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Standard XII
Chemistry
Electrochemical Cells, Galvanic Cells
Cathodic stan...
Question
Cathodic standard reduction potential minus anodic standard reduction potential is equal to:
A
Faraday
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B
Coulomb
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C
Cell potential
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D
Ampere
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Solution
The correct option is
C
Cell potential
At anode oxidation takes place
SRP of oxidation
=
−
S
R
P
o
f
A
n
o
d
e
.
At cathode reduction takes place
Cell potential
=
Reduction potential of cathode + oxidation potential of anode
=
SRP of calthode - SRP of anode
.
Hence, option ( C ) is correct.
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Similar questions
Q.
Consider the following relations for emf of an electrochemical cell :
(i) EMF of cell = (Oxidation potential of anode) - (Reduction potential of cathode)
(ii) EMF of cell = (Oxidation potential of anode) + (Reduction potential of cathode)
(iii) EMF of cell = (Reduction potential of anode) + (Reduction potential of cathode)
(iv) EMF of cell = (Oxidation potential of anode) - (Oxidation potential of cathode)
Which of the above relation(s) is correct?
Q.
Consider the following relations for emf of an electrochemical cell:
(i) EMF of cell = (Oxidation potential of anode) – (Reduction potential of cathode)
(ii) EMF of cell = (Oxidation potential of anode) + (Reduction potential of cathode)
(iii)) EMF of cell = (Reductional potential of anode) + (Reduction potential of cathode)
(
i
v
)
) EMF of cell = (Oxidation potential of anode) – (Oxidation potential of cathode)
Q.
The standard reduction potential of
T
i
O
2
+
and
T
i
3
+
are given by.Find the standard reduction potential of
T
i
O
2
+
to
T
i
:
Q.
In acid medium, the standard reduction potential of
N
O
converted to
N
2
O
is
1.59
V
. Its standard potential in alkaline medium would be:
Q.
A solution containing equimolar amounts of
N
i
C
l
2
and
S
n
B
r
2
is electrolysed using a 9V battery and graphite electrodes. What are the first products formed?
Half reaction
N
i
2
+
(
a
q
)
+
2
e
−
→
N
i
(
s
)
Standard reduction potential (V) -0.236
Half reaction
S
n
2
+
(
a
q
)
+
2
e
−
→
S
n
(
s
)
Standard reduction potential (V) -0.141
Half reaction
B
r
2
(
a
q
)
+
2
e
−
→
2
B
r
−
(
a
q
)
Standard reduction potential (V) 1.077
Half reaction
C
l
2
(
a
q
)
+
2
e
−
→
2
C
l
−
(
a
q
)
Standard reduction potential (V) 1.360
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