Q.The Bohr model for the spectra of a H-atom
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Start your 14-day free trial to unlock the full solution →The Bohr model applies only to single-electron atoms (like atomic hydrogen) and fails for multi-electron systems (like He) or molecules — so options (A) and (B) are correct, while (C) and (D) are false.
The Bohr model is a beautiful, simple picture of the hydrogen atom: an electron orbiting a nucleus in fixed, quantised orbits. But its simplicity comes with strict limits. Let’s see why each option stands or falls.
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Option (A): “will not be applicable to hydrogen in the molecular form.”
In a hydrogen molecule (), two nuclei and two electrons interact. The Bohr model assumes a single electron moving in a Coulomb field from one nucleus. It has no way to handle the shared electrons, molecular bonding, or the multi-centre potential. So yes — it fails completely for molecular hydrogen. This is correct.
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Option (B): “will not be applicable as it is for a He-atom.”
A helium atom has two electrons. The Bohr model, in its original form, works only for one-electron systems (H, He, Li, etc.). For neutral He, the electron-electron repulsion is not accounted for — the model cannot predict its spectrum. So this is also correct.
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Option (C): “is valid only at room temperature.”
Temperature is irrelevant to the Bohr model’s validity. The model is a quantum description of energy levels — it works (within its limits) at any temperature. At high temperatures, atoms may ionise, but the model itself doesn’t break down because of temperature. This is false. …
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