Physics for Scientists and Engineers With Modern Physics
Physics for Scientists and Engineers With Modern Physics
9th Edition
ISBN: 9781133953982
Author: SERWAY, Raymond A./
Publisher: Cengage Learning
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Chapter 40, Problem 64AP
To determine

The derivation of equation for the Compton shift from equations 40.14 through 40.16.

Expert Solution & Answer
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Answer to Problem 64AP

The equation for the Compton shift is derived from equations 40.14 through 40.16.

Explanation of Solution

Write equation 40.15.

  hλ0hλcosθ=γmeucosϕ                                                                                         (I)

Here, h is the Plank’s constant, λ0 is the wavelength of the incident photon, λ is the wavelength of the scattered photon, θ is the angle through which the photon is scattered, γ is the Lorentz factor, me is the mass of the electron, u is the speed of the electron and ϕ is the angle through which the electron is scattered.

Write equation 40.16.

  hλsinθ=γmeusinϕ                                                                                            (II)

Take the square of equations (I) and (II) and add them together.

  (hλ0hλcosθ)2+(hλsinθ)2=(γmeucosϕ)2+(γmeusinϕ)2γ2me2u2(cos2ϕ+sin2ϕ)=h2(1λ022cosθλ0λ+1λ2)γ2me2u2=h2(1λ022cosθλ0λ+1λ2)                              (III)

Write the expression for the Lorentz factor.

  γ=11u2/c2                                                                                                      (IV)

Here, c is the speed of light in vacuum.

Take the square of equation (IV).

  γ2=11u2/c2

Put the above equation in equation (III).

  (11u2/c2)me2u2=h2(1λ022cosθλ0λ+1λ2)u21u2/c2=h2me2(1λ02+1λ22cosθλ0λ)

Divide both sides of the above equation by c2 .

  u2/c21u2/c2=h2me2c2(1λ02+1λ22cosθλ0λ)                                                                    (V)

Define b=h2me2c2(1λ02+1λ22cosθλ0λ).

Rewrite equation (V) in terms of b .

  u2/c21u2/c2=b                                                                                  (VI)

Add 1 to both sides of equation (VI).

  1+u2/c21u2/c2=1+b1u2/c2+u2/c21u2/c2=1+b11u2/c2=1+b1u2/c2=11+b                                                                                       (VII)

Rewrite equation (VI) for u2/c2 .

  u2/c2=b(1u2/c2)                                                                                            (VIII)

Put equation (VII) in equation (VIII).

  u2/c2=b(11+b)=b1+b                                                                                                 (IX)

Write equation (IV).

  hcλ0=hcλ+(γ1)mec2

Modify the above equation.

  hc[1λ01λ]=(γ1)mec2hcmec2[1λ01λ]=γ11+hmec[1λ01λ]=γ

Put equation (IV) in the above equation.

  1+hmec[1λ01λ]=11u2/c2

Put equation (IX) in the above equation.

  1+hmec[1λ01λ]=11b1+b=(1b1+b)1/2

Simplify the above equation.

  1+hmec[1λ01λ]=(1+bb1+b)1/2=((11+b)1)1/2=(1+b1)1/2=1+b

Square both sides of the above equation.

  (1+hmec[1λ01λ])2=(1+b)21+2hmec[1λ01λ]+h2me2c2[1λ01λ]2=1+b

Put the expression for b in the above equation.

  1+2hmec[1λ01λ]+h2me2c2[1λ01λ]2=1+h2me2c2(1λ02+1λ22cosθλ0λ)1+2hmec[1λ01λ]+h2me2c2[1λ022λ0λ+1λ2]=1+h2me2c2(1λ02+1λ22cosθλ0λ)2hmec[1λ01λ]h2me2c2(2λ0λ)=h2me2c2(2cosθλ0λ)hmec[1λ01λ]h2me2c2(1λ0λ)=h2me2c2(cosθλ0λ)

Multiply both sides of the above equation by me2c2h2 .

  (me2c2h)hmec[1λ01λ](me2c2h)h2me2c2(1λ0λ)=(me2c2h)h2me2c2(cosθλ0λ)mec[1λ01λ]h(1λ0λ)=h(cosθλ0λ)mec[λλ0λ0λ]hλ0λ=h(cosθλ0λ)mec(λλ0)h=hcosθ               (X)

Conclusion:

Rearrange equation (X).

  mec(λλ0)=hhcosθmec(λλ0)=h(1cosθ)λλ0=hmec(1cosθ)

Therefore, the equation for the Compton shift is derived from equations 40.14 through 40.16.

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Chapter 40 Solutions

Physics for Scientists and Engineers With Modern Physics

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