Energy E of a hydrogen atom with principal quantum number n is given by E_n=-(13.6)/n^2eV. The energy of a photon ejected when the electron jumps from n=3 state to n=2 state of hydrogen is approximately.

Energy E of a hydrogen atom with principal quantum number n is given b

1.	Energy E of a hydrogen atom with principal quantum number n is given by E_n=-(13.6)/n^2eV. The energy of a photon ejected when the electron jumps from n=3 state to n=2 state of hydrogen is approximately.
Answer» 1.5 eV 0.85 eV 3.4 eV 1.9 eV Answer :A

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Energy E of a hydrogen atom with principal quantum number n is given by E_n=-(13.6)/n^2eV. The energy of a photon ejected when the electron jumps from n=3 state to n=2 state of hydrogen is approximately.

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