What is the calculated value of the cell potential at 298K for an electrochemical cell with the following reaction, when the Ag" concentration is 1.10x10 M and the Mn2+ concentration is 1.33 M? 2Ag"(aq) + Mn(s)–2Ag(s) + Mn2 (aq) Answer: The cell reaction as written above is spontaneous for the concentrations given: Submit Answer Try Another Version 3 item attempts remaining Visited

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Use the References to access important values if needed for this question.
What is the calculated value of the cell potential at 298K for an electrochemical cell with the following reaction, when the Ag* concentration is 1.10x104 M and the Mn2+
concentration is 1.33 M ?
2Ag"(aq) + Mn(s)2Ag(s) + Mn²*(aq)
Answer:
V
The cell reaction as written above is spontaneous for the concentrations given:
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Transcribed Image Text:Fri Dec 1 A prod01-cnow-owl.cengagenow.com Bb Content E OWLV2 | Online teaching and learning resource fr. C A 24.9 ML Sample Of 0.350 M Ethylamine, Ca Paraphrasing .ewriting Tool Car note CAU EMAIL CANVAS Pirate Ship MYJSCC Vacancies | A. Birmingham New NCOER C.e Measures BLACKBOARD [References) Use the References to access important values if needed for this question. What is the calculated value of the cell potential at 298K for an electrochemical cell with the following reaction, when the Ag* concentration is 1.10x104 M and the Mn2+ concentration is 1.33 M ? 2Ag"(aq) + Mn(s)2Ag(s) + Mn²*(aq) Answer: V The cell reaction as written above is spontaneous for the concentrations given: Submit Answer Try Another Version 3 item attempts remaining Visited Previous Next 10 étv MacBook Air DD 80 F6 F7 F9 F10 F3 F4 F5 23 $ & 3 4 7 8 9. E R Y U 11 F G C V .. .- ト
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