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Optical Trapping Force and Sensing Detection Research Based on Optical Fiber Shapes and Transmission Modes

机译:基于光纤形状和传输模式的光诱捕力和传感检测研究

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We consider the relationships between the optical trapping force of fiber optical tweezers and the different optical fiber modes and shapes. It is well known that the different optical fiber transmission modes and shapes can bring great influence to the light transmission. We calculate the radiation field of each model in the circle waveguide by using Huygens Fresnel principle. Then, based on the Maxwell Stress Tensor Integral, we can calculate the optical trapping force by using these radiation fields. Through the calculation and simulation, we explain the reason that the optical trapping force of fundamental mode is greater than the high modes in the case of having same shape of exit end face of a waveguide. At the same time, we explore the relationship between the optical trapping force and the fiber taper angles both in the fundamental mode and high modes. And we can obtain the maximum value of optical trapping force by optimizing the fiber taper angle. Optical fiber waveguides have the potential for integration of several functions including the sensing detection. Our results paved the road for utilizing the optical fiber waveguides in nano optical devices, optical trapping, and sensing.
机译:我们考虑了光纤镊子的光捕获力与不同光纤模式和形状之间的关系。众所周知,不同的光纤传输方式和形状会给光传输带来很大的影响。我们利用惠更斯菲涅耳原理计算了圆形波导中每个模型的辐射场。然后,基于麦克斯韦应力张量积分,我们可以使用这些辐射场来计算光捕获力。通过计算和仿真,我们解释了在具有相同形状的波导的出射端面的情况下,基本模式的光捕获力大于高模式的光捕获力的原因。同时,我们探索了在基本模式和高模式下光捕获力与光纤锥角之间的关系。通过优化光纤锥角,可以获得最大的光捕获力。光纤波导具有整合包括传感检测在内的多种功能的潜力。我们的结果为在纳米光学设备中利用光纤波导,光陷波和传感铺平了道路。

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