Question:

An electron is moving round the nucleus of a hydrogen atom in a circular orbit of radius r. The Coulomb force F between the two is $ \bigg( {where} \, k = \frac{1}{ 4 \pi \varepsilon_0}\bigg)$

Updated On: Jun 23, 2023
  • $ k \frac{ e^2 }{ r^3 } r$
  • $- k \frac{ e^2 }{ r^3 } r$
  • $ k \frac{ e^2 }{ r } r$
  • $ - k \frac{ e^2 }{ r } r$
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The Correct Option is B

Solution and Explanation

Let charges on an electron and hydrogen nucleus are $q_1$ and $q_2$
The Coulomb's force between them at a distance r is,
F = - $\frac{1}{ 4 \pi \varepsilon_0} \frac{ q_1 q_2 }{ r^2} r$
Putting, $ \frac{1}{ 4 \pi \varepsilon_0} = k$ (given)
F = - k $ \frac{ q_1 q_2 }{ r^2} r$
Since, the nucleus of hydrogen atom has one proton, so charge on nucleus is e i e, $q_2 = \, e \, also \, q_1$ = e for electron.
So, $ F = - \frac{ e.e}{ r^2 } r = - k \frac{e^2 }{ r^2 } r$
but r = $ \frac{ r}{ | r |} = \frac{ r}{ r } $
Here, $F = - k \frac{e^2 }{ r^2 }. \frac{ r}{ r } = - \frac{e^2 }{ r^3} . r$
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