Chapter 3, Problem 3.3P

(a)

To determine

To calculate: The radius of the first Bohr Orbit.

Answer to Problem 3.3P

  $r=2.49\times {10}^{-13}m=2.49\times {10}^{-11}\text{cm}$

Explanation of Solution

Given:

A µ-meson has a charge of $-4.8\times {10}^{-10}sC$ and a mass 207 times that of the resting electron.

Formula used:

The formula to find the radii of the electronic orbits is:

  $r=\frac{n^2{h}^2}{4\pi m{e}^{2}Z{k}_0}$

Calculation:

Here,

n = 1

  $\begin{array}{l}h=6.625\times {10}^{-34}J\sec \\ m_{meson}=207\times 9.11\times {10}^{-31}kg=1.89\times {10}^{-28}kg\\ Z=1\\ k_0^{}=9\times {10}^{9}N{m}^2/C^2\\ e=4.8\times {10}^{-10}sC=4.8\times {10}^{-10}sC\times ((\frac{1C}{3\times {10}^{9}Sc}))=1.6\times {10}^{-19}C\end{array}$

Substituting the values in the formula of radii of the electronic orbits,

  $r=\frac{1^2\times {(6.625\times {10}^{-34}J\sec )}^2}{4\pi (1.89\times {10}^{-28}kg)\times {(1.6\times {10}^{-19}C)}^2\times 1\times 9\times {10}^{9}N{m}^2/C^2}$

  $r=2.49\times {10}^{-13}m=2.49\times {10}^{-11}\text{cm}$

Conclusion:

The radius is $r=2.49\times {10}^{-11}\text{cm}$

(b)

To determine

To calculate: The ionization potential.

Answer to Problem 3.3P

E = 2.8 x 10³ eV

Explanation of Solution

Given:

A µ-meson has a charge of $-4.8\times {10}^{-10}sC$ and a mass 207 times that of the resting electron.

Formula used:

The total energy in any permissible orbit is:

  $E=\frac{2{\pi }^2{k}_0{}^{2}m{Z}^2{e}^4}{h^2}\times \frac{1}{n^2}$

Calculation:

Here,

  $\begin{array}{l}n=1\\ h=6.625\times {10}^{-34}\text{Jsec}\\ m_{meson}=207\times 9.11\times {10}^{-31}\text{kg}=1.89\times {10}^{-28}\text{kg}\\ Z=1\\ k_0^{}=9\times {10}^9{\text{Nm}}^{\text{2}}{\text{/C}}^{\text{2}}\\ e=4.8\times {10}^{-10}\text{sC}=4.8\times {10}^{-10}\text{sC}\times ((\frac{1\text{C}}{3\times {10}^9\text{sC}}))=1.6\times {10}^{-19}\text{C}\end{array}$

Substituting the values in the formula of total energy,

  $\begin{array}{l}E=\frac{2{\pi }^2{(9\times {10}^{9}N{m}^2/C^2)}^2\times 1.89\times {10}^{-28}kg\times 1^2\times {(1.6\times {10}^{-19}C)}^4}{{(6.625\times {10}^{-34}J\sec )}^2}\times \frac{1}{1^2}\\ =4.5\times {10}^{-16}J\times (\frac{eV}{1.6\times {10}^{-19}C})=2.8\times {10}^{3}eV\end{array}$

Conclusion:

The ionization potential $=2.8\times {10}^{3}eV$