Question

Ecell of the cell; Mg|Mg2+(0.1 M)||Ag+(0.0001 M)|Ag is close to​

Answer 1

Answer:

I don't know the answer of this question is

Answer 2

Answer:

Mg+2Ag+(0.0001M)⟶Mg

2+

(0.130M)+2Ag

E

cell

=E

o

−

2

0.0591

log[

(Ag

+

)

2

(Mg

2+

)

]

E

cell

=8.17−

2

0.0591

log[

10

−8

0.130

]=2.959 V

Explanation:

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