Universe
Universe
11th Edition
ISBN: 9781319039448
Author: Robert Geller, Roger Freedman, William J. Kaufmann
Publisher: W. H. Freeman
bartleby

Concept explainers

Question
Book Icon
Chapter 22, Problem 17Q
To determine

The energy of the photon emitted when a hydrogen atom undergoes a spin flip transition and find number of photons it would take to equal the energy of a single Hα photon of wavelength 656.3 nm.

Expert Solution & Answer
Check Mark

Answer to Problem 17Q

Solution:

9.5×1025J,3.2×105

Explanation of Solution

Given data:

The wavelength of Hα photon is 656.3 nm.

Formula used:

The expression of energy of photons is:

E=hcλ

Here, h is Planck’s constant, c is the speed of light and λ is the wavelength of the hydrogen atom.

The value of h is 6.625×10-34Js and c is 3×108m/s.

Explanation:

The wavelength of photon emitted after spin flip transition of an electron of hydrogen atom is 21 cm.

Write the expression of energy at spin flip transition of photons:

Esp=hcλ

Substitute 6.625×10-34Js for h, 3×108m/s for c and 21cm for λ

Esp=(6.625×10-34Js)(3×108m/s)(21cm(1m100cm))=9.5×1025J

Write the expression of energy of Hα photons:

EHα=hcλHα

Here, EHα is the energy of Hα photons and λHα is the wavelength of Hα photons.

Substitute 6.625×10-34Js for h, 3×108m/s for c and 656.3 nm for λ.

EHα=(6.625×10-34Js)(3×108m/s)(656.3nm(1m109nm))=3.0×1019J

Determine the number of photons undergoing spin flip transition required for the same energy as EHα as,

number of photons=EspEHα

Substitute 9.5×1025J for Esp and 3.0×1019J for EHα:

number of photons=9.5×1025J3.0×1019J=3.2×105

Conclusion:

Therefore, energy of the photon emitted when a hydrogen atom undergoes a spin flip transition is 9.5×1025J and the number of photons required to carry the same energy as one Hα photon is 3.2×105.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
Doubly ionized lithium (Li++) emits a photon after transitioning from the n = 3 excited state directly back to the ground state. A) Calculate the mass of the lithium ion. (Atomic mass = 6.015123 u; electron mass = 5.485799 x 10-4 u) Express your answer in unified atomic mass units and to four significant figures.   B) After the emission of the photon, the ion recoils. Calculate the recoil speed. Express your answer to three significant figures in meters/second.
Calculate the wavelength, in nanometers, of the photon emitted when the electron in a hydrogen atom transitions from the level n1 = 8 to level n2 = 2. Use three significant figures in your answer.
What will be the energy associated with a blue photon (in electronvolts, eV), if the frequency of the blue light is 650 THz (Terahertz (THz); 1 Tera = 1012)? [Hint: Use Planck's equation: E - hf to calculate the photon energy! h- Planck's constant – 6.63 x 10-34 Js = 4.14 x1015 eVs] A. 6.5 eV B. 6.5×10-3 eV C. 2.7 eV D. 2.7×10-27eV E. 2.7x107 eV
Knowledge Booster
Background pattern image
Physics
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Modern Physics
Physics
ISBN:9781111794378
Author:Raymond A. Serway, Clement J. Moses, Curt A. Moyer
Publisher:Cengage Learning
Text book image
Glencoe Physics: Principles and Problems, Student...
Physics
ISBN:9780078807213
Author:Paul W. Zitzewitz
Publisher:Glencoe/McGraw-Hill