Summers Michael D, Dear Richard D, Taylor Jonathan M, Ritchie Grant A D
Department of Chemistry, PTCL, University of Oxford, Oxford, UK.
Opt Express. 2012 Jan 16;20(2):1001-12. doi: 10.1364/OE.20.001001.
We present a study of optically bound matter formation in a counter-propagating evanescent field, exploiting total internal reflection on a prism surface. Small ensembles of silica microspheres are assembled in a controlled manner using optical tweezers. The structures and dynamics of the resulting optically bound chains are interpreted using a simulation implementing generalized Lorentz-Mie theory. In particular, we observe enhancement of the scattering force along the propagation direction of the optically bound colloidal chains leading to a microscopic analogue of a driven pendulum which, at least superficially, resembles Newton's cradle.
我们展示了一项关于在反向传播的倏逝场中形成光学束缚物质的研究,利用棱镜表面的全内反射。使用光镊以可控方式组装二氧化硅微球的小集合体。利用实施广义洛伦兹 - 米氏理论的模拟来解释所得光学束缚链的结构和动力学。特别地,我们观察到沿着光学束缚胶体链传播方向的散射力增强,导致一种微观上类似于受驱摆的现象,至少表面上类似于牛顿摆。