91Ó°ÊÓ

The radius and charge on the inner most metal sphere are\({r_1}\) and \( + Q\).

The inner radius and charge of the outer metal sphere are \({r_2}\) and \( - Q\).

The outer radius and charge of the outer metal sphere are \({r_3}\) and \( + Q\).

The expression to calculate the potential difference from the centre of the source is given as follows.

\(V - {V_\infty } = - \frac{1}{{4\pi {\varepsilon _0}}}\int_\infty ^r {\frac{Q}{{{r^2}}}dr} \)

Here,\({\varepsilon _0}\)is the permittivity of the free space.

The potential at point \(F\) is given by,

\(\begin{aligned}{l}{V_F} - {V_\infty } &= \left( {{V_B} - {V_\infty }} \right) + \left( {{V_C} - {V_B}} \right) + \left( {{V_E} - {V_C}} \right) + \left( {{V_F} - {V_E}} \right)\\{V_F} - {V_\infty } &= - \int_\infty ^{{r_3}} {\frac{1}{{4\pi {\varepsilon _0}}}\frac{Q}{{{r^2}}}dr} + - \int_{{r_3}}^{{r_2}} {0dr} - - \int_{{r_2}}^{{r_1}} {\frac{1}{{4\pi {\varepsilon _0}}}\frac{Q}{{{r^2}}}dr} - - \int_{{r_1}}^{{{{r_1}} \mathord{\left/

{\vphantom {{{r_1}} 2}} \right.

\kern-\nulldelimiterspace} 2}} {\frac{1}{{4\pi {\varepsilon _0}}}\frac{Q}{{{r^2}}}dr} \\{V_F} - {V_\infty } &= - \frac{Q}{{4\pi {\varepsilon _0}}}\left( { - \frac{1}{r}} \right)_\infty ^{{r_3}} - 0 - \frac{Q}{{4\pi {\varepsilon _0}}}\left( { - \frac{1}{r}} \right)_{{r_2}}^{{r_1}} - 0\\{V_F} - {V_\infty } &= \frac{Q}{{4\pi {\varepsilon _0}}}\left( {\frac{1}{{{r_3}}} - \frac{1}{\infty }} \right) + \frac{Q}{{4\pi {\varepsilon _0}}}\left( {\frac{1}{{{r_1}}} - \frac{1}{{{r_2}}}} \right)\end{aligned}\)

Solve further as,

\(\begin{array}{l}{V_F} - {V_\infty } = \frac{Q}{{4\pi {\varepsilon _0}}}\left( {\frac{1}{{{r_3}}} - \frac{1}{\infty } + \frac{1}{{{r_1}}} - \frac{1}{{{r_2}}}} \right)\\{V_F} - {V_\infty } = \frac{Q}{{4\pi {\varepsilon _0}}}\left( {\frac{1}{{{r_3}}} + \frac{1}{{{r_1}}} - \frac{1}{{{r_2}}}} \right)\end{array}\)

Hence the potential at the location \(F\) is \(\frac{Q}{{4\pi {\varepsilon _0}}}\left( {\frac{1}{{{r_3}}} + \frac{1}{{{r_1}}} - \frac{1}{{{r_2}}}} \right)\).