If we need a magnification of 375 from a compound microscope of tube length 150 mm and an objective of focal length 5 mm, the focal length of the eye-piece should be close to:

The correct option is A 22 mm
Magnification of compound microscope for least distance of distinct vision setting(strained eye)
$M=\frac{L}{f_0}(1+\frac{D}{f_e})$
where L is the tube length
$f_0$ is the focal length of objective
D is the least distance of distinct vision $=25cm$
$\Rightarrow 375=\frac{150\times {10}^{-3}}{5\times {10}^{-3}}(1+\frac{25\times {10}^{-2}}{f_e})$
$12.5=1+\frac{25\times {10}^{-2}}{f_e}$
$\frac{25\times {10}^{-2}}{f_e}=11.5$
$\therefore f_e\approx 21.7\times {10}^{-3}m=22mm$.