10. Use the following equation answer the questions below. Mn(s) + Sn(NO3)2(aq) → Sn(s) + Mn(NO3)2(aq) a. Write out the half reaction that occurs at the anode. How many electrons are transferred? Calculate the Ecell in volts. b. C.

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Chapter18: Electrochemistry
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Problem 83E: Consider a concentration cell that has both electrodes made of some metal M. Solution A in one...
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10. Use the following equation answer the questions below.
Mn(s) + Sn(NO3)2(aq) → Sn(s) + Mn(NO3)2(aq)
a. Write out the half reaction that occurs at the anode.
b.
How many electrons are transferred?
C.
Calculate the Ecell in volts.
d. Using the Ecell value determine the equilibrium constant.
e.
Do you expect the Free Gibb's value to be positive or negative? Use support from parts c
and d. (This is a concept question; no calculation should be done!)
Transcribed Image Text:10. Use the following equation answer the questions below. Mn(s) + Sn(NO3)2(aq) → Sn(s) + Mn(NO3)2(aq) a. Write out the half reaction that occurs at the anode. b. How many electrons are transferred? C. Calculate the Ecell in volts. d. Using the Ecell value determine the equilibrium constant. e. Do you expect the Free Gibb's value to be positive or negative? Use support from parts c and d. (This is a concept question; no calculation should be done!)
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