(a) If the fifth-order maximum for monochromatic light falling on a double slit is at an angle of 25.8°, at what angle (in degrees) is the seventh-order maximum? (b) What is the angle (in degrees) of the fourth minimum? (c) What is the highest-order maximum possible here?
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- (a) If the third-order maximum for monochromatic light falling on a double slit is at an angle of 20.7o at what angle (in degrees) is the fourth-order maximum? (b) What is the angle (in degrees) of the fourth minimum? (c) What is the highest-order maximum possible here?In a double-slit arrangement the slits are separated by a distance equal to 85 times the wavelength of the light passing through the slits. (a) What is the angular separation between the central maximum and an adjacent maximum? (b) What is the distance between these maxima on a screen 69.2 cm from the slits? (a) Number Units (b) Number UnitsIn a location where the speed of sound is 332 m/s, a 2,000 Hz sound wave impinges on two slits 30 cm apart. (a) At what angle is the first-order maximum located? O (b) If the sound wave is replaced by 2.55 cm microwaves, what slit separation gives the same angle for the first-order maximum? cm (c) If the slit separation is 1.00 μm, what frequency of light gives the same first-order maximum angle? Hz
- Consider the following. (a) Find the angle ? locating the first minimum in the Fraunhofer diffraction pattern of a single slit of width 0.182 mm, using light of wavelength 581 nm.(b) Find the angle locating the second minimum.Monochromatic light is incident on a pair of slits that are separated by 0.210 mm. The screen is 2.60 m away from the slits. (Assume the small-angle approximation is valid here.) (a) If the distance between the central bright fringe and either of the adjacent bright fringes is 1.52 cm, find the wavelength of the incident light. m (b) At what angle does the next set of bright fringes appear?Consider the following. (a) Find the angle (theta) locating the first minimum in the Fraunhofer diffraction pattern of a single slit of width 0.210 mm, using light of wavelength 555 nm.(b) Find the angle locating the second minimum.