Physics for Scientists and Engineers with Modern Physics, Technology Update
Physics for Scientists and Engineers with Modern Physics, Technology Update
9th Edition
ISBN: 9781305401969
Author: SERWAY, Raymond A.; Jewett, John W.
Publisher: Cengage Learning
bartleby

Concept explainers

bartleby

Videos

Textbook Question
Book Icon
Chapter 37, Problem 26P

Monochromatic coherent light of amplitude E0 and angular frequency ω passes through three parallel slits, each separated by a distance d from its neighbor. (a) Show that the time-averaged intensity as a function of the angle θ is

I ( θ ) = I max [ 1 + 2 cos ( 2 π d sin θ λ ) ] 2

(b) Explain how this expression describes both the primary and the secondary maxima. (c) Determine the ratio of the intensities of the primary and secondary maxima. Hint: See Problem 16.

(a)

Expert Solution
Check Mark
To determine

To show: The time averaged intensity as a function of angle θ is I(θ)=Imax[1+2cos(2πdsinθλ)]2 .

Answer to Problem 26P

The time averaged intensity as a function of angle θ is I(θ)=Imax[1+2cos(2πdsinθλ)]2 .

Explanation of Solution

Given info: The amplitude of monochromatic light is E0 and angular frequency is ω .

The amplitude of the monochromatic light is,

E1=E0sinωtE2=E0(sinωt+ϕ)E3=E0(sinωt+2ϕ)

Here,

ω is the angular frequency.

ϕ is the phase difference whose value is 2πdsin(θ)λ .

The total amplitude of monochromatic light is,

E=E1+E2+E3

Substitute E0sinωt for E1 , E0(sinωt+ϕ) for E2 , E0(sinωt+2ϕ) for E3 in the above formula as,

E=E0sinωt+E0(sinωt+ϕ)+E0(sinωt+2ϕ)

Apply the trigonometric identity to the above expression as,

E=2E0cos(ϕ2)sin(2ωt+ϕ2) +

Apply the trigonometric identity to the above expression as,

E=2E0cos(ϕ2)sin(2ωt+ϕ2)+E0sin(ωt+ϕ)

Add the above result to E2 to get the resultant field as,

E=2E0cos(ϕ2)sin(2ωt+ϕ2)+E0sin(ωt+ϕ)

As it is known that intensity of monochromatic light is directly proportional to the the square of the electric field that is,

IE2

Here,

I is the intensity.

E is the electric field.

The resultant field is obtained by square the above expression as,

E2=[[2E0cos(ϕ2)sin(2ωt+ϕ2)]+[E0sin(ωt+ϕ)]]2AB=4E20cos2(ϕ2)sin2(2ωt+ϕ2)+E02sin2(ωt+ϕ)+4E0cos(ϕ2)sin(2ωt+ϕ2)E0sin(ωt+ϕ)=E20(1+2cosϕ)2

Substitute 2πdsin(θ)λ for ϕ in the above expression as,

I(θ)=Imax[1+2cos(2πdsinθλ)]2

Conclusion:

Thus, the time averaged intensity as a function of angle θ is I(θ)=Imax[1+2cos(2πdsinθλ)]2 .

(b)

Expert Solution
Check Mark
To determine

The way in which the expression describes both the primary and secondary maxima.

Answer to Problem 26P

The expression describes both the primary and secondary maxima.

Explanation of Solution

Given info: The amplitude of monochromatic light is E0 and angular frequency is ω .

From the above expression obtained in part (a), the minimum interference is obtained when cosϕ is 12 and maximum interference is obtained when cosϕ is 1.

Conclusion:

Thus, the expression describes both the primary and secondary maxima.

(c)

Expert Solution
Check Mark
To determine

The ratio of the intensities of the primary and secondary maxima.

Answer to Problem 26P

The ratio of the intensities of the primary and secondary maxima is 19

Explanation of Solution

Given info: The amplitude of monochromatic light is E0 and angular frequency is ω .

