To find the equilibrium constant K for the reaction, we can use the Nernst equation and the relationship between the standard cell potential E and the equilibrium constant. First, let's write the half-cell reactions:Oxidation anode : Cu s Cu aq + 2eReduction cathode : 2Ag aq + 2e 2Ag s Now, let's find the standard cell potential E for the reaction:E cell = E cathode - E anode We are given the cell potential E cell as 0.74 V. To find the standard reduction potentials for the half-cell reactions, we can look them up in a table of standard reduction potentials:E Cu/Cu = +0.34 VE Ag/Ag = +0.80 VNow we can find E cell :E cell = E Ag/Ag - E Cu/Cu = 0.80 V - 0.34 V = 0.46 VNow we can use the relationship between the standard cell potential and the equilibrium constant:E cell = RT/nF * ln K Where:E cell = 0.46 VR = 8.314 J/ molK gas constant T = 298 K standard temperature n = 2 number of electrons transferred in the reaction F = 96485 C/mol Faraday's constant Rearrange the equation to solve for K:K = e^nFE cell /RT Plugging in the values:K = e^2 * 96485 C/mol * 0.46 V / 8.314 J/ molK * 298 K K 2.04 10The equilibrium constant for the reaction Cu s + 2Ag aq Cu aq + 2Ag s is approximately 2.04 10.