Consider the following redox reaction: Cu(s)  +  2 Ag+  →  2 Ag(s)  +  Cu2+ What is true about ΔG if conditions are standard except that both Ag+ and Cu2+ concentrations are 0.20 M?  Group of answer choices ΔG < ΔGo ΔG > ΔGo ΔG = ΔGo

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Consider the following redox reaction:

Cu(s)  +  2 Ag+  →  2 Ag(s)  +  Cu2+

What is true about ΔG if conditions are standard except that both Ag+ and Cu2+ concentrations are 0.20 M? 

Group of answer choices

ΔG < ΔGo

ΔG > ΔGo

ΔG = ΔGo

Expert Solution
Step 1

Since the relationship is given by 

ΔG = ΔG0 + RTln(K)

where R = gas constant 

T = temperature in K

and K = equilibrium constant = [Cu2+] / [Ag+]2 = 0.2 / 0.22 = 5

Hence ΔG = ΔG0 + RTln(5) = ΔG0 + 1.61 RT

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