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Consider a voltaic cell constructed with a silver electrode placed in a 1.0 M AgNO3 solution and an aluminum electrode placed in a 1.0 M Al(NO3)3 solution. Write out the half reactions that occur at the anode and the cathode (4 points). Determine the cell potential and the direction of electron flow

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Answer:

2.46V

Explanation:

Oxidation half equation

Al(s)------> Al^3+(aq) + 3e

Reduction half equation

3Ag^+(aq) +3e --------> 3Ag(s)

Since the concentration of each solution is 1M we assume standard conditions

EĀ°cell = EĀ°cathode - EĀ°anode

EĀ°cathode= 0.80V

EĀ°anode= -1.66V

EĀ°cell = 0.80 - (-1.66)

EĀ°cell = 2.46V

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