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Byju's Answer
Standard X
Chemistry
Arrhenius Theory of Acids and Bases
0.01 moles of...
Question
0.01 moles of a weak acid HA(
K
a
=
2.0
×
10
−
6
) is dissolved in
1.0
L
of
0.1
M
H
C
l
solution. The degree of dissociation of HA is _______
×
10
−
5
(Round off to the Nearest Integer). Assume degree of dissociation << 1.
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Solution
Concentration
H
+
=
0.1
+
0.01
α
≈
0.1
K
a
=
[
H
+
]
[
A
−
]
[
H
A
]
⇒
2
×
10
−
6
=
[
0.1
]
[
0.01
α
]
[
0.01
]
α
=
2
×
10
−
5
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Similar questions
Q.
0.01 moles of a weak acid HA(
K
a
=
2.0
×
10
−
6
) is dissolved in
1.0
L
of
0.1
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H
C
l
solution. The degree of dissociation of HA is _______
×
10
−
5
(Round off to the Nearest Integer). Assume degree of dissociation << 1.
Q.
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o
l
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1
Freezing point of pure water =
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]
Q.
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