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A compound of vanadium has a magnetic mo...

A compound of vanadium has a magnetic moment of `1.73 BM`. What will be the electronic configurations:

A

`1s^(2) 2s^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(1)`

B

`1s^(2) 2s^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(2)`

C

`1s^(2) 2s^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(3)`

D

`1s^(2) 2s^(2) 2p^(6) 3s^(2) 3p^(6) 3d^(4)`

Text Solution

Verified by Experts

The correct Answer is:
1
Number of unpaired electron are given by Magnetic moment `=sqrt([n(n+2)])` where `n` is number of unpaired electrons or `1.73=sqrt([n(n+2)])` or `1.73xx1.73=n^(2)+2n`
`:. n=1`
Now vanadium atom must have one unpaired unpaired electron and thus its confiuration is:
`_(23)V^(4+): 1s^(2) 2s^(2) 2p^(6)3s^(2)3p^(6) 3d^(1)`
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Knowledge Check

  • A compound of vanadium has a magnetic moment of 1.73 BM. The electronic configuration of vanadium ion in the compound is:

    A
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