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Contact Focusing Multimodal Probes for Potential Use in Ophthalmic Surgery with the Erbium:YAG Laser

机译:接触聚焦多模态探头在with:YAG激光眼科手术中的潜在应用

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Vitreoretinal surgery is performed using mechanical dissection that sometimes results in iatrogenic complications, including vitreous hemorrhage, retinal breaks, incomplete membrane delamination, retinal distortion, microscopic damage, etc. The laser probe would be an ideal tool for cutting away pathologic membranes, however the depth of surgery should be precisely controlled to protect the retina. In this study, we optimized the design of such ultraprecise surgical microprobe formed by chains of dielectric spheres assembled directly inside the cores of the mid-infrared flexible delivery systems used in such surgeries. Specifically, our design is optimized for use of Erbium:YAG laser sources with extremely short optical penetration depth in tissue. By using numerical modeling, we demonstrate a potential advantage of five-sphere focusing chains of sapphire or ruby spheres with index n=1.71 for ablating the tissue with self-limited depth around 10-20 μm. We fabricated and tested such optimized structures formed by 300 μm ruby spheres with ophthalmic tissues, ex vivo. Single Er:YAG pulses of 0.2 mJ and 75 μs duration produced ablation craters in cornea epithelium for one, three, and five sphere structures with the latter generating the smallest crater depth (10 μm) with the least amount of thermal damage depth (30 μm). We show that integration of the ultraprecise laser ablation capability with illumination and suction tools would produce a single headpiece with versatile functionality in ultraprecise intraocular surgery.
机译:玻璃体视网膜手术是通过机械解剖进行的,有时会导致医源性并发症,包括玻璃体出血,视网膜裂孔,膜不完全脱层,视网膜变形,显微镜损伤等。激光探头是切除病理性膜的理想工具,但是深度手术时应精确控制以保护视网膜。在这项研究中,我们优化了这种超精密外科手术微型探针的设计,该探针由直接在此类手术中使用的中红外柔性输送系统的核心内部组装的电介质球链形成。具体来说,我们的设计针对使用Erbium:YAG激光源进行了优化,该激光源在组织中的光穿透深度极短。通过使用数值模型,我们证明了指数为n = 1.71的蓝宝石或红宝石球的五球聚焦链消融组织的自限深度约为10-20μm的潜在优势。我们制造并测试了由300μm红宝石球与眼科组织形成的这种优化结构,离体。持续时间为0.2 mJ和75μs的单个Er:YAG脉冲在角膜上皮中产生了一个,三个和五个球形结构的烧蚀坑,其中球形结构产生的坑深度最小(10μm),而热损伤深度最少(30μm) )。我们显示,将超精密激光烧蚀功能与照明和抽吸工具集成在一起,将生产出具有超精密眼内外科手术多功能功能的单个头盔。

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