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Byju's Answer
Standard XII
Chemistry
Equivalent, Molar Conductivity and Cell Constant
Given the lim...
Question
Given the limiting molar conductivity as:
˄
0
m
(HCl) = 425.9Ω
-1
cm
2
mol
-1
˄
0
m
(NaCl) = 126.4Ω
-1
cm
2
mol
-1
˄
0
m
(CH
3
COONa) = 91Ω
-1
cm
2
mol
-1
The molar conductivity at infinite dilution, of acetic acid (in Ω
-1
cm
2
mol
-1
) will be
A
481.5
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B
256.5
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C
390.5
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D
516.5
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Solution
The correct option is
C
390.5
Suggest Corrections
0
Similar questions
Q.
Given the limiting molar conductivity as
^
0
m
(
H
C
l
)
=
425.9
Ω
−
1
c
m
2
m
o
l
−
1
^
0
m
(
N
a
C
l
)
=
126.4
Ω
−
1
c
m
2
m
o
l
−
1
^
0
m
(
C
H
3
C
O
O
N
a
)
=
91
Ω
−
1
c
m
2
m
o
l
−
1
The molar conductivity, at infinite dilution, of acetic (in
Ω
−
1
c
m
2
m
o
l
−
1
) will be:
Q.
Given the limiting molar conductivity as:
A
∞
m
(
H
C
l
)
=
126.4
Ω
−
1
c
m
2
m
o
l
−
1
A
∞
m
(
N
a
C
l
)
=
425.9
Ω
−
1
c
m
2
m
o
l
−
1
A
∞
m
(
C
H
3
C
O
O
N
a
)
=
91
Ω
−
1
c
m
2
m
o
l
−
1
The molar conductivity at infinite dilution of acetic acid
(
i
n
Ω
−
1
c
m
2
m
o
l
−
1
)
will be:
Q.
Given the limiting molar conductivity as
˚
λ
m
(HCl)
=
425.9
Ω
−
1
c
m
2
m
o
l
−
1
˚
λ
m
(NaCl)
=
126.4
Ω
−
1
c
m
2
m
o
l
−
1
˚
λ
m
(CH
3
COONa)
=
91
Ω
−
1
c
m
2
m
o
l
−
1
The molar conductivity, at infinite dilution, of acetic acid (in
Ω
−
1
c
m
2
m
o
l
−
1
) will be
Q.
Given the following molar conductivity at infinite dilution and
25
o
C
HCl:
∧
∞
m
=
426.2
S
c
m
2
m
o
l
−
1
KCl:
∧
∞
m
= 114.42 S
c
m
2
m
o
l
−
1
C
H
3
C
O
O
K
:
∧
∞
m
=
149.86
S
c
m
2
m
o
l
−
1
The molar conductance at infinite dilution and
25
o
C, for acetic acid solution is:
Q.
Molar conductivity for a compound AB is
145.0
S
c
m
2
m
o
l
−
1
and for CB is
110.1
S
c
m
2
m
o
l
−
1
. Limiting molar conductivity for
A
+
is
73.5
S
c
m
2
m
o
l
−
1
. What is the molar conductivity for
C
+
?
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