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首页> 外文期刊>Investigative ophthalmology & visual science >Polychromatic Image Performance of Diffractive Bifocal Intraocular Lenses: Longitudinal Chromatic Aberration and Energy Efficiency
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Polychromatic Image Performance of Diffractive Bifocal Intraocular Lenses: Longitudinal Chromatic Aberration and Energy Efficiency

机译:衍射双焦点人工晶状体的多色图像性能:纵向色差和能量效率

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Purpose: The study evaluateda??theoretically and experimentallya??the longitudinal chromatic aberration (LCA) and through-focus energy efficiency (TF-EE) of diffractivea??refractive bifocal intraocular lenses (2f-IOLs). Methods: Four aspheric 2f-IOLs (Tecnis +4.00 diopter [D] ZMA00, +2.75 D ZKB00, and AcrySof +4.0 D SN6AD3, +2.5 D SV25T0) of same base power 30 D, but different design, additional (add) power, and different material, were tested in vitro in terms of TF-EE when illuminated by 3 red (??R = 625 nm), green (??G = 530 nm), and blue (??B = 455 nm) lights. The LCA affecting the distance and near foci was derived theoretically and measured experimentally from the contributions of the IOLs' refractive and diffractive powers. Longitudinal chromatic aberration was evaluated in a pseudophakic schematic eye. Results: The distance focus of all 2f-IOLs showed lower energy efficiency (EE) for the blue than for the red light. AcrySof IOLs showed the largest amount of positive LCA in the distance focus that, combined with corneal LCA, would increase the resulting distance LCA in a pseudophakic eye. The near focus of all 2f-IOLs showed higher EE for the blue than for the red light. Better compensation for the LCA of a pseudophakic eye at near focus is obtained with Tecnis than with AcrySof 2f-IOLs. Conclusions: The energy distribution between the foci of diffractive 2f-IOLs depends on the lens design, the illumination wavelength, and to a lesser extent, the add power. In distance vision, 2f-IOLs' refractive base power increases the positive LCA of prior ocular media, and the resulting LCA may even surpass the natural LCA of human eye. In near vision, however, the achromatizing effect of diffractive 2f-IOLs may compensate, in part, the natural eye's LCA.
机译:目的:该研究从理论和实验上评估了衍射屈光双焦点人工晶状体(2f-IOL)的纵向色差(LCA)和通过聚焦能效(TF-EE)。方法:四个非球面2f-IOL(Tecnis +4.00屈光度[D] ZMA00,+ 2.75 D ZKB00和AcrySof +4.0 D SN6AD3,+ 2.5 D SV25T0),基本功率相同,但功率为30 D,但设计不同,附加(附加)功率当用3个红色(ΔεR= 625 nm),绿色(ΔεG= 530 nm)和蓝色(ΔεB= 455 nm)照明时,根据TF-EE进行了体外测试,以及不同的材料。 LCA影响距离和近焦点,是从IOL的屈光力和衍射力的贡献中得出的,理论上是通过实验得出的。在伪晶状体示意图眼中评估纵向色差。结果:所有2f-IOL的距离焦点显示蓝色的能量效率(EE)低于红色光。 AcrySof IOLs在远距离聚焦中显示出最大量的阳性LCA,与角膜LCA结合使用可增加假晶状体眼中所产生的距离LCA。所有2f-IOL的近焦点显示,蓝色的EE高于红色的EE。与使用AcrySof 2f-IOL相比,Tecnis可以更好地补偿近焦点假晶状体眼的LCA。结论:衍射2f-IOL焦点之间的能量分布取决于透镜设计,照明波长,并在较小程度上取决于附加光焦度。在远距离视力中,2f-IOL的屈光基础屈光度会增加先前眼球介质的正LCA,并且所产生的LCA甚至可能超过人眼的自然LCA。但是,在近视情况下,衍射2f-IOL的消色差效果可能部分补偿了自然眼睛的LCA。

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