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通过自适应光学进行像差校正,降低基于水的眼模型中飞秒激光诱导光学击穿的阈值能量。

Lowered threshold energy for femtosecond laser induced optical breakdown in a water based eye model by aberration correction with adaptive optics.

作者信息

Hansen Anja, Géneaux Romain, Günther Axel, Krüger Alexander, Ripken Tammo

机构信息

Laser Zentrum Hannover e.V., Hollerithallee 8, 30419 Hannover, Germany.

出版信息

Biomed Opt Express. 2013 May 10;4(6):852-67. doi: 10.1364/BOE.4.000852. Print 2013 Jun 1.

Abstract

In femtosecond laser ophthalmic surgery tissue dissection is achieved by photodisruption based on laser induced optical breakdown. In order to minimize collateral damage to the eye laser surgery systems should be optimized towards the lowest possible energy threshold for photodisruption. However, optical aberrations of the eye and the laser system distort the irradiance distribution from an ideal profile which causes a rise in breakdown threshold energy even if great care is taken to minimize the aberrations of the system during design and alignment. In this study we used a water chamber with an achromatic focusing lens and a scattering sample as eye model and determined breakdown threshold in single pulse plasma transmission loss measurements. Due to aberrations, the precise lower limit for breakdown threshold irradiance in water is still unknown. Here we show that the threshold energy can be substantially reduced when using adaptive optics to improve the irradiance distribution by spatial beam shaping. We found that for initial aberrations with a root-mean-square wave front error of only one third of the wavelength the threshold energy can still be reduced by a factor of three if the aberrations are corrected to the diffraction limit by adaptive optics. The transmitted pulse energy is reduced by 17% at twice the threshold. Furthermore, the gas bubble motions after breakdown for pulse trains at 5 kilohertz repetition rate show a more transverse direction in the corrected case compared to the more spherical distribution without correction. Our results demonstrate how both applied and transmitted pulse energy could be reduced during ophthalmic surgery when correcting for aberrations. As a consequence, the risk of retinal damage by transmitted energy and the extent of collateral damage to the focal volume could be minimized accordingly when using adaptive optics in fs-laser surgery.

摘要

在飞秒激光眼科手术中,组织切割是通过基于激光诱导光学击穿的光致破裂来实现的。为了将对眼睛的附带损伤降至最低,激光手术系统应朝着尽可能低的光致破裂能量阈值进行优化。然而,眼睛和激光系统的光学像差会使辐照度分布偏离理想轮廓,即使在设计和校准过程中非常小心地尽量减少系统像差,也会导致击穿阈值能量升高。在本研究中,我们使用带有消色差聚焦透镜的水腔和散射样品作为眼睛模型,并通过单脉冲等离子体传输损耗测量来确定击穿阈值。由于像差的存在,水中击穿阈值辐照度的确切下限仍然未知。在此我们表明,当使用自适应光学通过空间光束整形来改善辐照度分布时,阈值能量可大幅降低。我们发现,对于初始像差,其均方根波前误差仅为波长的三分之一,若通过自适应光学将像差校正至衍射极限,则阈值能量仍可降低三倍。在阈值两倍时,透射脉冲能量降低了17%。此外,与未校正时更呈球形分布相比,在5千赫兹重复率下脉冲序列击穿后的气泡运动在校正情况下显示出更横向的方向。我们的结果表明,在眼科手术中校正像差时,如何降低施加的和透射的脉冲能量。因此,在飞秒激光手术中使用自适应光学时,透射能量对视网膜造成损伤的风险以及对焦区的附带损伤程度可相应降至最低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f78c/3675865/62648076d371/boe-4-6-852-g001.jpg

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