e other half-cell is composed of an inert electrode in a solution containing a mixture of Fe 1 Fe* ions. What will the cell potential, Ecell, be if the soluble ions have the followin centrations at 25°C? [Zn*] = 0.49M; [Fe] = 0.16 M; [Fe*] = 0.41 M а. Write the balanced electrochemical reaction. Use the reduction potentials to determine E°: i. E[Fe**, Fe* ] = + 0.771 V and E[Zn Zn] = - 0.763 V Write the expression for the reaction quotient, Q b. с.

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Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
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Chapter1: Chemical Foundations
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A cell constructed in which one half-cell consists of a Zn wire dipped in a solution of Zn(NO3)2.
The other half-cell is composed of an inert electrode in a solution containing a mixture of Fe
and Fe ions.
concentrations at 25°C? [Zn*"] = 0.49M; [Fe"]
What will the cell potential, Ecell, be if the soluble ions have the following
0.16 M; [Fe*]
= 0.41 M
а.
Write the balanced electrochemical reaction.
Use the reduction potentials to determine E°: i. E[Fe*, Fe²* ] = + 0.771 V and E[Zn**,
= - 0.763 V
b.
Zn]
Write the expression for the reaction quotient, Q
d. Determine Ecell.
Draw the complete galvanic cell set-up for this. Label each component.
с.
е.
Transcribed Image Text:A cell constructed in which one half-cell consists of a Zn wire dipped in a solution of Zn(NO3)2. The other half-cell is composed of an inert electrode in a solution containing a mixture of Fe and Fe ions. concentrations at 25°C? [Zn*"] = 0.49M; [Fe"] What will the cell potential, Ecell, be if the soluble ions have the following 0.16 M; [Fe*] = 0.41 M а. Write the balanced electrochemical reaction. Use the reduction potentials to determine E°: i. E[Fe*, Fe²* ] = + 0.771 V and E[Zn**, = - 0.763 V b. Zn] Write the expression for the reaction quotient, Q d. Determine Ecell. Draw the complete galvanic cell set-up for this. Label each component. с. е.
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