Q.The longest wavelength doublet absorption transition is observed at 589 and 589.6 nm. Calculate the frequency of each transition and energy difference between two excited states.
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Start your 14-day free trial to unlock the full solution →The problem uses the photon energy relation to find the frequencies of two closely spaced spectral lines (the sodium D‑doublet) and then the tiny energy gap between the two upper excited states that produce them. The frequencies are Hz and Hz; the energy difference between the excited states is J.
Why this approach works
When an atom absorbs a photon, the photon’s energy exactly equals the difference between two atomic energy levels. Here, two absorption lines at 589.0 nm and 589.6 nm mean there are two slightly different upper energy levels (the “doublet” arises from spin‑orbit coupling in the sodium atom). The lower level is the same for both transitions. So:
- The frequency of each transition comes directly from .
- The energy difference between the two excited states is simply the difference in the photon energies of the two transitions — because both photons start from the same ground state.
Step‑by‑step calculation
1. Convert wavelengths to metres
The given wavelengths are in nanometres. For calculations in SI units:
2. Find the frequency of each transition
Use the wave equation , so . Speed of light .
For the first line:
For the second line:
Notice that the longer wavelength (589.6 nm) gives the lower frequency — wavelength and frequency are inversely proportional. This is a quick sanity check.
3. Calculate the photon energy for each transition
Planck’s relation: , with .
4. Find the energy difference between the two excited states
Both transitions start from the same lower state. So the difference in photon energies equals the difference in the upper state energies:
That is:
But let’s be more precise using the original numbers without rounding:
First compute the bracket:
…
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