Organic Molecules
Organic Molecules

These two compounds are structural isomers, which would have the
These two compounds are structural isomers, which would have the

Chem Final Study Guide Energy How much heat energy must be
Chem Final Study Guide Energy How much heat energy must be

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... 15. The biological significance of chirality (stereoisomerism) is that A. because proteins (enzymes) are made of chiral subunits they usually react with only one stereoisomer of a molecule. B. because proteins (enzymes) are not made of chiral subunits they react with all stereoisomers of a molecule. ...
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Chemistry 21 A - El Camino College

... 9. a) endothermic reaction is ___________________________________________________________________ b) exothermic reaction is ___________________________________________________________________ 10. The percentage yield is _____________________________________________________________________ __________ ...
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Magnesium sulfate heptahydrate (M2773) - Product - Sigma

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...  Chemists generally refer to the energy given out when a fuel burns in kJmol-1 because this compares the same number of molecules of each fuel.  For use as fuels it is sometimes better to convert the units from kJmol-1 to kJg-1 (OR the energy density) of a fuel ...
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... can be calculated by the equation shown below when using a coffee cup calorimeter. Given an initial temperature of 23.2 C of 55 grams of a water in the calorimeter (whose specific heat Cs is 4.184 J/gC) and an observed ∆H = +1,252 joules, what was the final temperature (in degrees Celsius) of the ...
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... Right, so let’s see how much you remember with a childish, yet still useful, fill in the gaps! Starch, protein and lipids are all large molecules. Starch is made up of many ___________ molecules and proteins are made up of __________ __________. A lipid consists of a molecule of _______ and three __ ...
OCR: Chemistry – Unit 2 – Chains, Energy and
OCR: Chemistry – Unit 2 – Chains, Energy and

... (iii) E/Z isomerism as an example of stereoisomerism, in terms of restricted rotation about a double bond and the requirement for two different groups to be attached to each carbon atom of the C=C group, (iv) cis-trans isomerism as a special case of EIZ isomerism in which two of the substituent grou ...
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Physical organic chemistry

Physical organic chemistry, a term coined by Louis Hammett in 1940, refers to a discipline of organic chemistry that focuses on the relationship between chemical structures and reactivity, in particular, applying experimental tools of physical chemistry to the study of organic molecules. Specific focal points of study include the rates of organic reactions, the relative chemical stabilities of the starting materials, reactive intermediates, transition states, and products of chemical reactions, and non-covalent aspects of solvation and molecular interactions that influence chemical reactivity. Such studies provide theoretical and practical frameworks to understand how changes in structure in solution or solid-state contexts impact reaction mechanism and rate for each organic reaction of interest. Physical organic chemists use theoretical and experimental approaches work to understand these foundational problems in organic chemistry, including classical and statistical thermodynamic calculations, quantum mechanical theory and computational chemistry, as well as experimental spectroscopy (e.g., NMR), spectrometry (e.g., MS), and crystallography approaches. The field therefore has applications to a wide variety of more specialized fields, including electro- and photochemistry, polymer and supramolecular chemistry, and bioorganic chemistry, enzymology, and chemical biology, as well as to commercial enterprises involving process chemistry, chemical engineering, materials science and nanotechnology, and drug discovery.
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