When an electron makes a transition from n = 3 to the n = 2 hydrogen atom Bohr orbit, the energy difference between these two orbits ( 3.0 × 10 − 19 J ) is emitted as a photon of light. The relationship between the energy of a photon and its wavelength is given by E = h c / λ where E is the energy of the photon in j, h is Plank’s constant ( 6.626 × 10 − 34 J .s ) , and c is the speed of light ( 3.00 × 10 8 m / s ) . Find the wavelength of light emitted by hydrogen atoms when an electron makes this transition.
When an electron makes a transition from n = 3 to the n = 2 hydrogen atom Bohr orbit, the energy difference between these two orbits ( 3.0 × 10 − 19 J ) is emitted as a photon of light. The relationship between the energy of a photon and its wavelength is given by E = h c / λ where E is the energy of the photon in j, h is Plank’s constant ( 6.626 × 10 − 34 J .s ) , and c is the speed of light ( 3.00 × 10 8 m / s ) . Find the wavelength of light emitted by hydrogen atoms when an electron makes this transition.
Solution Summary: The author explains that the wavelength of the light emitted by hydrogen atoms is to be calculated.
hydrogen atom Bohr orbit, the energy difference between these two orbits
(
3.0
×
10
−
19
J
)
is emitted as a photon of light. The relationship between the energy of a photon and its wavelength is given by
E
=
h
c
/
λ
where E is the energy of the photon in j, h is Plank’s constant
(
6.626
×
10
−
34
J
.s
)
, and c is the speed of light
(
3.00
×
10
8
m
/
s
)
. Find the wavelength of light emitted by hydrogen atoms when an electron makes this transition.
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