A student and his lab partner create a single slit by carefully aligning two razor blades to a separation of 0.540 mm. When a helium–neon laser at 633 nm illuminates the slit, a diffraction pattern is observed on a screen 1.15 m beyond the slit. Calculate the angle dark to the first minimum in the diffraction pattern and the width of the central maximum. (a) the angle dark to the first minimum in the diffraction pattern (in degrees)  (b) the width of the central maximum (in m)

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Chapter4: Diffraction
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A student and his lab partner create a single slit by carefully aligning two razor blades to a separation of 0.540 mm. When a helium–neon laser at 633 nm illuminates the slit, a diffraction pattern is observed on a screen 1.15 m beyond the slit. Calculate the angle dark to the first minimum in the diffraction pattern and the width of the central maximum.

(a) the angle dark to the first minimum in the diffraction pattern (in degrees) 
(b) the width of the central maximum (in m)

A student and his lab partner create a single slit by carefully aligning two razor blades to a separation of 0.540 mm. When a
helium-neon laser at 633 nm illuminates the slit, a diffraction pattern is observed on a screen 1.15 m beyond the slit. Calculate the
angle e dark to the first minimum in the diffraction pattern and the width of the central maximum.
HINT
(a) the angle edark to the first minimum in the diffraction pattern (in degrees)
(b) the width of the central maximum (in m)
Transcribed Image Text:A student and his lab partner create a single slit by carefully aligning two razor blades to a separation of 0.540 mm. When a helium-neon laser at 633 nm illuminates the slit, a diffraction pattern is observed on a screen 1.15 m beyond the slit. Calculate the angle e dark to the first minimum in the diffraction pattern and the width of the central maximum. HINT (a) the angle edark to the first minimum in the diffraction pattern (in degrees) (b) the width of the central maximum (in m)
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