Optics 2 Question 9
9. A ray of light is incident at the glass-water interface at an angle $i$, it emerges finally parallel to the surface of water, then the value of $\mu _g$ would be
$(2003,2 M)$
(a) $(4 / 3) \sin i$ (b) $1 /(\sin i)$
(c) $4 / 3$
(d) 1
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Answer:
Correct Answer: 9. (b)
Solution:
- Applying Snell’s law $(\mu \sin i=$ constant $)$
at 1 and 2 , we have
$\mu _1 \sin i _1=\mu _2 \sin i _2$
Here,
$$ \begin{aligned} & \mu _1=\mu _{\text {glass }}, i _1=i \\ & \mu _2=\mu _{\text {air }}=1 \text { and } i _2=90^{\circ} \end{aligned} $$
$\therefore \quad \mu _g \sin i=(1)\left(\sin 90^{\circ}\right)$ or $\mu _g=\frac{1}{\sin i}$
