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Tardigrade
Question
Chemistry
The rate of a gaseous reaction triples when temperature is increased by 10° C from 25° C. The energy of activation of the reaction (in k J m o l-1 ) will be
Q. The rate of a gaseous reaction triples when temperature is increased by
1
0
∘
C
from
2
5
∘
C
. The energy of activation of the reaction (in
k
J
m
o
l
−
1
) will be
2307
217
Uttarkhand PMT
Uttarkhand PMT 2009
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A
40
B
70
C
83.8
D
200
Solution:
Given,
T
1
=
2
5
∘
C
=
25
+
273
=
298
K
T
2
=
(
25
+
1
0
∘
C
)
=
3
5
∘
C
=
308
K
Rate
∝
k
⇒
(
Rate
)
3
5
∘
(
Rate
)
2
5
∘
=
k
3
5
∘
k
2
5
∘
k
3
5
∘
k
2
5
∘
=
3
1
From Arrhenius equation,
lo
g
k
3
5
∘
k
2
5
∘
=
2.303
R
E
a
[
T
1
1
−
T
2
1
]
lo
g
3
=
2.30
×
8.314
×
1
0
−
3
E
a
[
298
1
−
308
1
]
0.477
=
2.30
×
8.314
×
1
0
−
3
E
a
[
298
×
308
10
]
∴
E
a
=
83.8
k
J
m
o
l
−
1