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Optimization of torque on an optically driven micromotor by manipulation of the index of refraction

机译:通过操纵折射率的操纵光学驱动微电路机上的扭矩优化

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Since the 1970's, the focused laser beam has become a familiar tool to manipulate neutral, dielectric micro-objects. A number of authors, including Higurashi and Gauthier, have described the effects of radiation pressure from laser light on microrotors. Collett, et al. developed a wave, rather than a ray optic, approach in the calculation of such forces on a microrotor for the first time. This paper describes a modification to the design of a laser driven, radiation pressure microrotor, intended to improve the optically generated torque. Employing the wave approach, the electric and magnetic fields in the vicinity of the rotor are calculated using the finite difference time domain (FDTD) method, which takes into account the wave nature of the incident light. Forces are calculated from the application of Maxwell's stress tensor over the surfaces of the rotor. Results indicate a significant increase in torque when the index of refraction of the microrotor is changed from a single value to an inhomogeneous profile. The optical fiber industry has successfully employed a variation in the index of refraction across the cross section of a fiber for the purpose of increasing the efficiency of light transmission. Therefore, it is hoped that various fabrication methods can be utilized for causing desired changes in the index of refraction of an optically driven microrotor. Various profiles of the index of refraction inside a microrotor are considered for optimization of torque. Simulation methodology and results of torque on a microrotor for various profiles of the index of refraction are presented. Guidelines for improvised fabrication of efficient microrotors may then be obtained from these profiles.
机译:自1970年代以来,聚焦激光束已成为操纵中性,介电微对象的熟悉工具。包括Higurashi和Gauthier在内的许多作者描述了辐射压力对微运动器上的激光的影响。 Collett等人。开发了波浪,而不是光学光学,首次在微冲量上计算这种力的方法。本文介绍了对激光驱动的辐射压力微炮的设计的改进,用于改善光学产生的扭矩。采用波路方法,使用有限差分时域(FDTD)方法计算转子附近的电和磁场,这考虑了入射光的波形。从转子表面上的麦克斯韦的应力张量的应用来计算力。结果表明当微仪的折射率从单个值改变到不均匀的轮廓时,扭矩的显着增加。光纤工业已经成功地采用了纤维横截面折射率的变化,以提高光传输效率。因此,希望各种制造方法可用于导致光学驱动的微冲泡率的折射率中的期望变化。考虑微量电机内部折射率的各种曲线被认为用于优化扭矩。介绍了折射率指数的微生体上的微模拟方法和扭矩的结果。然后可以从这些型材中获得简易高效微管的制造指南。

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