In optics, defocus is the aberration in which an image is simply out of focus. This aberration is familiar to anyone who has used a camera, videocamera, microscope, telescope, or binoculars. Optically, defocus refers to a translation of the focus along the optical axis away from the detection surface. In general, defocus reduces the sharpness and contrast of the . What should be sharp, high-contrast edges in a scene become gradual transitions. Fine detail in the scene is blurred or even becomes invisible.
Phase-contrast imaging is a method of that has a range of different applications. It measures differences in the refractive index of different materials to differentiate between structures under analysis. In conventional light microscopy, phase contrast can be employed to distinguish between structures of similar transparency, and to examine crystals on the basis of their double refraction. This has uses in biological, medical and geological science.
thumb|Photographie d'un cellule épithéliale de joue vue par un Microscope à contraste de phase Le microscope à contraste de phase est un microscope qui exploite les changements de phase d'une onde lumineuse traversant un échantillon. Cet instrument fut développé par le physicien hollandais Frederik Zernike dans les années 1930, ce qui lui valut le prix Nobel de physique en 1953. Emilie Bleeker, physicienne reconnue pour le développement d'instruments, est la première à mettre le microscope à contraste de phase en utilisation.
Une aberration est un défaut du système optique qui se répercute sur la qualité de l'image (flou, irisation ou déformation). Les aberrations sont définies par rapport à l'optique paraxiale et matérialisent le fait que certains rayons ne convergent pas vers l'image prédite par l'optique géométrique. Ainsi, la théorie des aberrations s'inscrit dans le cadre de l'optique géométrique et ne prend pas en compte les aspects ondulatoire ou corpusculaire de la lumière. Il est possible de classer les aberrations en deux groupes.
In optics, spherical aberration (SA) is a type of aberration found in optical systems that have elements with spherical surfaces. Lenses and curved mirrors are prime examples, because this shape is easier to manufacture. Light rays that strike a spherical surface off-centre are refracted or reflected more or less than those that strike close to the centre. This deviation reduces the quality of images produced by optical systems. The effect of spherical aberration was first identified by Ibn al-Haytham who discussed it in his work Kitāb al-Manāẓir.