Micro-Instrumentation for Optical Manipulation of Biological Cells with Fine Orientation Control and Low Optical Intensity
Micro-Instrumentation for Optical Manipulation of Biological Cells with Fine Orientation Control and Low Optical Intensity
批准号:
0454324
负责人:
Lih Lin
金额:
$0.0万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-09-15 至 2009-08-31
中文摘要
该奖项是为了开发一种新的仪器,名为“光等离子体镊子”,用于生物细胞的光学操作,具有精细的方向控制和低光强要求。利用光对生物细胞进行无创操作是基础生物学研究的重要工具。光等离子体镊子使用偏振光激发局部表面等离子体共振,其由金属纳米颗粒阵列上的振荡电偶极子的集合组成。这些偶极子的取向平行于光的偏振方向。它们产生一个图案化的辐射电场,通过介电泳相互作用操纵细胞,方向控制取决于光的偏振。由于辐射场的高梯度,可以实现低光强度。微机械偏振控制器也将被制造作为迈向微仪器的第一步。该微偏振控制器有望实现亚毫秒级的响应时间,因此可以实现生物细胞的快速旋转控制。这是一种利用光非侵入性地操纵单个生物细胞的新仪器。这种能力在生物学研究和应用中是重要的。该技术的主要优点是能够通过改变光的偏振方向以高分辨率旋转细胞,这是大多数光学操作方法无法实现的。这种能力打开了大门,建设结构化的生物材料在构建生物膜和人体组织工程的潜在应用。该仪器还将使用微机械加工技术进行小型化,从而具有小的占地面积和低成本。该项目的成功将为生物研究中的光学操纵开辟新的方向。 该项目还将为学生提供进行跨学科研究的宝贵经验。
英文摘要
This award is for developing a new instrument, named "opto-plasmonic tweezers," for optical manipulation of biological cells with fine orientation control and low optical-intensity requirement. Non-invasive manipulation of biological cells with light is an important tool for basic biological research. Opto-plasmonic tweezers use polarized light to excite localized surface-plasmon resonance, which consists of a collection of oscillating electrical dipoles, on a metal nanoparticle array. The orientation of these dipoles is parallel to the polarization direction of the light. They generate a patterned-radiation electric field that manipulates the cells through dielectrophoretic interactions, with orientation control dependent on the polarization of the light. Low optical intensity can be achieved due to the high gradient of the radiation field. A micromachined polarization controller will also be fabricated as the first step towards micro-instrumentation. The micro-polarization controller is expected to achieve sub-millisecond response time and therefore can achieve fast rotation control of the biological cells. This is a new instrument for manipulating single biological cells non-invasively using light. Such capability is important in biological research and applications. A chief virtue of the technology is its ability to rotate the cells with high resolution by changing the polarization direction of the light, which cannot be achieved by most of the optical manipulation approaches. Such capability opens the door to building structured biomaterials for potential applications in constructing biofilms and human tissue engineering. This instrument will also be miniaturized using micromachining technology so that it will have a small footprint and low cost. The success of this project will open up new directions for optical manipulations in biological research. This project will also give students valuable experience in doing interdisciplinary research.
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