2019Unpublished venueRequires access

Optical Aberrations of the Microscope

Jeremy Sanderson

Open publisher page 3 citations

Abstract

A modern microscope is a series of lenses arranged on-axis to give an image appropriate for viewing by eye or with a camera. Optical aberrations arise from the dioptric nature of how lenses work. This chapter discusses the nature and effects of these optical aberrations. Most aberrations are taken care of by the manufacturer when designing the objective and other optical components. Aberrations are grouped as on-axis or off-axis types. The three on-axis aberrations are spherical aberration, astigmatism and chromatic aberration. Off-axis aberrations - which have a greater potential effect in high numerical aperture objectives - are: coma, field curvature, astigmatism, distortion and lateral chromatic aberration. Star test can be employed to recognise spherical aberration. A knowledge of these inherent aberrations and how they are minimised helps formulate criteria for working with and choosing the objectives best suited to the imaging task.

About this research paper

What this paper is about

A modern microscope is a series of lenses arranged on-axis to give an image appropriate for viewing by eye or with a camera. Optical aberrations arise from the dioptric nature of how lenses work. This chapter discusses the nature and effects of these optical aberrations. Most aberrations are taken care of by the manufacturer when designing the objective and other optical components. Aberrations are grouped as on-axis or off-axis types. The three on-axis aberrations are spherical aberration, astigmatism and chromatic aberration. Off-axis aberrations - which have a greater potential effect in high numerical aperture objectives - are: coma, field curvature, astigmatism, distortion and lateral chromatic aberration. Star test can be employed to recognise spherical aberration. A knowledge of these inherent aberrations and how they are minimised helps formulate criteria for working with and choosing the objectives best suited to the imaging task.

Why it matters

OpenAlex reports 3 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

A modern microscope is a series of lenses arranged on-axis to give an image appropriate for viewing by eye or with a camera. Optical aberrations arise from the dioptric nature of how lenses work. This chapter discusses the nature and effects of these optical aberrations. Most aberrations are taken care of by the manufacturer when designing the objective and other optical components. Aberrations are grouped as on-axis or off-axis types. The three on-axis aberrations are spherical aberration, astigmatism and chromatic aberration. Off-axis aberrations - which have a greater potential effect in high numerical aperture objectives - are: coma, field curvature, astigmatism, distortion and lateral chromatic aberration. Star test can be employed to recognise spherical aberration. A knowledge of these inherent aberrations and how they are minimised helps formulate criteria for working with and choosing the objectives best suited to the imaging task.

Key concepts: Chromatic aberration, Coma (optics), Spherical aberration, Optics, Optical aberration, Astigmatism, Lens (geology), Optical axis

Related papers

Back to paper searchBrowse research topicsOriginal source
Optical Aberrations of the Microscope — Research Paper | ScholarLens