Answer to Question #94839 in General Chemistry for dan

Question #94839

An electron in an excited state of a hydrogen atom emits two photons in succession, the first at 3037 nm and the second at 94.92 nm, to return to the ground state (n=1). For a given transition, the wavelength of the emitted photon corresponds to the difference in energy between the two energy levels.

What were the principal quantum numbers of the initial and intermediate excited states involved?

Expert's answer

The equations you need are:

E = hc/λ and

ΔE = 2.18E-18J ( 1/nf^2 - 1/ni^2 )

ΔE1 = 6.63E-34Js x 3.00E8m/s / 94.92E-9m = 2.10E-18J

2.10E-18 = 2.18E-18J ( 1/1 - 1/ni^2)

0.9612 = 1 - 1/ni^2

0.0388 = 1/ni^2

25 = n^2

n=5

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Answer to Question #94839 in General Chemistry for dan

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