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Question of 140

Q.(i) Choose the correct set of quantum numbers from the following :
(A) n = 1, l = 0, m = 0, s = +1/2
(B) n = 2, l = 2, m = -2, s = +1/2
(C) n = 3, l = 1, m = -2, s = 1
(D) n = 1, l = 1, m = -1, s = -1/2

(1)
(ii) Sketch the shape of 2s orbital. (1)
Kerala DhseKerala DHSE Plus One Board 2022Subjective· 2mImportance★★★★★
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Only set (A) obeys the quantum number rules; the 2s orbital is a larger sphere than 1s with one internal spherical node.

(i) Checking each set against the rules (l = 0 to n−1; m = −l to +l; s = ±1/2):

  • (A) n=1, l=0, m=0, s=+1/2 → l must be 0 to (n−1)=0, so l=0 ✓; m=0 is within −0 to +0 ✓; s=+1/2 ✓. Valid.
  • (B) n=2, l=2, m=−2, s=+1/2 → for n=2, l can only be 0 or 1; l=2 is not allowed.
  • (C) n=3, l=1, m=−2, s=1 → for l=1, m can only be −1, 0, +1; m=−2 is not allowed. Also s must be ±1/2, not 1.
  • (D) n=1, l=1, m=−1, s=−1/2 → for n=1, l can only be 0; l=1 is not allowed.

So only (A) is a valid, physically allowed set of quantum numbers.

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