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Assign a reason for the following: In group 15, the bond angle H−M−H decreases in the following order: NH3 (107.8°), PH3 (93.6°), AsH3 (91.8°). - Chemistry (Theory)

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प्रश्न

Assign a reason for the following:

In group 15, the bond angle \[\ce{H - M - H}\] decreases in the following order: NH3 (107.8°), PH3 (93.6°), AsH3 (91.8°).

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उत्तर

  1. In group 15 hydrides like NH3, PH3, and AsH3, the central atom has three bond pairs and one lone pair of electrons, forming a pyramidal shape.
  2. The bond angle decreases down the group because the size of the central atom increases.
  3. In NH3, nitrogen is small and highly electronegative, causing strong repulsion between electron pairs and a larger bond angle (107.8°).
  4. In PH3 and AsH3, larger atomic size and lower electronegativity reduce electron density and lone pair-bond pair repulsion, decreasing the bond angle to 93.6° and 91.8°, respectively.

Thus, the bond angle decreases from NH3 to AsH3 due to increasing atomic size and decreasing electron pair repulsion.

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अध्याय 7: p-Block Elements - REVIEW EXERCISES [पृष्ठ ४१७]

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नूतन Chemistry Part 1 and 2 [English] Class 12 ISC
अध्याय 7 p-Block Elements
REVIEW EXERCISES | Q 7.71 (i) | पृष्ठ ४१७
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