Physics for Scientists and Engineers
Physics for Scientists and Engineers
10th Edition
ISBN: 9781337553278
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
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Chapter 36, Problem 14P

Monochromatic light of wavelength λ is incident on a pair of slits separated by 2.40 × 10−4 m and forms an interference pattern on a screen placed 1.80 m from the slits. The first-order bright fringe is at a position ybright = 4.52 mm measured from the center of the central maximum. From this information, we wish to predict where the fringe for n = 50 would be located. (a) Assuming the fringes are laid out linearly along the screen, find the position of the n = 50 fringe by multiplying the position of the n = 1 fringe by 50.0. (b) Find the tangent of the angle the first-order bright fringe makes with respect to the line extending from the point midway between the slits to the center of the central maximum. (c) Using the result of part (b) and Equation 36.2, calculate the wavelength of the light. (d) Compute the angle for the 50th-order bright fringe from Equation 36.2. (e) Find the position of the 50th-order bright fringe on the screen from Equation 36.5. (f) Comment on the agreement between the answers to parts (a) and (e).

(a)

Expert Solution
Check Mark
To determine
The position of the 50th fringe.

Answer to Problem 14P

The position of the 50th fringe is 22.6cm .

Explanation of Solution

Given info: The separation of the slit is 2.40×104m , the distance between the screen and the slit is 1.80m and the position of the first-order bright fringe is ybright=4.52mm .

The formula to calculate the position of the 50th fringe is,

y=50(ybright)m=1

Here,

ybright is the position of the first-order bright fringe.

Substitute 4.52mm for ybright in above equation to find the value of y .

y=50(4.52mm)=22.6cm

Conclusion:

Therefore, the position of the 50th fringe is 22.6cm .

(b)

Expert Solution
Check Mark
To determine
The tangent of the angle of the first-order bright fringe with respect to the point midway between the slits to the center of the central maximum.

Answer to Problem 14P

The tangent of the angle of the first-order bright fringe with respect to the point midway between the slits to the center of the central maximum is 2.51×103 .

Explanation of Solution

Given info: The separation of the slit is 2.40×104m , the distance between the screen and the slit is 1.80m and the position of the first-order bright fringe is ybright=4.52mm .

The formula to calculate the tangent of the angle is,

tanθ1=(ybright)m=1L

Here,

L is the distance between the screen and the slit.

Substitute 4.52mm for (ybright)m=1 and 1.80m for L in the above equation.

tanθ1=4.52mm×103m1m1.80m=2.51×103

Conclusion:

Therefore, the tangent of the angle of the first-order bright fringe with respect to the point midway between the slits to the center of the central maximum is 2.51×103 .

(c)

Expert Solution
Check Mark
To determine
The wavelength of the light.

Answer to Problem 14P

The wavelength of the light is 6.03×107m .

Explanation of Solution

Given info: The separation of the slit is 2.40×104m , the distance between the screen and the slit is 1.80m and the position of the first-order bright fringe is ybright=4.52mm .

The formula to calculate the tangent of the angle is,

tanθ1=(ybright)m=1L

Substitute 4.52mm for (ybright)m=1 and 1.80m for L in the above equation.

tanθ1=4.52mm×103m1m1.80mtanθ1=2.51×103θ1=0.144° ]

The formula to calculate the wavelength is,

mλ=dsinθ1

Here,

m is the number of the maxima.

λ is the wavelength of the light.

Substitute 1 for m , 2.40×104m for d and 0.144° for θ1 in above equation.

λ=(2.40×104m)sin(0.144°)=6.03×107m

Conclusion:

Therefore, the wavelength of the light is 6.03×107m .

(d)

Expert Solution
Check Mark
To determine
The angle of the 50th order-bright fringe.

Answer to Problem 14P

The angle of the 50th order-bright fringe is 7.21° .

Explanation of Solution

Given info: The separation of the slit is 2.40×104m , the distance between the screen and the slit is 1.80m and the position of the first-order bright fringe is ybright=4.52mm .

The formula to calculate the angle of the 50th order-bright fringe is,

θ50=sin1(50sinθ1)

Substitute 0.144° for θ1 in the above equation.

θ50=sin1(50sin(0.144°))=7.21°

Conclusion:

Therefore, the angle of the 50th order-bright fringe is 7.21° .

(e)

Expert Solution
Check Mark
To determine
The position of the 50th order-bright fringe.

Answer to Problem 14P

The position of the 50th order-bright fringe is 2.28cm .

Explanation of Solution

Given info: The separation of the slit is 2.40×104m , the distance between the screen and the slit is 1.80m and the position of the first-order bright fringe is ybright=4.52mm .

The formula to calculate the position of the 50th order-bright fringe is,

y50=Ltanθ50

Substitute 1.80m for L and 7.21° for θ50 in above equation to find the value of y50 .

y50=(1.80m)tan(7.21°)=2.28×102m×102cm1m=2.28cm

Conclusion:

Therefore, the position of the 50th order-bright fringe is 2.28cm .

(f)

Expert Solution
Check Mark
To determine
The comment on the agreement between the answers to parts (a) and part (e) .

Answer to Problem 14P

The answer to part (a) and part (e) are very close bet not equal as the fringes are not laid linear.

Explanation of Solution

Given info: The separation of the slit is 2.40×104m , the distance between the screen and the slit is 1.80m and the position of the first-order bright fringe is ybright=4.52mm .

The difference in the position of the 50th order-bright fringe is different as calculated in part (a) and part (e) so it can be deduced from the results that the fringes are not laid out linearly on the screen as assumed in part (a) and the nonlinearity is evident for very large angles.

Conclusion:

Therefore, the answer to part (a) and part (e) are very close bet not equal as the fringes are not laid linear.

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Chapter 36 Solutions

Physics for Scientists and Engineers

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