Consider a reaction whose cell notation is Ag(s) | AgCl(s) | HCl(aq) | H2(g) | Pt(s) at 298 K, with an equilibrium constant of K = 5.65 × 109 The anode half reaction shows the reduction Cl−. True or False

Chemistry: The Molecular Science
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Chapter17: Electrochemistry And Its Applications
Section17.6: E⁰cell, Gibbs Free Energy, And K⁰
Problem 17.6PSP
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Consider a reaction whose cell notation is Ag(s) | AgCl(s) | HCl(aq) | H2(g) | Pt(s) at 298 K, with an equilibrium constant of K = 5.65 × 109

The anode half reaction shows the reduction Cl−. True or False

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