The mean bond enthalpies of the C-C , C-H, C=O, and O-H bonds are 348,412,743, and 463 kJ mol-1, respectively. The combustion of a fuel such as octane is exothermic because relatively weak bonds break to form relatively strong bonds. Use this information to justify why glucose has a lowerspecific enthalpy than the lipid decanoic acid (C10H20O2) even though these compounds have similar molar masses.

Physical Chemistry
2nd Edition
ISBN:9781133958437
Author:Ball, David W. (david Warren), BAER, Tomas
Publisher:Ball, David W. (david Warren), BAER, Tomas
Chapter2: The First Law Of Thermodynamics
Section: Chapter Questions
Problem 2.93E: Find the enthalpies of the combustion reactions for methane through n-octane. Plot them versus the...
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The mean bond enthalpies of the C-C , C-H, C=O, and O-H bonds are 348,412,743, and 463 kJ mol-1, respectively. The combustion of a fuel such as octane is exothermic because relatively weak bonds break to form relatively strong bonds. Use this information to justify why glucose has a lower
specific enthalpy than the lipid decanoic acid (C10H20O2) even though these compounds have similar molar masses.

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