In a Young’s double slit experiment, the fringe width is found to be 0.4 mm. To make things more interesting, if the whole apparatus is immersed in water of refractive index $\frac{4}{3}$ without disturbing the geometrical arrangement, the new fringe width will be:

0.30 mm

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0.40 mm

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0.53 mm

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0.50 micron

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Solution

The correct option is A 0.30 mm
$I n a i r : 0.4 = \frac{D λ_{a}}{d}, I n W a t e r : β = \frac{D λ_{w}}{d}$
$\frac{0.4}{β} = \frac{λ_{a}}{λ_{w}}, β = 0.30 m m$

Watch the next video for in-depth explanation.

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Q. In a Young’s double slit experiment, the fringe width is found to be 0.4 mm. To make things more interesting, if the whole apparatus is immersed in water of refractive index

\frac{4}{3}

without disturbing the geometrical arrangement, the new fringe width will be:

Q. In a Young’s double slit experiment, the fringe width is found to be

0.4 mm

. If the whole apparatus is immersed in water of refractive index

(4 / 3)

, without disturbing the geometrical arrangement, the new fringe width will be -

Q. In a Young's double slit experiment,the fringe width is found to be

0.4 m m

. What will be the new fringe width, if the whole apparatus is immersed in a water of refractive index 4/3 without disturbing the geometrical arrangement?

Q. In a Young's double slit experiment, the fringe width is found to be

0.4 m m .

If the whole apparatus is immersed in water of refractive index

\frac{4}{3}

without disturbing the geometrical arrangement, the new fringe width will be

In a Young's double slit experiment, the fringe width is found to be 0.4 mm. If the whole apparatus is immersed in water of refractive index $\frac{4}{3}$ , without disturbing the geometrical arrangement, what is the new fringe width?

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In a Young’s double slit experiment, the fringe width is found to be 0.4 mm. To make things more interesting, if the whole apparatus is immersed in water of refractive index 43 without disturbing the geometrical arrangement, the new fringe width will be:

The correct option is A 0.30 mmIn air: 0.4=Dλad,In Water: β=Dλwd 0.4β=λaλw,β=0.30mm Watch the next video for in-depth explanation.

In a Young’s double slit experiment, the fringe width is found to be 0.4 mm. To make things more interesting, if the whole apparatus is immersed in water of refractive index $\frac{4}{3}$ without disturbing the geometrical arrangement, the new fringe width will be:

The correct option is A 0.30 mm
$I n a i r : 0.4 = \frac{D λ_{a}}{d}, I n W a t e r : β = \frac{D λ_{w}}{d}$
$\frac{0.4}{β} = \frac{λ_{a}}{λ_{w}}, β = 0.30 m m$

Watch the next video for in-depth explanation.