OPTICS - REFLECTION, REFRACTION AND DISPERSION
O.2(1) - PROJECTION OF GRATING SPECTRA
Interference patterns produced by a diffraction grating are projected on a screen. The transmission-type diffraction grating fints on a stand just in front of a HeNe laser, and is brightly projected on the lecture room screen. This demonstration slide has three 9 mm x 16 mm gratings with 100, 300, and 600 line per mm. They are mounted between glass plates in a 3 cm x 9 cm slide card.
One can also shine the laser beam on a compact disk as an example of relfection-type diffraction grating.
O.2(2) - DIFFERENT GASES SPECTRUM
Spectral lines of 5 different gases and for white light, are identified by the students with the help of individual transmission-type grating glasses. There are discharge tubes of: He, Xe, Ne, Ar and Hg. Each tube is about 30 cm long.
Helium Spectrum
Hydrogen Spectrum
Neon Spectrum
Xenon Spectrum
Argon Spectrum
O.2(3) - NEWTON'S RING APPARATUS
This apparatus consists of a flat plate and a convex lens of long focus, both 8.5 cm in diameter, mounted in brass frames fitted with three knurled compression screws. The circular interference fringes can be projected on a screen using a HeNe laser beam. The projection can be made large enough to be seen by the whole class, if the apparatus is set at a distance from the screen ( at least 3 meters). the interference pattern can be viewed off screen using other light sources.
One can also show that this interference pattern appears when a simple glass plate and a watch glass are set together and slightly pressed against each other. The same pattern appears but it is not as stable since as you move the contact point the pattern moves and distorts. A HeNe laser beam is also used as a light source.
O.2(4) - INTERFERENCE MODEL
This demonstration model gives a large graphic display of how interference occurs. Wave fronts are represented by concentric circles drawn on transparent plastic plates that fit in the overhead projector. As the centers of the two plates are moved relative to one another, the interference patterns appear.
O.2(5) - SINGLE AND DOUBLE SLIT DIFFRACTION
A HeNe laser is used as the light source in the projection of diffraction patterns due to single slit and double slit slides. The single slit slide has four different widths, and the double slit has four different spacings. With the double slit slide on, the single slit diffraction pattern can be recoverd by using an opaque edge to carefully block one of the slits.
O.2(6) - OTHER DIFFRACTION PATTERNS
Slides with pinholes, gratings, different widths wires, straight edges, circular and square apertures are available. One can aslo show the complemenatary diffraction patterns of a pinhole and an opaque disk. The diffraction pattern of an opaque disk demonstrates the Poison's spot. The diffraction patterns are projected on a screen using a HeNe laser as light source (the same set-up used in the previous demonstration).
O.2(7) - DIFFRACTION GRATING MODEL
Model demonstrates the principles of constructive and destructive interference as produced by the deffraction grating. The grating corresponds to a spacing of 6000 lines/cm illuminated by sodium light at wavelength 5892 Angstroms.
Dimensions: width: 56 cm, height: 40.5 cm
O.2(8) - YOUNG'S DOUBLE SLIT APPARATUS
Model graphically demonstrates the wave phenomena of double slit interference. Model has a variable slit width of 4.5 micron and 2.25 micron. A phase adjuster allows the incident wave front of one slit to be thrown out of phase with respect to the other slit to illustrate the interference pattern.
Dimensions: width: 40 cm height: 65 cm