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  1. The polarized light microscope is designed to observe and photograph specimens that are visible primarily due to their optically anisotropic character.

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  2. Wave optics depends on the wave nature of light. The three primary topics we examine in this chapter are interference, diffraction, and polarization. These phenomena can’t be adequately explained with ray optics, but can be understood if light is viewed as a wave.

  3. The best way to demonstrate a polarized lens is to find a reflecting surface such as a counter top or car hood. Look through a polarized lens that is turned 90° off axis and the reflected light will be visible.

  4. fication is a true polarized light microscope (PLM), or, simply, polarizing microscope. A phase contrast microscope, a reflected-light (metallurgical) micro-scope, and a biomedical, clinical-type microscope fit-ted with polarizing filters, as are commonly provided, are inadequate. The microscope must be a true polar-

  5. A computer-interfaced polarized optical microscope with a laser source at 543.5 nm (Figure 9) was constructed on the optical bench and used to inspect the lenses on a microscopic scale and to...

  6. High quality polycarbonate polarized lenses offer the best protection from harmful UV light and blinding glare. It’s important for anyone who sells or dispenses polarized lenses to understand how they work and to be able to explain to patients how they differ from conventional sun lenses.

  7. Polarization of Light. Introduction. Light, viewed classically, is a transverse electromagnetic wave. Namely, the underlying os-cillation (in this case oscillating electric and magnetic elds) is along directions perpendicular to the direction of propagation.

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