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Question

In the nuclear fusion reaction 21H+31H42He+n given that the repulsive potential energy between the two nuclei is 7.7×1014J, the temperature at which the gases must be heated to initiate the reaction is nearly [Boltzmann's constant k=1.38×1023J/K ]

A
109K
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B
107K
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C
105K
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D
103K
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Solution

The correct option is A 109K
Kinetic energy of molecules of a gas at a temperature T is 32kT
To initiate the reaction 32kT=7.7×1014JT=3.7×109K.

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