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Q.Mention Rutherford's nuclear atomic model. What are its drawbacks?

Jharkhand JacJAC Intermediate Board 2026Subjective· 3mImportance★★★★★
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Rutherford's nuclear model correctly located the atom's mass/positive charge in a tiny central nucleus, but classical physics predicts such an atom should instantly collapse and shouldn't give sharp spectral lines - which is not what is observed.

Based on the results of his alpha-particle scattering experiment, Rutherford proposed the following nuclear model of the atom:

  1. Almost the entire mass of the atom, and all its positive charge, is concentrated in an extremely small, dense central region called the nucleus.
  2. The electrons (negatively charged, much lighter) revolve around this nucleus in circular orbits, much like planets orbiting the Sun, held in orbit by the electrostatic (Coulomb) attraction between the nucleus and the electrons providing the necessary centripetal force.
  3. The size of the nucleus is very small compared to the size of the atom as a whole - most of the atom's volume is essentially empty space.

DRAWBACKS of this model:

(i) Stability problem: according to classical electromagnetic theory, an accelerating charge (and an electron in a circular orbit is constantly accelerating, since its direction of velocity keeps changing) must continuously radiate electromagnetic energy. If the orbiting electron loses energy this way, its orbital radius should continuously shrink, and it should spiral inward and crash into the nucleus in a fraction of a second - meaning atoms, as this model describes them, should be highly unstable, which contradicts the fact that atoms are stable. …

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