首页> 外文期刊>British journal of ophthalmology >The effect of chromatic dispersion on pseudophakic optical performance.
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The effect of chromatic dispersion on pseudophakic optical performance.

机译:色散对伪相光学性能的影响。

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AIM: Monochromatic and chromatic aberrations limit the visual performance of pseudophakic eyes. Chromatic aberration is caused by the chromatic dispersion of optical materials which can be characterised by their Abbe numbers. This study examines how chromatic dispersion affects pseudophakic optical performance at different wavelengths and spatial frequencies. METHODS: Abbe numbers were measured for acrylic and silicone intraocular lenses (IOLs). A schematic eye model based on cataract population data was used to compute monochromatic and photopic polychromatic modulation transfer functions (MTFs) for pseudophakic eyes with aspheric IOLs. IOL Abbe numbers were varied without changing other eye model parameters to determine how chromatic dispersion affects pseudophakic MTF and chromatic difference of refraction. Additional calculations were performed for (1) acrylic or silicone materials and (2) high-pass optical filters blocking either UV radiation or UV radiation and short wavelength visible light. RESULTS: Shorter wavelengths account for approximately two thirds of pseudophakic chromatic difference of refraction or longitudinal chromatic aberration. Increasing Abbe number (reducing chromatic dispersion) decreases total chromatic difference of refraction and increases photopic polychromatic MTF. For a specific spatial frequency, there is an effective pseudophakic depth of wavelength over which a particular MTF level is achieved or exceeded. Depth of wavelength narrows with decreasing Abbe number or increasing spatial frequency. Blue-blocking IOL chromophores improve photopic MTF performance by less than 1.5%. CONCLUSIONS: Most pseudophakic longitudinal chromatic aberration arises from the chromatic dispersion of IOLs rather than the cornea and other ocular media. Increasing the Abbe number of optic materials improves overall pseudophakic optical performance. Optical transmission of medium and high spatial frequency modulation information has a spectrum similar to photopic luminous efficiency, accountingfor the inability of blue-blocking chromophores to improve photopic pseudophakic contrast sensitivity significantly and demonstrating the excellent mutual adaptation of modulation transfer by the eye's optics and management of that data by the retina and brain.
机译:目的:单色和色差限制了伪晶状体眼睛的视觉性能。色差是由光学材料的色散引起的,该色散可以通过其阿贝数表征。这项研究研究了色散如何影响不同波长和空间频率下的伪相位光学性能。方法:测量丙烯酸和有机硅人工晶状体(IOL)的阿贝数。基于白内障人群数据的示意性眼模型用于计算具有非球面IOL的伪晶状体眼的单色和明视多色调制传递函数(MTF)。在不更改其他眼模型参数的情况下,可以改变IOL阿贝数,从而确定色散如何影响伪相位MTF和折射色差。对(1)丙烯酸或有机硅材料和(2)阻挡UV辐射或UV辐射以及短波长可见光的高通滤光器进行了附加计算。结果:较短的波长约占伪相位折射或纵向色差的三分之二。阿贝数的增加(减少色散)会减小折射的总色差,并增加明视多色MTF。对于特定的空间频率,存在有效的伪相位深度,在该波长上可以达到或超过特定的MTF级别。波长的深度随着阿贝数的减少或空间频率的增加而变窄。阻止蓝光的IOL发色团将明视MTF性能提高不到1.5%。结论:大多数伪晶状体纵向色差是由于人工晶体的色散而不是角膜和其他眼部介质引起的。增加光学材料的阿贝数可改善整体伪相位光学性能。中空和高空间频率调制信息的光传输具有类似于可见光发光效率的光谱,这说明了阻蓝发色团无法显着提高可见伪相差对比敏感度,并证明了眼睛光学系统和调制管理的出色相互适应性。视网膜和大脑的数据。

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