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Q.Lyman series lies in which of the following region of spectrum

(a) Ultra Violet
(b) Visible
(c) Infra-Red
(d) None of them
Jammu Kashmir JkboseJKBOSE Class 12 Annual Regular Examination 2026MCQ· 1mImportance★★★★★
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Of the hydrogen spectral series, Lyman (transitions to n=1n=1) falls entirely in the ultraviolet; Balmer (to n=2n=2) is mostly visible; Paschen, Brackett, and Pfund (to n=3,4,5n=3,4,5) lie in the infrared.

Concept. In the Bohr model, spectral lines are emitted when an electron jumps from a higher energy level n2n_2 to a lower level n1n_1, with photon energy

E=13.6 eV(1n12−1n22)E = 13.6\ \text{eV}\left(\frac{1}{n_1^2}-\frac{1}{n_2^2}\right)

Lyman series (n1=1n_1 = 1). These transitions (n2=2,3,4,⋯→n1=1n_2 = 2,3,4,\dots \to n_1=1) release the largest energy jumps because they end on the lowest, most tightly bound level. Larger photon energy means shorter wavelength — these wavelengths (91.2 nm to 121.6 nm) fall in the ultraviolet region, below the visible range.

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