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Question

The combustion of sucrose is used by aerobic organisms to provide energy to life sustaining processes. If all the energy capture is done by electrical processes, (non P-V work) then calculate the maximum available energy which can be captured by the combustion of 34.2 gm of sucrose.
Given: ΔHcombustion(sucrose)=6000 kJmol1 ΔScombustion=180J/K mol and the body temperature is 300 K.

A
600 kJ
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B
594.6 kJ
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C
5.4 kJ
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D
605.4 kJ
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Solution

The correct option is D 605.4 kJ
Moles of sucrose(C12H22O11)=34.2/342=0.1
Enthalpy of combution of sucrose is 6000 kJ mol1
ΔH=6000×0.1=600 kJl
ΔS=180×0.1=18 J
we know that non-mechanical or non p-v work:
ΔG=ΔHTΔS
ΔG=600300×181000=605.4 kJ

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