The ratio of the radius of the first excited state of $Li^{2+}$ to the radius of the second excited state of $H$ is ....

  • A
    $9 : 25$
  • B
    $4 : 3$
  • C
    $27 : 4$
  • D
    $25 : 9$

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The frequency corresponding to the transition $n = 2$ to $n = 1$ in a hydrogen atom is:

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Find the wave number of the shortest wavelength in the Balmer series.

According to Bohr's theory,
$E_{n} = \text{Total energy}, K_{n} = \text{Kinetic energy}, V_{n} = \text{Potential energy}, r_{n} = \text{Radius of } n^{\text{th}} \text{ orbit}$
Match the following:
Column $I$ Column $II$
$A$. $V_{n} / K_{n} = ?$ $P$. $0$
$B$. If radius of $n^{\text{th}}$ orbit $\propto E_{n}^{x}, x = ?$ $Q$. $-1$
$C$. Angular momentum in lowest orbital $R$. $-2$
$D$. $1/r_{n} \propto Z^{y}, y = ?$ $S$. $1$

For the hydrogen emission spectrum,the energy change $E$ (in Joules) is given by $\Delta E = 2.18 \times 10^{-18} \left( \frac{1}{n_1^2} - \frac{1}{n_2^2} \right) \ J$,where $n_1 = 1, 2, 3, \dots$ and $n_2 = 2, 3, 4, \dots$. Which of the following corresponds to the Paschen series?

According to the Bohr model for the hydrogen atom,the radius of stationary orbits is proportional to which of the following?

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