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Q.A hydrogen atom is in its third excited state.

(a) How many spectral lines can be emitted by it before coming to the ground state ? Show these transitions in the energy level diagram.
(b) In which of the above transitions will the spectral line of shortest wavelength be emitted ?
CBSECBSE Class XII Board 2020Subjective· 2mImportance★★★★★
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A hydrogen atom in the third excited state (n=4n=4) can emit 6 distinct spectral lines through all possible downward transitions to the ground state. The shortest wavelength (highest energy) corresponds to the direct 4→14 \to 1 transition.

Understanding spectral lines from atomic transitions

When an electron in an excited state drops to a lower energy level, it emits a photon whose energy equals the difference between the two levels. The third excited state means n=4n=4 (ground state is n=1n=1, first excited is n=2n=2, second excited is n=3n=3, and so on). From n=4n=4, the electron can cascade down through multiple paths, and each unique transition produces a spectral line at a characteristic wavelength.

The number of possible spectral lines isn't just the number of steps down—it's the number of distinct transitions between any two levels from n=4n=4 down to n=1n=1.

The formula for the number of spectral lines when an electron can transition from level nn to all lower levels is:

Number of lines=n(n−1)2\text{Number of lines} = \frac{n(n-1)}{2}

This counts all unique pairs of levels (ni,nf)(n_i, n_f) where ni>nfn_i > n_f.

Part (a): Counting the spectral lines

For n=4n=4:

Number of lines=4(4−1)2=4×32=6\text{Number of lines} = \frac{4(4-1)}{2} = \frac{4 \times 3}{2} = 6

Let me enumerate all six transitions:

TransitionInitial nin_iFinal nfn_fSeries
143Paschen
242Balmer
341Lyman
432Balmer
531Lyman
621Lyman

Energy level diagram

Draw four horizontal lines, one per level, stacked with n=1n=1 at the bottom and n=4n=4 at the top, spaced according to their energies (E1=−13.6E_1=-13.6 eV, E2=−3.4E_2=-3.4 eV, E3=−1.51E_3=-1.51 eV, E4=−0.85E_4=-0.85 eV — note how the gaps shrink as nn increases). Mark six downward arrows on this diagram, each starting at a higher level and ending at a lower one: (1) 4→34\to3, (2) 4→24\to2, (3) 4→14\to1, (4) 3→23\to2, (5) 3→13\to1, (6) 2→12\to1. The arrow 4→14\to1 spans the full height of the diagram (the largest energy release), while 4→34\to3, 3→23\to2, and 2→12\to1 are the shortest, single-step arrows.

Part (b): Shortest wavelength transition …

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