Calculate the total number of angular nodes and radial nodes present in 3p orbital

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Ans: The number of radial nodes is given by n-l-1, where n is principal quantum number, l is azimuthal quantum number. The number of angular nodes is given by n-l, where n is principal quantum number, l is azimuthal quantum number.

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In 4d orbital, n = 4 and l=2

Radial nodes = nl1

Radial nodes = 4 – 2 – 1 = 1

And angular nodes,  l=2

B 2 + σ 1 s 2 s * 1 s 2 σ 2 s 2 σ * 2 s 2 π 2 p 1  

Here, number of unpaired electrons, n = 1

Spin only moment ;    μ = n ( n + 2 ) B . M

= 173 × 10-2 B.M

 

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Δ H = Δ U + Δ ( P V )

= Δ U + P Δ V + V Δ P

= Δ U + P Δ V   (At constant pressure)

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Chemistry NCERT Exemplar Solutions Class 11th Chapter Two 2025

Chemistry NCERT Exemplar Solutions Class 11th Chapter Two 2025

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