Question:
Ionisation energy of Hydrogen atom is 13.6 eV. In a state where \( n = 2 \), what will be ionisation energy of its electron?
Ionisation energy of Hydrogen atom is 13.6 eV. In a state where \( n = 2 \), what will be ionisation energy of its electron?
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The ionization energy decreases with increasing principal quantum number \( n \).
Updated On: Mar 3, 2025
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Solution and Explanation
The ionization energy for the \( n \)-th orbit of the hydrogen atom is given by:
\[
E_n = \frac{13.6 \, \text{eV}}{n^2}.
\]
For \( n = 2 \):
\[
E_2 = \frac{13.6}{2^2} = \frac{13.6}{4} = 3.4 \, \text{eV}.
\]
The ionization energy required for ionizing the electron from \( n = 2 \) to \( n = \infty \) is the energy needed to remove it from the \( n = 2 \) level, which is 3.4 eV.
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