For the electrochemical cell 2 Al(s) + 3 Mn²+ (aq) → 2 Al³+ (aq) + 3 Mn(s) (E° = 0.48 V, [A1³*] = 1.0 M), what is the value of E when [Mn²+] = 0.088 M? Assume T is 298 K

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Chapter19: Electrochemistry
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Problem 19.80QP: Calculate the standard cell potential of the cell corresponding to the oxidation of oxalic acid,...
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For the electrochemical cell
Question 10 of 14
2 Al(s) + 3 Mn²+ (aq) → 2 Al³+ (aq) + 3 Mn(s) (E° = 0.48 V, [A1³+] = 1.0
M),
what is the value of E when [Mn²+] = 0.088 M? Assume T is 298 K
1
4
7
+/-
258
V
m
3690
alo
Transcribed Image Text:For the electrochemical cell Question 10 of 14 2 Al(s) + 3 Mn²+ (aq) → 2 Al³+ (aq) + 3 Mn(s) (E° = 0.48 V, [A1³+] = 1.0 M), what is the value of E when [Mn²+] = 0.088 M? Assume T is 298 K 1 4 7 +/- 258 V m 3690 alo
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