2000Proceedings of SPIE, the International Society for Optical Engineering/Proceedings of SPIERequires access

Numerical study of the resolution in a model near-field optical microscope

Claudio I. Valencia, Eugenio R. Méndez

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Abstract

We present numerical calculations for a model illumination mode Scanning Near-field Optical Microscope (SNOM) that provide some guidelines for the determination of the resolution of such instruments. The calculations of the near-field intensity distribution inside the tapered waveguide show that the metal employed in their coating determines the degree of confinement of the radiation and, thus, the size of the effective source at the exit end of the waveguide. It is argued that simple measure of the ultimate resolution of near-field microscopes is provide by the skin depth of the metal employed in the coating of the tapered waveguide. These ideas are supported by the calculated near- field intensity distributions in the neighborhood of the tapered waveguide, and by the simulated images of a two-cylinder object.

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What this paper is about

We present numerical calculations for a model illumination mode Scanning Near-field Optical Microscope (SNOM) that provide some guidelines for the determination of the resolution of such instruments. The calculations of the near-field intensity distribution inside the tapered waveguide show that the metal employed in their coating determines the degree of confinement of the radiation and, thus, the size of the effective source at the exit end of the waveguide. It is argued that simple measure of the ultimate resolution of near-field microscopes is provide by the skin depth of the metal employed in the coating of the tapered waveguide. These ideas are supported by the calculated near- field intensity distributions in the neighborhood of the tapered waveguide, and by the simulated images of a two-cylinder object.

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Available abstract

We present numerical calculations for a model illumination mode Scanning Near-field Optical Microscope (SNOM) that provide some guidelines for the determination of the resolution of such instruments. The calculations of the near-field intensity distribution inside the tapered waveguide show that the metal employed in their coating determines the degree of confinement of the radiation and, thus, the size of the effective source at the exit end of the waveguide. It is argued that simple measure of the ultimate resolution of near-field microscopes is provide by the skin depth of the metal employed in the coating of the tapered waveguide. These ideas are supported by the calculated near- field intensity distributions in the neighborhood of the tapered waveguide, and by the simulated images of a two-cylinder object.

Key concepts: Near-field scanning optical microscope, Optics, Optical microscope, Microscope, Waveguide, Near and far field, Cylinder, Resolution (logic)

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