Physics
Physics
3rd Edition
ISBN: 9780073512150
Author: Alan Giambattista, Betty Richardson, Robert C. Richardson Dr.
Publisher: McGraw-Hill Education
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Chapter 27, Problem 53P

(a)

To determine

The energies of first four levels of doubly ionized lithium starting with n=1.

(a)

Expert Solution
Check Mark

Answer to Problem 53P

The energies of first four levels of doubly ionized lithium starting with n=1 to n=4 are 122eV, 30.6eV, 13.6eV and 7.65eV.

Explanation of Solution

Write an expression for the energy of level of doubly ionized lithium.

    En=Z2n2E0                                                                                                            (I)

Here, En is the energy of the level, E0 is the rest energy, Z is the atomic number and n is the energy level.

Conclusion:

For n=1:

Substitute 3 for Z, 13.6eV for E0 and 1 for n in equation (I) to find En.

  E1=3212(13.6eV)=9(13.6eV)=122eV

Here, E1 is the energy at level n=1.

For n=2:

Substitute 3 for Z, 13.6eV for E0 and 2 for n in equation (I) to find En.

  E2=3222(13.6eV)=(94)(13.6eV)=30.6eV

Here, E2 is the energy at level n=2.

For n=3:

Substitute 3 for Z, 13.6eV for E0 and 3 for n in equation (I) to find En.

  E3=3232(13.6eV)=(1)(13.6eV)=13.6eV

Here, E3 is the energy at level n=3.

For n=4:

Substitute 3 for Z, 13.6eV for E0 and 4 for n in equation (I) to find En.

  E4=3242(13.6eV)=(916)(13.6eV)=7.65eV

Here, E4 is the energy at level n=4.

Thus, the energies of first four levels of doubly ionized lithium starting with n=1 to n=4 are 122eV, 30.6eV, 13.6eV and 7.65eV.

(b)

To determine

The energies of the photons emitted or absorbed when the electron makes a transition between the levels.

(b)

Expert Solution
Check Mark

Answer to Problem 53P

The energies of the photons emitted or absorbed when the electron makes a transition between the levels is given in table 1.

Explanation of Solution

Write an expression for energies of the photons emitted or absorbed when the electron makes a transition between the levels.

    ΔE=EiEf                                                                                                            (II)

Here, Ef is the energy of the final level, Ei is the energy of the initial level, ΔE is the energy of the photons emitted or absorbed when the electron makes a transition between the levels.

Conclusion:

For transition of photon from level 41

Substitute 7.65eV for Ei and 122eV for Ef in equation (II) to find ΔE.

    ΔE=7.65eV(122eV)=115eV

For transition of photon from level 42

Substitute 7.65eV for Ei and 30.6eV for Ef in equation (II) to find ΔE.

    ΔE=7.65eV(30.6eV)=23.0eV

For transition of photon from level 43

Substitute 7.65eV for Ei and 13.6eV for Ef in equation (II) to find ΔE.

    ΔE=7.65eV(13.6eV)=6.00eV

For transition of photon from level 31

Substitute 13.6eV for Ei and 122eV for Ef in equation (II) to find ΔE.

    ΔE=13.6eV(122eV)=109eV

For transition of photon from level 32

Substitute 13.6eV for Ei and 30.6eV for Ef in equation (II) to find ΔE.

    ΔE=13.6eV(30.6eV)=17.0eV

For transition of photon from level 21

Substitute 30.6eV for Ei and 122eV for Ef in equation (II) to find ΔE.

    ΔE=30.6eV(122eV)=92.0eV

Thus, the energies of the photons emitted or absorbed when the electron makes a transition between the levels is given in table 1.

Initial levelFinal levelEnergy of photon (eV)
41115
4223.0
436.00
31109
3217.0
2192.0

Table 1

(c)

To determine

The presence of photons in the visible part of EM.

(c)

Expert Solution
Check Mark

Answer to Problem 53P

No photons will be present in visible range.

Explanation of Solution

Write an expression for the maximum energy of the photon in visible range.

    Emax=hcλmin                                                                                                            (III)

Here, Emax is the maximum energy of the photon in visible range, h is the Plank’s constant, c is the speed of light and λmin is the minimum wavelength of the visible range.

Write an expression for the minimum energy of the photon in visible range.

    Emin=hcλmax                                                                                                            (IV)

Here, Emin is the minimum energy of the photon in visible range and λmax is the maximum wavelength of the visible range.

The wavelength of the visible spectrum varies from 400nm to 700nm.

Conclusion:

Substitute 1240eVnm for hc and 400nm for λmin in equation (III) to find Emax.

    Emax=1240eVnm400nm=3.10eV

Substitute 1240eVnm for hc and 700nm for λmax in equation (IV) to find Emin.

    Emin=1240eVnm700nm=1.77eV

The lowest energy of the photon absorbed or emitted during the transition is 6.00eV. The energy of photon is greater than the maximum energy possible for a photon in visible region. Thus, there will not be any photon in visible region.

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Chapter 27 Solutions

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