Q.A difference of separates two energy levels in an atom. What is the frequency of radiation emitted when the atom makes a transition from the upper level to the lower level?
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Start your 14-day free trial to unlock the full solution →The energy difference between two atomic levels is directly proportional to the frequency of the emitted photon via . For , the frequency is .
When an electron in an atom jumps from a higher energy level to a lower one, the atom loses energy. That energy doesn't vanish — it leaves the atom as a single packet of light, a photon. The photon’s energy is exactly equal to the difference between the two atomic energy levels.
This is the core idea behind atomic spectra: each spectral line corresponds to a specific transition, and the photon’s frequency is locked to the energy gap by Planck’s constant .
Here is Planck’s constant, and is the frequency in hertz. The problem gives , but is in joules — so we must convert the energy to joules first.
- Convert the energy from eV to joules. The conversion factor is . So:
- Apply the photon energy relation. From , we solve for frequency:
- Plug in the numbers.
Divide:
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