9. The Balmer series for the hydrogen atom corresponds to electronic transitions that terminate in the state with quantum number n = 2 as shown in the figure below. Consider the photon of longest wavelength corresponding to a transition shown in the figure. E (eV) 0.00 ENERGY n 8 6543 2- Balmer series -0.378 -0.544 2 -0.850 4 -1.512 -3.401 a) Determine its wavelength of emitted photon. b) How much energy is required to ionize hydrogen when it is in the n = 2 state? c) How much energy is required to ionize hydrogen when it is in the n = 2 state? d) What is the atomic Radius for n-4 state.

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9. The Balmer series for the hydrogen atom corresponds to electronic transitions that terminate
in the state with quantum number n = 2 as shown in the figure below. Consider the photon of
longest wavelength corresponding to a transition shown in the figure.
E (eV)
0.00
ENERGY
n
8
6543
2
Balmer
series
-0.378
-0.544 2
-0.850 4
-1.512
--3.401
a) Determine
its wavelength of emitted photon.
b) How much energy is required to ionize hydrogen when it is in the n = 2 state?
c) How much energy is required to ionize hydrogen when it is in the n = 2 state?
d) What is the atomic Radius for n=4 state.
Transcribed Image Text:9. The Balmer series for the hydrogen atom corresponds to electronic transitions that terminate in the state with quantum number n = 2 as shown in the figure below. Consider the photon of longest wavelength corresponding to a transition shown in the figure. E (eV) 0.00 ENERGY n 8 6543 2 Balmer series -0.378 -0.544 2 -0.850 4 -1.512 --3.401 a) Determine its wavelength of emitted photon. b) How much energy is required to ionize hydrogen when it is in the n = 2 state? c) How much energy is required to ionize hydrogen when it is in the n = 2 state? d) What is the atomic Radius for n=4 state.
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