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Q.Explain Hund's rule of maximum multiplicity with example.

Haryana BsehBoard of School Education Haryana (Senior Secondary Part-I / Class 11) 2022Subjective· 3mImportance★★★★★
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Pairing in degenerate orbitals happens only after each orbital in that sub-shell already holds one electron of parallel spin — nitrogen (2p3^3) is the classic example.

Hund's rule of maximum multiplicity states: electron pairing in orbitals of the same sub-shell (degenerate orbitals, e.g. the three p-orbitals or five d-orbitals) does not take place until each orbital of that sub-shell has one electron each, and all these singly-occupying electrons have parallel spin. This arrangement minimises electron-electron repulsion (since electrons in different orbitals are farther apart, on average, than two electrons forced into the same orbital) and results in the maximum possible spin multiplicity — hence the name.

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