For the reaction A(s)+2 B(a q)+ arrow A(a q)2++2 B(s); the Eo is 1.18 V. Then the equilibrium constant for the reaction is

Question

For the reaction A(s)+2 B(a q)+ arrow A(a q)2++2 B(s); the Eo is 1.18 V. Then the equilibrium constant for the reaction is (A) 1010 (B) 1020 (C) 1040 (D) 1060

Tardigrade Admin · Accepted Answer

A(S)+2 B+(a q) arrow A2+(a q)+2 B(s) Oxidation A(s) arrow A2+(a q)+2 e- Reduction 2 B+(a q)+2 e- arrow 2 B(s) Here, n=2 Eo=1.18 V Ke q=? ∵ log Ke q=(n Eo F/R T) [(F/R T)=(1/0.059)] ∴ log Ke q=(2 × 1.18 × 1/0.059) ∴ log Ke q=40 or Ke q=1040

Q. For the reaction $A_{(s)} + 2 B_{(a q)}^{+} \to A_{(a q)}^{2 +} + 2 B_{(s)}$ ; the $E^{o}$ is $1.18 V$ . Then the equilibrium constant for the reaction is

$1 0^{10}$

$1 0^{20}$

$1 0^{40}$

$1 0^{60}$

Q. For the reaction A(s)​+2B(aq)+​→A(aq)2+​+2B(s)​; the Eo is 1.18V. Then the equilibrium constant for the reaction is

1010

1020

1040

1060

A(S)+2B+(aq)→A2+(aq)+2B(s) Oxidation A(s)→A2+(aq)+2e− Reduction 2B+(aq)+2e−→2B(s) Here, n=2Eo=1.18VKeq​=? ∵logKeq​=RTnEoF​ [RTF​=0.0591​] ∴logKeq​=0.0592×1.18×1​ ∴logKeq​=40 or Keq​=1040

Q. For the reaction $A_{(s)} + 2 B_{(a q)}^{+} \to A_{(a q)}^{2 +} + 2 B_{(s)}$ ; the $E^{o}$ is $1.18 V$ . Then the equilibrium constant for the reaction is

$1 0^{10}$

$1 0^{20}$

$1 0^{40}$

$1 0^{60}$