Liang Yansheng, Lei Ming, Yan Shaohui, Li Manman, Cai Yanan, Wang Zhaojun, Yu Xianghua, Yao Baoli
Appl Opt. 2018 Jan 1;57(1):79-84. doi: 10.1364/AO.57.000079.
Low-refractive-index microparticles, such as hollow microspheres, have shown great significance in some applications, such as biomedical sensing and targeted drug delivery. However, optical trapping and manipulation of low-refractive-index microparticles are challenging, owing to the repelling force exerted by typical optical traps. In this paper, we demonstrated optical trapping and rotating of large-sized low-refractive-index microparticles by using quasi-perfect optical vortex (quasi-POV) beams, which were generated by Fourier transform of high-order quasi-Bessel beams. Numerical simulation was carried out to characterize the focusing property of the quasi-POV beams. The dynamics of low-refractive-index microparticles in the quasi-POV with various topological charges was investigated in detail. To improve the trapping and rotating performances of the vortex, a point trap was introduced at the center of the ring. Experimental results showed that the quasi-POV was preferable for manipulation of large-sized low-refractive-index microparticles, with its control of the particles' rotating velocity dependent only on the topological charge due to the unchanged orbital radius.
低折射率微粒,如空心微球,在生物医学传感和靶向药物递送等一些应用中已显示出重大意义。然而,由于典型光阱施加的排斥力,对低折射率微粒进行光阱捕获和操控具有挑战性。在本文中,我们展示了利用高阶准贝塞尔光束的傅里叶变换产生的准完美光学涡旋(quasi-POV)光束对大尺寸低折射率微粒进行光阱捕获和旋转。进行了数值模拟以表征准POV光束的聚焦特性。详细研究了具有不同拓扑电荷的准POV中低折射率微粒的动力学。为了提高涡旋的捕获和旋转性能,在环的中心引入了一个点阱。实验结果表明,准POV对于大尺寸低折射率微粒的操控是优选的,由于轨道半径不变,其对微粒旋转速度的控制仅取决于拓扑电荷。