A rectangular glass slab ABCD of refractive index n_(1) is immersed in water of refractive index n_(2)(n_(1) lt n_(2)). A ray of light is incident at the surface AB of the slab as shwon. The maximum value of the angle of incidence alpha_(max) such that the ray comes out from the other surface CD is given by

A rectangular glass slab ABCD of refractive index n_(1) is immersed in

1.	A rectangular glass slab ABCD of refractive index n_(1) is immersed in water of refractive index n_(2)(n_(1) lt n_(2)). A ray of light is incident at the surface AB of the slab as shwon. The maximum value of the angle of incidence alpha_(max) such that the ray comes out from the other surface CD is given by
Answer» `sin^(-1)[(n_(1))/(n_(2))COS(sin^(-1)((n_(2))/(n_(1))))]` `sin^(-1)[n_(1)cos(sin^(-1)((1)/(n_(2))))]` `sin^(-1)((n_(1))/(n_(2)))` `sin^(-1)((n_(2))/(n_(1)))` Solution :See FIGURE. The ray will come out form CD if it sufferes total INTERNAL reflection at surface AC, i.e., it strikes the surface AD at critical angle C (the limiting case) . Applying Snell's law at P `, n_(1)sinC=n_(2)or sinC=(n_(2))/(n_(1))` Applying Snell's law at Q, `n_(2)SINALPHA=n_(1)cosC,` `sinalpha=(n_(1))/(n_(2))cos{sin^(-1)((n_(2))/(n_(1)))}` or `alpha=sin^(-1)[(n_(1))/(n_(2))cos{sin^(-1)((n_(2))/(n_(1)))}]` `:.` (a) is the correct option.

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