EBK PHYSICS OF EVERYDAY PHENOMENA
EBK PHYSICS OF EVERYDAY PHENOMENA
8th Edition
ISBN: 8220106637050
Author: Griffith
Publisher: YUZU
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Chapter 18, Problem 2SP

(a)

To determine

The transition in the Balmer series which produces the smallest frequency photon.

(a)

Expert Solution
Check Mark

Answer to Problem 2SP

The transition in the Balmer series which produces the smallest frequency photon is m=3 to n=2.

Explanation of Solution

Hydrogen spectrum lies in the visible, ultraviolet as well as infrared regions. Hydrogen spectrum is divided into different spectral series named as Lyman series, Balmer series, Paschen series, Brackett series and Pfund series. The wavelengths of lines in each series is determined using Balmer’s formula.

The Balmer’s formula is given as 1λ=R(1n21m2) where λ is the wavelength of the line, n is an integer which represents a particular series or in other words n will be a constant for a particular series, m is another integer which will be always greater than n and R is the Rydberg constant. The value of n for Balmer series is 2.

From the Balmer’s formula it is clear that the photon having smallest frequency or longest wavelength will be emitted when the value of m is greater than n by just 1. This implies the value of m to produce the smallest frequency photon in the Balmer series should be 3.

Conclusion:

Thus the m=3 to n=2 transition produces the smallest frequency photon in the Balmer series.

(b)

To determine

The energy difference in joules for the two levels involved in the transition of part (a).

(b)

Expert Solution
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Answer to Problem 2SP

The energy difference in joules for the two levels involved in the transition of part (a) is 3.02×1019 J.

Explanation of Solution

Write the Balmer’s formula.

1λ=R(1n21m2) (1)

The value of R is 1.097×107 m1.

Substitute 1.097×107 m1 for R,2 for n and 3 for m in equation (1) to find (1/λ).

1λ=1.097×107 m1(122132)=1523611.1 m1

Write the equation for the energy of a photon.

E=hcλ

Here,

E is the energy of the photon

h is the Planck’s constant

c is the speed of light in vacuum

The value of h is 6.626×1034 Js and the value of c is 3.0×108 m/s.

Substitute 6.626×1034 Js for h,3.0×108 m/s for c and 1523611.1 m1 for (1/λ) in the above equation to find E.

E=(6.626×1034 Js)(3.0×108 m/s)(1523611.1 m1)=3.02×1019 J

The energy of the emitted photon is equal to the energy difference between the levels involved in the transition.

Conclusion:

Thus the energy difference in joules for the two levels involved in the transition of part (a) is 3.02×1019 J.

(c)

To determine

The frequency and wavelength of the photon emitted in the transition.

(c)

Expert Solution
Check Mark

Answer to Problem 2SP

The frequency of the photon emitted in the transition is 4.56×1014 Hz and the wavelength is 657 nm.

Explanation of Solution

From part (b),

1λ=1523611.1 m1

This gives,

λ=11523611.1 m1=657×109 m=657 nm

Write the equation for the frequency of the photon.

f=cλ (2)

Here,

f is the frequency of the photon

Substitute 3.0×108 m/s for c and 657×109 m for λ in equation (2) to find f.

f=3.0×108 m/s657×109 m=4.56×1014 Hz

Conclusion:

Thus the frequency of the photon emitted in the transition is 4.56×1014 Hz and the wavelength is 657 nm.

(d)

To determine

The frequency and wavelength of the photon with the longest wavelength in the Lyman series.

(d)

Expert Solution
Check Mark

Answer to Problem 2SP

The frequency of the photon with the longest wavelength in the Lyman series is 2.46×1015 Hz and its wavelength is 122 nm.

Explanation of Solution

The value of n for Lyman series is 1 so that the longest wavelength photon is emitted for the m=2 to n=1 transition.

Substitute 1.097×107 m1 for R,1 for n and 2 for m in equation (1) to find (1/λ).

1λ=1.097×107 m1(112122)=8227500 m1

This gives,

λ=1 8227500 m1=122×109 m=122 nm

Substitute 3.0×108 m/s for c and 122×109 m for λ in equation (2) to find f.

f=3.0×108 m/s122×109 m=2.46×1015 Hz

Conclusion:

Thus the frequency of the photon with the longest wavelength in the Lyman series is 2.46×1015 Hz and its wavelength is 122 nm.

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