wiz-icon
MyQuestionIcon
MyQuestionIcon
1
You visited us 1 times! Enjoying our articles? Unlock Full Access!
Question

Construct the cell corresponding to the reaction:
3Cr2+(aq, 1 M)2Cr3+(aq, 1 M)+Cr(s) and predict if the reaction is spontaneous or not. Also calculate ΔH and ΔS of the reaction at 25C.
Given: ECr3+(aq)/Cr(aq)=0.5VECr3+(aq)/Cr2+(aq)=0.41V
ΔG of the reaction at 35C=270.50 kJ

A
Non-spontaneous
ΔH=51.05 kJ, ΔS=700 kJ K1
No worries! We‘ve got your back. Try BYJU‘S free classes today!
B
Non-spontaneous
ΔH=51.05 kJ, ΔS=700 kJ K1
No worries! We‘ve got your back. Try BYJU‘S free classes today!
C
Spontaneous
ΔH=51.05 kJ, ΔS=706 kJ K1
No worries! We‘ve got your back. Try BYJU‘S free classes today!
D
Spontaneous
ΔH=51.05 kJ, ΔS=706 kJ K1
Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses
Open in App
Solution

The correct option is D Spontaneous
ΔH=51.05 kJ, ΔS=706 kJ K1
The cell corresponding to the given reaction is as follows:

Cr2+(aq, 1 M), Cr3+(aq 1 M)||Cr2+(aq 1 M)|Cr(s)

I. Cr3+(aq)+3eCr(s); ΔG0I=3FE0Cr3+(aq)/Cr(s)

II. Cr3+(aq)+eCr2+(aq); ΔG0II=FE0Cr3+(aq),Cr2+(aq)

Eq. IEq. II,Cr2+(aq)+2eCr(s); ΔG0=(3×0.5F)0.41F=1.91F

ΔG0=2FE0Cr2+(aq)/Cr(s)=1.91F
E0Cr2+(aq)/Cr(s)=1.912=0.955 V

E0Cell=E0Cr2+(aq)/Cr(s)E0Cr3+(aq),Cr2+(aq)=0.955+0.41=1.365 V

ΔG0=nFE0Cell=2×96500×1.365 J=263.44 kJ
Since, ΔG0 is ve hence the given reaction is spontaneous.

From Gibbs-Helmholtz equation,

ΔG=ΔH+T[(ΔG)T]p

263.44=ΔH+298(270.50+263.44)10=ΔH(298×0.706)

ΔH=53.05 kJ

ΔG=ΔHTΔS
ΔS=ΔHΔGT=53.05+263.44298=0.706 kJ K1

flag
Suggest Corrections
thumbs-up
0
Join BYJU'S Learning Program
similar_icon
Related Videos
thumbnail
lock
CHEMISTRY
Watch in App
Join BYJU'S Learning Program
CrossIcon