MHT CET · Physics · Wave Optics
In biprism experiment, the fringe width is 0.6 mm . The distance between \(6^{\mathrm{th}}\) dark fringe and \(8^{\text {th }}\) bright fringe on the same side of central bright fringe is
- A 6 mm
- B 4 mm
- C 1.5 mm
- D 0.9 mm
Answer & Solution
Correct Answer
(C) 1.5 mm
Step-by-step Solution
Detailed explanation
For \(8^{\text {th }}\) bright fringe,
\(\mathrm{x}_8=8 \mathrm{X}\)
For \(6^{\text {th }}\) dark fringe,
\(\begin{aligned}
& x_6=\left(6-\frac{1}{2}\right) X=5.5 X \\
& x_8-x_6=8 X-5.5 X=2.5 X \\
\therefore \quad & x_8-x_6=2.5 \times 0.6=1.5 \mathrm{~mm}
\end{aligned}\)
\(\mathrm{x}_8=8 \mathrm{X}\)
For \(6^{\text {th }}\) dark fringe,
\(\begin{aligned}
& x_6=\left(6-\frac{1}{2}\right) X=5.5 X \\
& x_8-x_6=8 X-5.5 X=2.5 X \\
\therefore \quad & x_8-x_6=2.5 \times 0.6=1.5 \mathrm{~mm}
\end{aligned}\)
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