181. A beam of light consisting of red, green and blue colours is incident on a right angled prism. The refractive index of the material of the prism for the above red, green and blue wavelengths are 1.39, 1.44 and 1.47, respectively.
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The prism will

A separate the blue colour part from the red and green colours
B separate all the three colours from one another
C not separate the three colours at all
D separate the red colour part from the green and blue colours
Answer :   separate the red colour part from the green and blue colours
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182. A container is filled with water $$\left( {\mu = 1.33} \right)$$   upto a height of $$33.25\,cm.$$   A concave mirror is placed $$15\,cm$$  above the water level and the image of an object placed at the bottom is formed $$25\,cm$$  below the water level. Focal length of the mirror is
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A $$15\,cm$$
B $$20\,cm$$
C $$-18.31\,cm$$
D $$10\,cm$$
Answer :   $$-18.31\,cm$$
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183. The refractive index of a glass is 1.520 for red light and 1.525 for blue light. Let $${D_1}$$ and $${D_2}$$ be angles of minimum deviation for red and blue light respectively in a prism of this glass. Then,

A $${D_1} < {D_2}$$
B $${D_1} = {D_2}$$
C $${D_1}$$ can be less than or greater than $${D_2}$$ depending upon the angle of prism
D $${D_1} > {D_2}$$
Answer :   $${D_1} < {D_2}$$
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184. A rectangular glass slab $$ABCD$$   of refractive index $$n,$$ is immersed in water of refractive index $${n_2}\left( {{n_1} > {n_2}} \right).$$   A ray of light is incident at the surface $$AB$$  of the slab as shown. The maximum value of the angle of incidence $${\alpha _{\max }}$$ such that the ray comes out only from the other surface $$CD$$  is given by
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A $${\sin ^{ - 1}}\left[ {\frac{{{n_1}}}{{{n_2}}}\cos \left( {{{\sin }^{ - 1}}\left( {\frac{{{n_2}}}{{{n_1}}}} \right)} \right)} \right]$$
B $${\sin ^{ - 1}}\left[ {{n_1}\cos \left( {{{\sin }^{ - 1}}\left( {\frac{1}{{{n_2}}}} \right)} \right)} \right]$$
C $${\sin ^{ - 1}}\left( {\frac{{{n_1}}}{{{n_2}}}} \right)$$
D $${\sin ^{ - 1}}\left( {\frac{{{n_2}}}{{{n_1}}}} \right)$$
Answer :   $${\sin ^{ - 1}}\left[ {\frac{{{n_1}}}{{{n_2}}}\cos \left( {{{\sin }^{ - 1}}\left( {\frac{{{n_2}}}{{{n_1}}}} \right)} \right)} \right]$$
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185. A thin convex lens made from crown glass $$\left( {\mu = \frac{3}{2}} \right)$$  has focal length $$f.$$ When it is measured in two different liquids having refractive indices $$\frac{4}{3}$$ and $$\frac{5}{3}$$ it has the focal lengths $${f_1}$$ and $${f_1}$$ respectively. The correct relation between the focal lengths is:

A $${f_1} = {f_2} < f$$
B $${f_1} < f$$   and $${f_2}$$ becomes negative
C $${f_2} < f$$   and $${f_1}$$ becomes negative
D $${f_1}$$ and $${f_2}$$ both become negative
Answer :   $${f_1} < f$$   and $${f_2}$$ becomes negative
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186. In a diffraction pattern due to a single slit of width $$a,$$ the first minimum is observed at an angle $${30^ \circ }$$ when light of wavelength $$5000\,\mathop {\text{A}}\limits^ \circ $$  is incident on the slit. The first secondary maximum is observed at an angle of

A $${\sin ^{ - 1}}\left( {\frac{2}{3}} \right)$$
B $${\sin ^{ - 1}}\left( {\frac{1}{2}} \right)$$
C $${\sin ^{ - 1}}\left( {\frac{3}{4}} \right)$$
D $${\sin ^{ - 1}}\left( {\frac{1}{4}} \right)$$
Answer :   $${\sin ^{ - 1}}\left( {\frac{3}{4}} \right)$$
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187. A beam of light of $$\lambda = 600\,nm$$   from a distant source falls on a single slit $$1\,mm$$  wide and the resulting diffraction pattern is observed on a screen $$2\,m$$  away. The distance between first dark fringes on either side of the central bright fringe is

A $$1.2\,cm$$
B $$1.2\,mm$$
C $$2.4\,cm$$
D $$2.4\,mm$$
Answer :   $$2.4\,mm$$
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188. A equilateral prism is made of a transparent material of refractive index $$\sqrt 2 .$$  A ray of light $$AB$$  is incident at $${45^ \circ }$$ as shown. The net deviation in the path of ray when it comes out of prism is
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A $${135^ \circ }$$
B $${120^ \circ }$$
C $${30^ \circ }$$
D $${150^ \circ }$$
Answer :   $${150^ \circ }$$
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189. $$I$$ is the image of a point object $$O$$ formed by spherical mirror, then which of the following statement is incorrect? (Take real or virtual objects at finite distances from pole)

A If $$O$$ and $$I$$ are on the same side of the principal axis, then they have to be on opposite sides of the mirror
B If $$O$$ and $$I$$ are on opposite sides of the principal axis, then they have to be on same side of the mirror
C If $$O$$ and $$I$$ are on opposite sides of the principal axis, then they have to be on opposite sides of the mirror as well
D If $$O$$ is on principal axis, then has to lie on principal axis only
Answer :   If $$O$$ and $$I$$ are on opposite sides of the principal axis, then they have to be on opposite sides of the mirror as well
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190. In a compound microscope, the intermediate image is

A virtual, erect and magnified
B real, erect and magnified
C real, inverted and magnified
D virtual, erect and reduced
Answer :   real, inverted and magnified
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