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Byju's Answer
Standard XII
Chemistry
Electrochemical Cells, Galvanic Cells
For the cell ...
Question
For the cell :
Z
n
|
Z
n
2
+
|
|
C
u
2
+
|
C
u
E
⊖
z
n
=
0.736
V
;
E
⊖
(
c
u
)
=
−
0.35
V
Calculate the cell EMF.
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Solution
Anode:
Z
n
⟶
Z
n
2
+
+
2
e
−
E
⊖
=
−
0.736
V
Cathode:
C
u
2
+
+
2
e
−
⟶
C
u
E
⊖
=
0.35
V
¯
¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯
¯
Z
n
+
C
u
2
+
⟶
Z
n
2
+
+
C
u
–
––––––––––––––––––––––––––––
–
E
c
e
l
l
=
E
⊖
c
−
E
⊖
a
=
0.35
−
(
−
0.736
)
=
1.086
V
It is a Daniell cell, it is reversible in the sense that it reaches equilibrium and then it does not deliver any energy.
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Similar questions
Q.
A cell is represented by
Z
n
∣
∣
Z
n
2
+
(
a
q
)
∣
∣
∣
∣
C
u
2
+
(
a
q
)
∣
∣
C
u
.
Given,
C
u
2
+
+
2
e
−
⟶
C
u
,
E
∘
=
+
0.35
V
and
Z
n
2
+
+
2
e
−
⟶
Z
n
,
E
∘
=
−
0.763
V
. Write the cell reactions, emf of the cell and state whether the cell reaction will be spontaneous or not?
Q.
The emf
(
E
∘
)
of the following cells are:
A
g
/
A
g
+
(
1
M
)
∥
C
u
2
+
(
1
M
)
|
C
u
;
E
∘
=
−
0.46
v
o
l
t
Z
n
/
Z
n
2
+
(
1
M
)
∥
C
u
2
+
(
1
M
)
|
C
u
;
E
∘
=
+
1.10
v
o
l
t
Calculate the emf of the cell:
Z
n
|
Z
n
2
+
(
1
M
)
∥
A
g
+
(
1
M
)
|
A
g
.
Q.
The standard reduction potential
E
∘
, for the half reaction are:-
Z
n
→
Z
n
2
+
+
2
e
−
;
E
∘
=
0.76
V
C
u
→
C
u
2
+
+
2
e
−
;
E
∘
=
0.34
V
The emf for the cell reaction,
Z
n
(
s
)
+
C
u
2
+
→
Z
n
2
+
+
C
u
(
s
)
is_____________.
Q.
For cell reaction,
Z
n
+
C
u
2
+
→
Z
n
2
+
+
C
u
,
cell representation is