The hydrogen electrode is dipped in a solution of pH = 3 at 25°C. The potential of the cell would be (the value of 2.303 RT/F is 0.059 V)

Question

The hydrogen electrode is dipped in a solution of pH = 3 at 25°C. The potential of the cell would be (the value of 2.303 RT/F is 0.059 V) (A) 0.177 V (B) 0.087 V (C) -0.177 V . (D) 0.059V

Tardigrade Admin · Accepted Answer

pH = 3 ∴ [H+] = 10-3 ∴ [H+] + e- arrow (1/2) H2 E = E0 - (0.059/n) log (1/[H+]) = 0 - (0.059/1) log 103 E = - 0.177 V

Q. The hydrogen electrode is dipped in a solution of $p H = 3$ at $2 5^{\circ}$ C. The potential of the cell would be (the value of $2.303 RT / F$ is $0.059 V)$

0.177 V

0.087 V

-0.177 V .

0.059V

$p H = 3$
$∴ [H^{+}] = 1 0^{- 3}$
$∴ [H^{+}] + e^{-} \to \frac{1}{2} H_{2}$
$E = E^{0} - \frac{0.059}{n} l o g \frac{1}{[ H ^{+} ]}$
$= 0 - \frac{0.059}{1} l o g 1 0^{3}$
$E = - 0.177 V$

Q. The hydrogen electrode is dipped in a solution of pH=3 at 25∘C. The potential of the cell would be (the value of 2.303RT/F is 0.059V)