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Concept explainers
(a)
Interpretation:
The standard electrode potential of the given cell and the spontaneous
Concept Introduction:
Galvanic cell is an electrochemical cell which converts the chemical energy of a reaction into electrical energy.
Standard hydrogen electrode (SHE) is a reference electrode whose potential is considered to be zero volts. The potential of any other electrode is found by comparing with the SHE.
The standard electrode potential of a cell
Nernst equation is one of the important equations in
Where,
At room temperature
(a)
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Answer to Problem 18.74QP
Answer:
The standard electrode potential of the cell is found to be
Explanation of Solution
Explanation:
To calculate the standard electrode potential of the cell
The standard electrode potential of the cell is the difference in standard electrode potential of the cathode and anode.
In order to determine the standard electrode potential we need to find out the half cell reactions in the cathode and anode of the given electrode.
The half cell reactions are
The standard electrode potential is calculated as given below
(b)
Interpretation:
The standard electrode potential of the given cell and the spontaneous chemical reaction in the cell has to be found. The cell potential of the given cell has to be found with the different concentrations of the hydrogen ion and a design for the
Concept Introduction:
Galvanic cell is an electrochemical cell which converts the chemical energy of a reaction into electrical energy.
Standard hydrogen electrode (SHE) is a reference electrode whose potential is considered to be zero volts. The potential of any other electrode is found by comparing with the SHE.
The standard electrode potential of a cell
Nernst equation is one of the important equations in electrochemistry. In Nernst equation the electrode potential of a cell reaction is related to the standard electrode potential, concentration or activities of the species that is involved in the chemical reaction and temperature.
Where,
At room temperature
(b)
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Answer to Problem 18.74QP
Answer:
The spontaneous reaction taking place in the cell is the reduction of silver ion and oxidation of hydrogen gas.
Explanation of Solution
Explanation:
To write the spontaneous cell reaction under the given standard conditions
In the given cell composed of standard hydrogen electrode and silver electrode, The silver ions in the solution will be reduced into solid silver and the hydrogen molecules will be oxidised into hydrogen ions.
(c)
Interpretation:
The standard electrode potential of the given cell and the spontaneous chemical reaction in the cell has to be found. The cell potential of the given cell has to be found with the different concentrations of the hydrogen ion and a design for the
Concept Introduction:
Galvanic cell is an electrochemical cell which converts the chemical energy of a reaction into electrical energy.
Standard hydrogen electrode (SHE) is a reference electrode whose potential is considered to be zero volts. The potential of any other electrode is found by comparing with the SHE.
The standard electrode potential of a cell
Nernst equation is one of the important equations in electrochemistry. In Nernst equation the electrode potential of a cell reaction is related to the standard electrode potential, concentration or activities of the species that is involved in the chemical reaction and temperature.
Where,
At room temperature
(c)
![Check Mark](/static/check-mark.png)
Answer to Problem 18.74QP
Answer:
(i) The electrode potential, when the concentration of hydrogen ion is
(ii) The electrode potential, when the concentration of hydrogen ion is
Explanation of Solution
Explanation:
(i)
To calculate the electrode potential when the concentration of hydrogen ion is
The electrode potential of the cell can be calculated using the Nernst equation.
Where,
In the standard state all the species will have concentration equal to unity. In this case only the concentration of hydrogen ion is changed. On plugging in the concentration of the oxidised and reduced species to the given equation the electrode potential of the cell can be calculated.
(ii)
To calculate the electrode potential when the concentration of hydrogen ion is
The electrode potential of the cell can be calculated using the Nernst equation.
Where
In the standard state all the species will have concentration equal to unity. In this case only the concentration of hydrogen ion is changed. On plugging in the concentration of the oxidised and reduced species to the given equation the electrode potential of the cell can be calculated.
(d)
Interpretation:
The standard electrode potential of the given cell and the spontaneous chemical reaction in the cell has to be found. The cell potential of the given cell has to be found with the different concentrations of the hydrogen ion and a design for the
Concept Introduction:
Galvanic cell is an electrochemical cell which converts the chemical energy of a reaction into electrical energy.
Standard hydrogen electrode (SHE) is a reference electrode whose potential is considered to be zero volts. The potential of any other electrode is found by comparing with the SHE.
The standard electrode potential of a cell
Nernst equation is one of the important equations in electrochemistry. In Nernst equation the electrode potential of a cell reaction is related to the standard electrode potential, concentration or activities of the species that is involved in the chemical reaction and temperature.
Where,
At room temperature
(d)
![Check Mark](/static/check-mark.png)
Answer to Problem 18.74QP
Answer:
The given cell is sensitive to the hydrogen in concentration. Hence it can be used as the
Explanation of Solution
Explanation:
To suggest a design for a
From the results obtained in the question (c) it is clear that the given cell itself can be used as a
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Chapter 18 Solutions
EBK CHEMISTRY: ATOMS FIRST
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- Don't used hand raiting and don't used Ai solutionarrow_forwardBalance the following equations Synthesis Ca 1. Mg + Cl₂ → MgCl2Syn 2. Al + 302 -> 2A1203Com 3. P4 + 502 4. Bi + + Cl₂ 5. H2 + N2 ↑ 6. Zn + 02 7. Cu + 02 8. Sn + 9. Na 10. 11. AR Ag + Cl₂ S8 I2 ↑ ↑ ↑ ↑ Pb + 12. Al + Br₂ 13. Fe + F2 ↑ 14. Sn + 15. Sb + 16. Ca + 17. Ba + 02 ↑ ↑ ↑ P4010 Com BiCl, Syn NH3 Syn Zno Com Cu2O com SnCl4 Syn Na2S Syn Agl Syn Pbo Com AlBr, yn FeF3 Syn Sno com Sb₂Ss Syn Cao cơm Bao cơm 18. Mg + P4 -> Mg3P2 Syn 19. K + K&N Syn ZnS Syn 20. Znarrow_forwardNonearrow_forward
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