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Optics tweezers for trapping in a microfluidic environment

机译:光学镊子用于捕获微流体环境

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摘要

Optical tweezers use the force from a light beam to implement a precise gripping tool. Based purely on an optical principle, it works without any bodily contact with the object. In this paper we describe an optical tweezers that targets an application within the framework of nuclear magnetic resonance (NMR) spectroscopy of small objects, which are embedded inside a microfluidic channel that will be integrated in a micro-NMR detector. In the project's final stages, the whole system will be installed within the wide bore of a superconducting magnet. The aim is to precisely maintain the position of the object to be measured, without the use of susceptibility disturbing materials or geometries. In this contribution we focus on the design and construction of the tweezers. For the optical force simulation of the system we used a geometrical optics approach, which we combined with a ray fan description of the output beam of an optical system. By embedding both techniques within an iterative design process, we were able to design efficient optical tweezers that met the numerous constraints. Based on details of the constraints and requirements given by the application, different system concepts were derived and studied. Next, a highly adapted and efficient optical trapping system was designed and manufactured. After the components were characterized using vertical scanning interferometry, the system was assembled to achieve a monolithic optical component. The proper function of the optical tweezers was successfully tested by optical trapping of fused silica particles. (C) 2018 Optical Society of America
机译:光学镊子使用来自光束的力来实现精确的抓握工具。纯粹基于光学原理,它有效地与物体有任何身体接触。在本文中,我们描述了一种靶向核磁共振(NMR)光谱框架内的应用的光学镊子,其嵌入在微流体通道内部将集成在微型NMR检测器中。在项目的最终阶段,整个系统将安装在超导磁铁的宽孔内。目的是精确地维持要测量的物体的位置,而不使用易感性扰乱材料或几何形状。在这一贡献中,我们专注于镊子的设计和建设。对于系统的光力模拟,我们使用了一种几何光学方法,我们与光学系统的输出光束的光线风扇描述相结合。通过在迭代设计过程中嵌入两种技术,我们能够设计符合众多限制的高效光学镊子。基于应用程序给出的约束和要求的细节,派生和研究了不同的系统概念。接下来,设计和制造高度适应和高效的光学诱捕系统。在使用垂直扫描干涉法表征组件之后,组装系统以实现整体光学组件。通过熔融二氧化硅颗粒的光学捕获成功地测试了光学镊子的适当功能。 (c)2018年光学学会

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  • 来源
    《Applied optics》 |2018年第20期|共10页
  • 作者单位

    Voxalytic GmbH Rosengarten 3 D-76228 Karlsruhe Germany;

    Tech Univ Ilmenau IMN MacroNano Fachgebiet Tech Opt POB 100565 D-98684 Ilmenau Germany;

    Karlsruhe Inst Technol Inst Microstruct Technol Hermann von Helmholtz Pl 1 D-76344 Eggenstein Leopoldshafen Germany;

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  • 正文语种 eng
  • 中图分类 应用;
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