MCQEasyJEE 2025Interference (Young's Experiment)

JEE Physics 2025 Question with Solution

In a Young's double slit experiment, the slits are separated by 0.2mm0.2 \, \text{mm}. If the slits separation is increased to 0.4mm0.4 \, \text{mm}, the percentage change of the fringe width is:

  • A

    0%0\%

  • B

    100%100\%

  • C

    50%50\%

  • D

    25%25\%

Answer

Correct answer:C

Step-by-step solution

Standard Method

Given: Initial slit separation is d1=0.2mmd_1 = 0.2 \, \text{mm} and final slit separation is d2=0.4mmd_2 = 0.4 \, \text{mm}.

Find: The percentage change in fringe width.

In Young's double slit experiment, fringe width is given by

β=λDd\beta = \frac{\lambda D}{d}

So, β1d\beta \propto \frac{1}{d}.

Therefore, the ratio of final and initial fringe widths is

β2β1=d1d2=0.20.4=12\frac{\beta_2}{\beta_1} = \frac{d_1}{d_2} = \frac{0.2}{0.4} = \frac{1}{2}

Hence,

β2=12β1\beta_2 = \frac{1}{2}\beta_1

Now calculate percentage change:

Percentage change=β2β1β1×100\text{Percentage change} = \frac{\beta_2 - \beta_1}{\beta_1} \times 100

Substituting β2=12β1\beta_2 = \frac{1}{2}\beta_1,

Percentage change=12β1β1β1×100=50%\text{Percentage change} = \frac{\frac{1}{2}\beta_1 - \beta_1}{\beta_1} \times 100 = -50\%

The negative sign shows that the fringe width decreases. Therefore, the fringe width decreases by 50%50\%. The correct option is C.

Common mistakes

  • Using direct proportionality between fringe width and slit separation is incorrect because β=λDd\beta = \frac{\lambda D}{d}. As slit separation increases, fringe width decreases. Use inverse proportionality.

  • Reporting the answer as 50%-50\% instead of matching the option format can be misleading. The negative sign only indicates decrease, so the option should be the magnitude of decrease, 50%50\%.

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