Consider the amplitude of the monochromatic light is,

E1=E0sinωtE2=E0(sinωt+ϕ)E3=E0(sinωt+2ϕ)

The total amplitude of monochromatic light is,

E=E1+E2+E3

Substitute E0sinωt for E1 , E0(sinωt+ϕ) for E2 , E0(sinωt+2ϕ) for E3 in the above formula as,

E=E0sinωt+E0(sinωt+ϕ)+E0(sinωt+2ϕ)

Apply the trigonometric identity to the above expression as,

E=2E0cos(ϕ2)sin(2ωt+ϕ2) +

Apply the trigonometric identity to the above expression as,

E=2E0cos(ϕ2)sin(2ωt+ϕ2)+E0sin(ωt+ϕ)

Add the above result to E2 to get the resultant field as,

E=2E0cos(ϕ2)sin(2ωt+ϕ2)+E0sin(ωt+ϕ)

As it is known that intensity of monochromatic light is directly proportional to the  square of the electric field that is,

IE2

Here,

I is the intensity.

E is the electric field.

The resultant field is obtained by square the above expression as,

E2=[[2E0cos(ϕ2)sin(2ωt+ϕ2)]+[E0sin(ωt+ϕ)]]2=4E20cos2(ϕ2)sin2(2ωt+ϕ2)+E02sin2(ωt+ϕ)+4E0cos(ϕ2)sin(2ωt+ϕ2)E0sin(ωt+ϕ)=E20(1+2cosϕ)2

Substitute 2πdsin(θ)λ for ϕ in the above expression as,

I(θ)=Imax[1+2cos(2πdsinθλ)]2

The expression for the intensity for primary maxima is,

I(θ)=Imax[1+2cos(2πdsinθλ)]2

The expression for the intensity for secondary maxima is,

I(θ)=9Imax[1+2cos(2πdsinθλ)]2

Take the ratio of the above two expression as,

I(θ)priI(θ)sec=19

Conclusion:

Therefore, the ratio of the intensities of the primary and secondary maxima is 19 .

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
Monochromatic coherent light of amplitude E, and angular frequency w passes through three parallel slits, each sepa- rated by a distance d from its neighbor. (a) Show that the time-averaged intensity as a function of the angle 0 is 2πd sin θ I(0) = I 1 + 2 cos max (b) Explain how this expression describes both the primary
Monochromatic coherent light of amplitude E, and angular frequency w passes through three parallel slits, each sepa- rated by a distance d from its neighbor. (a) Show that the time-averaged intensity as a function of the angle 0 is I(0) = I (2nd sin e 1+ 2 cos max (b) Explain how this expression describes both the primary and the secondary maxima. (c) Determine the ratio of the intensities of the primary and secondary maxima. Hint: See Problem 16.
Problem 1: In a double slit experiment the first minimum for 415 nm violet light is at an angle of 42°. Randomized Variables 2 = 415 nm e = 42 ° Find the distance between the two slits in micrometers. d= 8 9 5 6 sin() cos() tan() 7 HOME cotan() asin() acos() E A 4 atan() acotan() sinh() 1 2 3 cosh() tanh() cotanh() END O Degrees O Radians Vol BACKSPACE DEL CLEAR +

