Consider the following voltaic cell. What is the half reaction that takes place at the cathode? What is "E" for the cell? How many electrons are exchanged (n)?

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Consider the following voltaic cell. What is the half reaction that takes place at the cathode? What is "E" for the cell? How many electrons are exchanged (n)?

$Fe(s) + 2H^(+)(aq) -> Fe^(2+)(aq) + H_2(g)$

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Answer 1 · 2017-05-17T11:23:10

Cathodic Reduction => $2H^+(aq) + 2e^- => H_2(g)$
Anodic Oxidation => $Fe^o(s) => Fe^2+ + 2 e-$
$E_(cell) = 0.41v$

Explanation:

Cathodic Reduction => $2H^+(aq) + 2e^- => H_2(g)$
Anodic Oxidation => $Fe^o(s) => Fe^2+ + 2 e-$
$E_(cell)^o = E_(redn)^o - E_("oxidn")^o$ = $E_((H^+|H_2)$ - $E_(Fe(s)|Fe^"2+")$
From Standard Reduction Potential table
$E_H = 0.00v$ and $E_(Fe) = -0.41v$
$E_(cell) = [0.00v - (- 0.41v)] = 0.41v$

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Consider the following voltaic cell. What is the half reaction that takes place at the cathode? What is "E" for the cell? How many electrons are exchanged (n)?

$Fe(s) + 2H^(+)(aq) -> Fe^(2+)(aq) + H_2(g)$

1 Answer

Explanation:

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Science

Math

Humanities

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Consider the following voltaic cell. What is the half reaction that takes place at the cathode? What is "E" for the cell? How many electrons are exchanged (n)?

Fe(s) + 2H^(+)(aq) -> Fe^(2+)(aq) + H_2(g)Fe(s) + 2H^(+)(aq) -> Fe^(2+)(aq) + H_2(g)

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Explanation:

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$Fe(s) + 2H^(+)(aq) -> Fe^(2+)(aq) + H_2(g)$