Q.The gyro-magnetic ratio of an electron in an H-atom, according to Bohr model, is
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Start your 14-day free trial to unlock the full solution →The magnitude of the orbital gyromagnetic ratio is , the same for every Bohr orbit - so it is independent of the orbit (option a) - and because the electron's charge is negative, its magnetic moment points opposite to its angular momentum, making the (signed) gyromagnetic ratio negative (option b). Both (a) and (b) are correct.
Setting up the orbiting electron as a current loop
In the Bohr model, an electron of charge magnitude moves in a circular orbit of radius with speed . This constitutes a tiny current loop:
The orbital angular momentum has magnitude
The gyromagnetic ratio
Define (magnitude):
Notice and cancel completely - this ratio does not depend on which orbit () the electron is in. Every allowed Bohr orbit, no matter its radius or speed, gives the same .
Bohr's quantization sets , which fixes and for each - but since is a ratio, and both and scale the same way through , the dependence on cancels out entirely.
This confirms option (a): independent of which orbit it is in.
Sign of the ratio
The electron's charge is negative (). Using the vector relation between orbital magnetic moment and angular momentum, …
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