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Q.What are the postulates of Bohr's model of hydrogen atom ? Discuss the importance of this model to explain various series of line spectra in hydrogen atom.

Andhra Pradesh BieapBIEAP Intermediate Board (1st Year) 2023Subjective· 8mImportance★★★★★
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Bohr's model postulates quantised circular orbits of fixed energy for the electron, with spectral lines arising from photon emission/absorption during transitions between orbits; this explains the various series (Lyman, Balmer, etc.) of the hydrogen line spectrum as transitions to different final orbits.

Postulates of Bohr's model of the hydrogen atom:

  1. The electron in a hydrogen atom moves around the nucleus in a circular path of fixed radius and energy, called a stationary state or orbit — while in such an orbit, the electron does NOT radiate energy (unlike classical electromagnetic theory, which would predict continuous energy loss and collapse into the nucleus).

  2. Only those orbits are permitted (allowed) for which the electron's angular momentum is quantised, i.e. an integral multiple of h/2*pi:

mvr = nh/2*pi, n = 1, 2, 3, ... (the principal quantum number)

  1. Energy is emitted or absorbed by the atom only when the electron jumps (makes a transition) from one stationary state to another. If it moves from a higher-energy orbit (E2) to a lower one (E1), it emits a photon of energy equal to the difference; to move up, it must absorb a photon of exactly that energy:

hv = E2 - E1 (Bohr's frequency condition)

  1. Combining these gives the energy of the electron in the nth orbit of hydrogen: En = -2.18 x 10^-18 J (Z^2/n^2), and the transition-frequency formula 1/lambda = R(1/n1^2 - 1/n2^2), where R is the Rydberg constant.

Importance in explaining hydrogen line spectra:

Because only discrete (quantised) orbits/energies are allowed, an electron falling from a higher orbit n2 to a lower orbit n1 emits radiation of one exact, discrete frequency (not a continuous range) — this directly explains why the hydrogen emission spectrum consists of sharp, discrete lines rather than a continuous band, and Bohr's formula correctly predicts their wavelengths.

Depending on which orbit (n1) the electron finally lands in, the transitions group into distinct spectral series: …

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