11. The equilibrium constant for the reaction: AgBr(s) = Ag*(aq) + Br (aq) is the solubility product constant, Ksp = 7.7 x 10 -13 at 25°C. %3D Calculate AG for the reaction when [Ag *] = 1.0 x 10 -2 M and [Br -] = 1.0 x 10-3 M. %3D Is the reaction spontaneous or nonspontaneous at these concentrations?

Principles of Instrumental Analysis
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Author:Douglas A. Skoog, F. James Holler, Stanley R. Crouch
Publisher:Douglas A. Skoog, F. James Holler, Stanley R. Crouch
Chapter22: An Introduction To Electroanalytical Chemistry
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Problem 22.10QAP
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11. The equilibrium constant for the reaction:
AgBr(s) = Ag*(aq) + Br" (aq) is the solubility product constant,
Ksp = 7.7 x 10 -13 at 25°C.
%3D
Calculate AG for the reaction when [Ag *] = 1.0 x 10 -2 M and [Br -] = 1.0 x 10-3 M.
%3D
Is the reaction spontaneous or nonspontaneous at these concentrations?
Transcribed Image Text:11. The equilibrium constant for the reaction: AgBr(s) = Ag*(aq) + Br" (aq) is the solubility product constant, Ksp = 7.7 x 10 -13 at 25°C. %3D Calculate AG for the reaction when [Ag *] = 1.0 x 10 -2 M and [Br -] = 1.0 x 10-3 M. %3D Is the reaction spontaneous or nonspontaneous at these concentrations?
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