A proton with kinetic energy 8eV is moving in a uniform magnetic field. The kinetic energy of a deuteron moving in the same path in the same magnetic field will be:
2eV
4eV
6eV
8eV
A
4eV
B
2eV
C
8eV
D
6eV
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Solution
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Kinetic Energy of a charged particle in a magnetic field is KE=P22m=(qBr)22m=q22mB2r2 ∴KαKp=(qαqp)2mpmα=1×12=12 ∴Kα=Kp×12=8×12=4eV
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