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Chapter 39, Problem 51PQ

(a)

To determine

The rest mass energy of the electron.

(a)

Expert Solution
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Answer to Problem 51PQ

The rest mass energy of an electron is 512keV or 8.20×1014J.

Explanation of Solution

Write the expression for the rest mass energy.

    Erest=mrestc2                        (I)

Here, mrest is the rest mass,c is the speed of the light and Erest is the total energy of the electron at rest.

Conclusion:

Substitute 9.11×1031kg for mrest and 3.00×108m/s for c in equation (I).

    Erest=(9.11×1031kg)(3.00×108m/s)2=8.20×1014J                 (II)

Convert J to keV by multiplying with (1keV1.602×1016J) in equation (II).

Here, keV is the kilo electron volt, and J is joule.

    Erest=8.20×1014J(1keV1.602×1016J)=8.20×10141.602×1016(keV×JJ)=512keV

Therefore, the rest mass energy of an electron is 512keV or 8.20×1014J.

(b)

To determine

The total energy of an electron.

(b)

Expert Solution
Check Mark

Answer to Problem 51PQ

The total energy of an electron is 1.30×1013J or 812keV.

Explanation of Solution

Write the expression for total energy of an electron.

    E=K+Erest                  (III)

Here, E is the total energy of the electron, K is the kinetic energy and Erest is the total energy of the electron at rest.

Conclusion:

Substitute 300.0keV for K and 512keV for Erest in equation (III).

    E=300.0keV+512keV=812keV                     (IV)

Convert keV to J by multiplying with (1.602×1016J1keV) in equation (IV).

    E=812keV(1.602×1016J1keV)=812(1.602×1016)(keV×JkeV)=1.30×1013J

Therefore, the total energy of an electron is 1.30×1013J or 812keV.

(c)

To determine

The speed of the electron.

(c)

Expert Solution
Check Mark

Answer to Problem 51PQ

The speed of the electron is 0.7762c.

Explanation of Solution

Write the expression of the relativistic kinetic energy of the particle.

    K(γ1)mrestc2                                          (V)

Here, mrest is the rest mass of the particle, v is the moving velocity of the particle velocity, γ=11(vc)2 is the Lorentz factor, c is the speed of light and K is the relativistic energy.

Write the expression for Lorentz factor.

    γ=11(vc)2

Substitute 11(vc)2 for γ in the Equation (V)

    K=(11(vc)21)mrestc2                               (VI)

Convert the unit of K from keV to J by multiplying (1.602×1016J1keV) with 300.0keV.

    K=300.0keV=300.0keV(1.602×1016J1keV)=4.806×1014J                             (VII)

Conclusion:

Substitute 4.806×1014J for K, 9.11×1031kg for mrest and 3.00×108m/s for c in equation (VI).

    4.806×1014J=(11(vc)21)(9.11×1031kg)(3.00×108m/s)24.806×1014J(9.11×1031kg)(3.00×108m/s)2=(11(vc)21)1(vc)2=11+(4.806×1014J(9.11×1031kg)(3.00×108m/s)2)1(vc)2=(11+0.586)2

Solve the equation further to find v.

    1(vc)2=0.3975(vc)2=(10.3975)(vc)=0.6025=0.7762c

Therefore, the speed of the electron is 0.7762c.

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Chapter 39 Solutions

Webassign Printed Access Card For Katz's Physics For Scientists And Engineers: Foundations And Connections, 1st Edition, Single-term

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