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Tardigrade
Question
Chemistry
Enthalpy change for the reaction, 4 H ( g ) arrow 2 H 2( g ) is -869.6 kJ The dissociation energy of H - H bond is
Q. Enthalpy change for the reaction,
4
H
(
g
)
→
2
H
2
(
g
)
is
−
869.6
k
J
The dissociation energy of
H
−
H
bond is
5436
212
AIPMT
AIPMT 2011
Thermodynamics
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A
- 434.8 kJ
28%
B
- 869.6 kJ
18%
C
+ 434.8 kJ
43%
D
+ 217.4 kJ
11%
Solution:
Given
4
H
(
g
)
→
2
H
2
(
g
)
;
Δ
H
=
−
−
869.6
k
J
or
2
H
2
(
g
)
→
4
H
(
g
)
;
Δ
H
=
869.6
k
J
H
2
(
g
)
→
2
H
(
g
)
;
Δ
H
=
2
869.6
=
434.8
k
J