Chapter 37 Solutions

Physics for Scientists and Engineers with Modern Physics, Technology Update

Ch. 37 - Prob. 8OQCh. 37 - Prob. 9OQCh. 37 - A film of oil on a puddle in a parking lot shows a...Ch. 37 - Prob. 1CQCh. 37 - Prob. 2CQCh. 37 - Prob. 3CQCh. 37 - Prob. 4CQCh. 37 - Prob. 5CQCh. 37 - Prob. 6CQCh. 37 - Prob. 7CQCh. 37 - Prob. 8CQCh. 37 - Prob. 9CQCh. 37 - Two slits are separated by 0.320 mm. A beam of...Ch. 37 - Prob. 2PCh. 37 - A laser beam is incident on two slits with a...Ch. 37 - Prob. 4PCh. 37 - Prob. 5PCh. 37 - Prob. 6PCh. 37 - Prob. 7PCh. 37 - Prob. 8PCh. 37 - Prob. 9PCh. 37 - Light with wavelength 442 nm passes through a...Ch. 37 - Prob. 11PCh. 37 - Prob. 12PCh. 37 - Prob. 13PCh. 37 - Prob. 14PCh. 37 - Prob. 15PCh. 37 - A student holds a laser that emits light of...Ch. 37 - Prob. 17PCh. 37 - Prob. 18PCh. 37 - Prob. 19PCh. 37 - Prob. 20PCh. 37 - Prob. 21PCh. 37 - Prob. 22PCh. 37 - Prob. 23PCh. 37 - Prob. 24PCh. 37 - Prob. 25PCh. 37 - Monochromatic coherent light of amplitude E0 and...Ch. 37 - Prob. 27PCh. 37 - Prob. 28PCh. 37 - Prob. 29PCh. 37 - Prob. 30PCh. 37 - Prob. 31PCh. 37 - Prob. 32PCh. 37 - Prob. 33PCh. 37 - Prob. 34PCh. 37 - Prob. 35PCh. 37 - Prob. 36PCh. 37 - Prob. 37PCh. 37 - Prob. 38PCh. 37 - When a liquid is introduced into the air space...Ch. 37 - Prob. 40PCh. 37 - Prob. 41PCh. 37 - Prob. 42PCh. 37 - Prob. 43PCh. 37 - Prob. 44PCh. 37 - Prob. 45APCh. 37 - Prob. 46APCh. 37 - Prob. 47APCh. 37 - Prob. 48APCh. 37 - Prob. 49APCh. 37 - Prob. 50APCh. 37 - Prob. 51APCh. 37 - In a Youngs interference experiment, the two slits...Ch. 37 - In a Youngs double-slit experiment using light of...Ch. 37 - Prob. 54APCh. 37 - Prob. 55APCh. 37 - Prob. 56APCh. 37 - Prob. 57APCh. 37 - Prob. 58APCh. 37 - Prob. 59APCh. 37 - Prob. 60APCh. 37 - Prob. 61APCh. 37 - Prob. 62APCh. 37 - Prob. 63APCh. 37 - Prob. 64APCh. 37 - Prob. 65APCh. 37 - Prob. 66APCh. 37 - Prob. 67APCh. 37 - Prob. 68APCh. 37 - Prob. 69APCh. 37 - Prob. 70APCh. 37 - Prob. 71CPCh. 37 - Prob. 72CPCh. 37 - Prob. 73CPCh. 37 - Prob. 74CPCh. 37 - Prob. 75CPCh. 37 - Prob. 76CP
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
Physics for Scientists and Engineers: Foundations...
Physics
ISBN:9781133939146
Author:Katz, Debora M.
Publisher:Cengage Learning
Text book image
Modern Physics
Physics
ISBN:9781111794378
Author:Raymond A. Serway, Clement J. Moses, Curt A. Moyer
Publisher:Cengage Learning
Text book image
University Physics Volume 3
Physics
ISBN:9781938168185
Author:William Moebs, Jeff Sanny
Publisher:OpenStax
Text book image
Principles of Physics: A Calculus-Based Text
Physics
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Glencoe Physics: Principles and Problems, Student...
Physics
ISBN:9780078807213
Author:Paul W. Zitzewitz
Publisher:Glencoe/McGraw-Hill
Diffraction of light animation best to understand class 12 physics; Author: PTAS: Physics Tomorrow Ambition School;https://www.youtube.com/watch?v=aYkd_xSvaxE;License: Standard YouTube License, CC-BY