Optical Tweezers in Biotechnology

Z. Gong, Yuchao Li
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引用次数: 1

Abstract

Three-dimensional optical manipulation of microparticles, cells, and biomolecules in a noncontact and noninvasive manner is crucial for biophotonic, nanophotonic, and biomedical fields. Optical tweezers, as a standard optical manipulation technique, have some limitations in precise manipulation of micro-objects in microfluidics and in vivo because of their bulky lens system and limited penetration depth. Moreover, when applied for trapping nanoscale objects, especially with sizes smaller than 100 nm, the strength of optical tweezers becomes significantly weak due to the diffraction limit of light. The emerging near-field methods, such as plasmon tweezers and photonic crystal resonators, have enabled surpassing of the diffraction limit. However, these methods msay lead to local heating effects that will damage the biological specimens and reduce the trapping stability. Furthermore, the available near-field techniques rely on complex nanostructures fixed on substrates, which are usually used for 2D manipulation. The optical tweezers are of great potential for the applications including nanostructure assembly, cancer cell sorting, targeted drug delivery, single-molecule studies, and biosensing.
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生物技术中的光学镊子
以非接触和非侵入方式对微粒子、细胞和生物分子进行三维光学操作对于生物光子、纳米光子和生物医学领域至关重要。光学镊子作为一种标准的光学操作技术,由于其透镜系统体积大,穿透深度有限,在微流体和体内的微物体精确操作方面存在一定的局限性。此外,当用于捕获纳米尺度的物体,特别是小于100 nm的物体时,由于光的衍射极限,光镊的强度会变得明显变弱。等离激子镊子和光子晶体谐振器等新出现的近场方法,使超衍射极限成为可能。然而,这些方法可能会导致局部加热效应,从而破坏生物标本并降低捕获稳定性。此外,现有的近场技术依赖于固定在衬底上的复杂纳米结构,通常用于二维操作。光镊在纳米结构组装、癌细胞分选、靶向药物递送、单分子研究和生物传感等方面具有巨大的应用潜力。
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