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用于单细胞传输与旋转的高阶光纤模式光束参数优化

High-Order Fiber Mode Beam Parameter Optimization for Transport and Rotation of Single Cells.

作者信息

Shan Zihao, Yao Shunnan, Zhang Enfan, Pi Dun, Cao Wen, Lin Feng, Cai Zhen, Wu Xingkun

机构信息

State Key Laboratory of Modern Optical Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, China.

Multiple Myeloma Treatment Center & Bone Marrow Transplantation Center, The First Affiliated Hospital, College of Medicine, Zhejiang University, Hangzhou 310003, China.

出版信息

Micromachines (Basel). 2021 Feb 23;12(2):226. doi: 10.3390/mi12020226.

Abstract

Optical tweezers are becoming increasingly important in biomedical applications for the trapping, propelling, binding, and controlled rotation of biological particles. These capabilities enable applications such as cell surgery, microinjections, organelle extraction and modification, and preimplantation genetic diagnosis. In particular, optical fiber-based tweezers are compact, highly flexible, and can be readily integrated into lab-on-a-chip devices. Taking advantage of the beam structure inherent in high-order modes of propagation in optical fiber, LP, LP, and LP fiber modes can generate structured radial light fields with two or more concentrations in the cross-section of a beam, forming multiple traps for bioparticles with a single optical fiber. In this paper, we report the dynamic modeling and optimization of single cell manipulation with two to six optical traps formed by a single fiber, generated by either spatial light modulation (SLM) or slanted incidence in laser-fiber coupling. In particular, we focus on beam size optimization for arbitrary target cell sizes to enable trapped transport and controlled rotation of a single cell, using a point matching method (PMM) of the T-matrix to compute trapping forces and rotation torque. Finally, we validated these optimized beam sizes experimentally for the LP mode. This work provides a new understanding of optimal optical manipulation using high-order fiber modes at the single-cell level.

摘要

光镊在生物医学应用中对于生物粒子的捕获、推进、结合和受控旋转变得越来越重要。这些能力使得诸如细胞手术、显微注射、细胞器提取与修饰以及植入前基因诊断等应用成为可能。特别是,基于光纤的光镊结构紧凑、高度灵活,并且可以很容易地集成到芯片实验室设备中。利用光纤中高阶传播模式固有的光束结构,LP、LP和LP光纤模式可以在光束横截面上产生具有两个或更多浓度的结构化径向光场,用单根光纤为生物粒子形成多个陷阱。在本文中,我们报告了通过空间光调制(SLM)或激光 - 光纤耦合中的倾斜入射由单根光纤形成的两到六个光阱对单细胞进行操纵的动态建模和优化。特别是,我们专注于针对任意目标细胞大小的光束尺寸优化,以实现单个细胞的捕获运输和受控旋转,使用T矩阵的点匹配方法(PMM)来计算捕获力和旋转扭矩。最后,我们通过实验验证了LP模式下这些优化后的光束尺寸。这项工作为在单细胞水平上使用高阶光纤模式进行最佳光学操纵提供了新的认识。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7faa/7926556/0da1d367f517/micromachines-12-00226-g001.jpg

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