PHYSICS FOR SCI. & ENGR(LL W/WEBASSIGN)
PHYSICS FOR SCI. & ENGR(LL W/WEBASSIGN)
10th Edition
ISBN: 9781337888721
Author: SERWAY
Publisher: CENGAGE L
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Chapter 37, Problem 48AP

(a)

To determine

To show: The point where I=0.5Imax must have ϕ=2sinϕ .

(a)

Expert Solution
Check Mark

Answer to Problem 48AP

The point where I=0.5Imax must have ϕ=2sinϕ .

Explanation of Solution

Given info: The equation of the intensity of the light in the diffraction pattern is I=Imaxsin2ϕϕ2 where ϕ=(πasinθ)λ

The formula to calculate the intensity of the light is,

I=Imaxsin2ϕϕ2IImax=sin2ϕϕ2

Here,

Imax is the maximum intensity of the light.

ϕ is the phase constant of the light.

The value of I=0.5Imax .

Substitute 0.5Imax for I in above equation to find the value of ϕ .

0.5ImaxImax=sin2ϕϕ2sin2ϕϕ2=12sinϕ=ϕ2ϕ=2sinϕ

Conclusion

Therefore, the point where I=0.5Imax must have ϕ=2sinϕ .

(b)

To determine

To draw: Plot y1=sinϕ and y2=ϕ2 on the same set of axes over a range from ϕ=1rad to ϕ=π2rad .

(b)

Expert Solution
Check Mark

Answer to Problem 48AP

The graph between y1=sinϕ and y2=ϕ2 on the same set of axes over a range from ϕ=1rad to ϕ=π2rad .

PHYSICS FOR SCI. & ENGR(LL W/WEBASSIGN), Chapter 37, Problem 48AP , additional homework tip  1

Figure (1)

Explanation of Solution

Given info: The equation of the intensity of the light in the diffraction pattern is I=Imaxsin2ϕϕ2 where ϕ=(πasinθ)λ

The equation of y1 is sinϕ and the equation for y2 is ϕ2 over a range from ϕ=1rad to ϕ=π2rad is shown in the figure below.

PHYSICS FOR SCI. & ENGR(LL W/WEBASSIGN), Chapter 37, Problem 48AP , additional homework tip  2

The solution of both the equation to coincide at a point is ,

sinϕ=ϕ2ϕ=1.39rad

So the solution of the transcendental equation is ϕ=1.39rad .

(c)

To determine

To show: The angular full width at half maximum of the central diffraction maximum is θ=0.885λa if the fraction λa is not large.

(c)

Expert Solution
Check Mark

Answer to Problem 48AP

The angular full width at half maximum of the central diffraction maximum is θ=0.885λa if the fraction λa is not large.

Explanation of Solution

Given info: The equation of the intensity of the light in the diffraction pattern is I=Imaxsin2ϕϕ2 where ϕ=(πasinθ)λ

The formula to calculate the phase angle is,

ϕ=(πasinθ)λ

Rewrite the above equation for sinθ .

sinθ=(ϕπ)λa

If the value of λa is small then,

θ(ϕπ)λa

The path covered by the light is symmetric so the phase angle is double the initial value.

θ=2(ϕπ)λa

Substitute 1.39rad for ϕ in above equation to find the value of θ .

θ=2(1.39rad3.14rad)λa=0.885λa

Conclusion

Therefore, the angular full width at half maximum of the central diffraction maximum is θ=0.885λa if the fraction λa is not large.

(d)

To determine

The number of steps involved to solve the transcendental equation ϕ=2sinϕ .

(d)

Expert Solution
Check Mark

Answer to Problem 48AP

The number of steps involved to solve the transcendental equation ϕ=2sinϕ is around 13 .

Explanation of Solution

Given info: The equation of the intensity of the light in the diffraction pattern is I=Imaxsin2ϕϕ2 where ϕ=(πasinθ)λ

The equation of y1 is 2sinϕ and the equation for y2 is ϕ , the value of ϕ is taken from 1 to 2 to find the solution of the equation and the corresponding values are shown in the table below.

ϕ 2sinϕ
1 1.19
2 1.29
1.5 1.41
1.4 1.394
1.39 1.391
1.392 1.3917
1.3915 1.39154
1.39152 1.39155
1.3916 1.39158
1.39158 1.391563
1.39157 1.391561
1.39156 1.391558
1.3915574 1.3915574

The solution of the transcendental equation ϕ=2sinϕ is 1.3915574 and the solution can be achieved in around 13 steps.

Conclusion

Therefore, the number of steps involved to solve the transcendental equation ϕ=2sinϕ is around 13 .

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Chapter 37 Solutions

PHYSICS FOR SCI. & ENGR(LL W/WEBASSIGN)

Ch. 37 - Assume light of wavelength 650 nm passes through...Ch. 37 - What If? Suppose light strikes a single slit of...Ch. 37 - A diffraction pattern is formed on a screen 120 cm...Ch. 37 - Coherent light of wavelength 501.5 nm is sent...Ch. 37 - The objective lens of a certain refracting...Ch. 37 - Yellow light of wavelength 589 nm is used to view...Ch. 37 - What is the approximate size of the smallest...Ch. 37 - A heliumneon laser emits light that has a...Ch. 37 - To increase the resolving power of a microscope,...Ch. 37 - Prob. 14PCh. 37 - Impressionist painter Georges Seurat created...Ch. 37 - Narrow, parallel, glowing gas-filled tubes in a...Ch. 37 - Consider an array of parallel wires with uniform...Ch. 37 - Three discrete spectral lines occur at angles of...Ch. 37 - A grating with 250 grooves/mm is used with an...Ch. 37 - Show that whenever white light is passed through a...Ch. 37 - Light from an argon laser strikes a diffraction...Ch. 37 - A wide beam of laser light with a wavelength of...Ch. 37 - You are working as a demonstration assistant for a...Ch. 37 - Prob. 24PCh. 37 - Prob. 25PCh. 37 - Prob. 26PCh. 37 - Prob. 27PCh. 37 - Why is the following situation impossible? A...Ch. 37 - The critical angle for total internal reflection...Ch. 37 - For a particular transparent medium surrounded by...Ch. 37 - Prob. 31PCh. 37 - An unpolarized beam of light is incident on a...Ch. 37 - In a single-slit diffraction pattern, assuming...Ch. 37 - Laser light with a wavelength of 632.8 nm is...Ch. 37 - Prob. 35APCh. 37 - Two motorcycles separated laterally by 2.30 m are...Ch. 37 - The Very Large Array (VLA) is a set of 27 radio...Ch. 37 - Two wavelengths and + (with ) are incident on...Ch. 37 - Review. A beam of 541-nm light is incident on a...Ch. 37 - Prob. 40APCh. 37 - Prob. 41APCh. 37 - Prob. 42APCh. 37 - A pinhole camera has a small circular aperture of...Ch. 37 - Prob. 44APCh. 37 - Prob. 45APCh. 37 - (a) Light traveling in a medium of index of...Ch. 37 - The intensity of light in a diffraction pattern of...Ch. 37 - Prob. 48APCh. 37 - Two closely spaced wavelengths of light are...Ch. 37 - A spy satellite can consist of a large-diameter...Ch. 37 - Prob. 51CPCh. 37 - In Figure P37.52, suppose the transmission axes of...Ch. 37 - Consider a light wave passing through a slit and...
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