For minimum potential difference electron has to make transition from $$n=3$$ to $$n=2$$ state but first electron has to reach to $$\mathrm{n}=3$$ state from ground state. So, energy of bombarding electron should be equal to energy difference of $$\mathrm{n=3}$$ and $$\mathrm{n=1}$$ state.

$$\begin{aligned} & \Delta \mathrm{E}=13.6\left[1-\frac{1}{3^2}\right] \mathrm{e}=\mathrm{eV} \\ & \frac{13.6 \times 8}{9}=\mathrm{V} \\ & \mathrm{V}=12.09 \mathrm{~V} \approx 12.1 \mathrm{~V} \end{aligned}$$

So, $$\alpha=121$$