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Bohr's Model of a Hydrogen Atom

The ionisatio...

Question

The ionisation energy of hydrogen atom in its ground state is $13.6 eV$ . The energy released (in $eV$ ) for the third line of Balmer series is:

A

- 13.056

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B

- 2.856

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C

- 0.967

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D

- 0.306

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Solution

The correct option is B $- 2.856$
Given:
Ionisation energy of hydrogen atom in its ground state is $13.6 eV$ .

For the third line of Balmer series, $n_{1} = 2$ and $n_{2} = 5$

The energy released for the $3^{r d}$ line of Balmer series of hydrogen atom is:
$= - 13.6 \times (\frac{1}{n_{1}^{2}} - \frac{1}{n_{2}^{2}}) = - 13.6 \times (\frac{1}{4} - \frac{1}{25}) = - 2.856 eV$

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