Using the bond dissociation enthalpies, estimate the enthalpy of formation of cyclopropane (C4H6). (b) Compare the calculated value with the measured value of 53.30 kJ mol" and comment on what feature of cyclopropane accounts for the difference? Balanced chemical equation too, please! C-H = 413 kJ mol-1 -1 C-C = 348 kJ mol

Chemistry by OpenStax (2015-05-04)
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Author:Klaus Theopold, Richard H Langley, Paul Flowers, William R. Robinson, Mark Blaser
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Chapter5: Thermochemistry
Section: Chapter Questions
Problem 17E: Would the amount of heat absorbed by the dissolution in Example 5.6 appear greater, lesser, or...
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Using the bond dissociation enthalpies,
estimate the enthalpy of formation of
cyclopropane (C4H6). (b) Compare the
calculated value
with the measured value of 53.30 kJ mol"
and comment on what feature of
cyclopropane
accounts for the difference?
Balanced chemical equation too, please!
C-H = 413 kJ mol-1
%D
C-C = 348 kJ mol-
Transcribed Image Text:Using the bond dissociation enthalpies, estimate the enthalpy of formation of cyclopropane (C4H6). (b) Compare the calculated value with the measured value of 53.30 kJ mol" and comment on what feature of cyclopropane accounts for the difference? Balanced chemical equation too, please! C-H = 413 kJ mol-1 %D C-C = 348 kJ mol-
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