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Question

Consider following Schrodinger wave equation for an orbital of hydrogen atom.
(a0 is first Bohr radius)
Ψ=2r81a20πa0(6ra0)er3a0 cosθ

List-I List-II(I)Which orbital is this?(P)1(II)Number of total node(s)(Q)2(III)Nodal plane(R)3pz(IV)Number of radial node(s)(S)3px(T)XY plane(U)YZ plane

Match the correct combination considering List-I and List-II

A
(III),(T) and (IV),(P)

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B
(III),(U) and (IV),(P)
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C
(III),(T) and (IV),(Q)
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D
(III),(U) and (IV),(Q)
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Solution

The correct option is A (III),(T) and (IV),(P)


(III) Since the orbital is 3pz, so the nodal plane is XY plane.
(IV) Number of radial nodes = nl1=311=1

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