The kinetic energy of an electron in the second Bohr orbit of a hydrogen atom is [ao is radius of first Bohr orbit]:
A
h24π2mao2
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B
h216π2mao2
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C
h232π2mao2
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D
h264π2mao2
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Solution
The correct option is Ch232π2mao2 As per Bohr's postulate, mvr=nh2π So, v=nh2πmr KE=12mv2 So, KE=12m[nh2πmr]2 Since r=ao×n2Z For 2nd Bohr orbit, r=ao×221=4ao KE=12m[22h24π2m2×(4ao)2]=h232π2mao2