EBK COLLEGE PHYSICS, VOLUME 1
EBK COLLEGE PHYSICS, VOLUME 1
11th Edition
ISBN: 8220103599986
Author: Vuille
Publisher: Cengage Learning US
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Chapter 24, Problem 61P

Light with a wavelength in vacuum of 546.1 nm falls perpendicularly on a biological specimen that is 1.000 μm thick. The light splits into two beams polarized at right angles, for which the indices of refraction are 1.320 and 1.333, respectively. (a) Calculate the wavelength of each component of the light while it is traversing the specimen. (b) Calculate the phase difference between the two beams when they emerge from the specimen.

(a)

Expert Solution
Check Mark
To determine
The wavelength of each components of the light while it is traversing the specimen.

Answer to Problem 61P

The first component of light has a wavelength of 413.7nm and the second component of light has a wavelength of 409.7nm .

Explanation of Solution

Given Info: The wavelength of incoming light is 546.1nm , the refractive index for first beam is 1.320 , and the refractive index for second beam is 1.333 .

Formula to calculate the wavelength of the first beam is,

λn1=λn1

  • λn1 is the wavelength of the first component
  • λ is the wavelength of the incident light
  • n1 is the refractive index for the first beam

Substitute 546.1nm for λ and 1.320 for n1 to find λn1 .

λn1=546.1nm1.320=413.7nm

Formula to calculate the wavelength of the second beam is,

λn2=λn2

  • λn2   is the wavelength of the second component
  • λ is the wavelength of the incident light
  • n2 is the refractive index for the  second beam

Substitute 546.1nm for λ and 1.333 for n2 to find λn3 .

λn1=546.1nm1.333=409.7nm

Thus, the first component of light has a wavelength of 413.7nm and the second component of light has a wavelength of 409.7nm .

Conclusion:

The first component of light has a wavelength of 413.7nm and the second component of light has a wavelength of 409.7nm .

(b)

Expert Solution
Check Mark
To determine
The phase difference between the two beams when they emerge from the specimen.

Answer to Problem 61P

The phase difference between the two beams when they emerge from the specimen is 8.6° .

Explanation of Solution

Given Info: The thickness of the specimen is 1.000μm .

Formula to calculate the phase difference is,

Δϕ=(N2N1)(360°cycles)

  • Δϕ is the phase difference
  • N2 is the number of cycles of vibration of second component of light while passing through the specimen
  • N1 is the number of cycles of vibration of first component of light while passing through the specimen

Use t/λn2 for N2 , t/λn1 for N1 in the above equation.

Δϕ=(tλn2tλn1)(360°cycles)=t(1λn21λn1)(360°cycles)

  • t is the thickness of the specimen
  • λn2 is the wavelength of the second component of light while passing through the specimen
  • λn1 is the wavelength of the first component of light while passing through the specimen

Substitute 1.000μm for t , 413.7nm for λn1 and 409.7nm for λn2 to find Δϕ .

Δϕ=((1.000μm)(1m106μm))(1(409.7nm)(109m1nm)1(413.7nm)(109m1nm))(360°cycles)=8.6°

Thus, the phase difference between the two beams when they emerge from the specimen is 8.6° .

Conclusion:

The phase difference between the two beams when they emerge from the specimen is 8.6° .

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Chapter 24 Solutions

EBK COLLEGE PHYSICS, VOLUME 1

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