In young's double slit experiment, the slit separation is 1.0 mm and the screen is placed at a distance of 1.0m from the plane of the slits. If the slit separation is changed by 0.05 mm, the fringe width changes by 0.03mm. The wavelength of light used is

4000A

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5000A

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6000A

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7000A

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Solution

The correct option is C 6000A

The fringe width $y$ , the slit width $d$ , the distance between the slit and the screen $D$ , and the wavelength $λ$ are related by,
$\frac{d y}{D} = λ$
$y = \frac{D λ}{d}$
Differentiating on both sides, we get
$d y = \frac{- D λ}{d^{2}} d d$
$0.03 = \frac{D λ}{d^{2}} 0.05$
$λ = 6000 A$

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