Benito David C, Simpson Stephen H, Hanna Simon
H.H. Wills Physics Laboratory, University of Bristol, Tyndall Avenue, Bristol, BS8 1TL, UK.
Opt Express. 2008 Mar 3;16(5):2942-57. doi: 10.1364/oe.16.002942.
We present finite-difference time-domain (FDTD) calculations of the forces and torques on dielectric particles of various shapes, held in one or many Gaussian optical traps, as part of a study of the physical limitations involved in the construction of micro- and nanostructures using a dynamic holographic assembler (DHA). We employ a full 3-dimensional FDTD implementation, which includes a complete treatment of optical anisotropy. The Gaussian beams are sourced using a multipole expansion of a fifth order Davis beam. Force and torques are calculated for pairs of silica spheres in adjacent traps, for silica cylinders trapped by multiple beams and for oblate silica spheroids and calcite spheres in both linearly and circularly polarized beams. Comparisons are drawn between the magnitudes of the optical forces and the Van der Waals forces acting on the systems. The paper also considers the limitations of the FDTD approach when applied to optical trapping.
作为使用动态全息装配器(DHA)构建微米和纳米结构所涉及物理限制研究的一部分,我们展示了对处于一个或多个高斯光学阱中的各种形状介电粒子上的力和扭矩的时域有限差分(FDTD)计算。我们采用完整的三维FDTD实现,其中包括对光学各向异性的完整处理。高斯光束通过五阶戴维斯光束的多极展开来生成。计算了相邻阱中二氧化硅球体对、多束光捕获的二氧化硅圆柱体以及线性和圆偏振光束中的扁长二氧化硅球体和方解石球体的力和扭矩。对作用于系统的光学力和范德华力的大小进行了比较。本文还考虑了将FDTD方法应用于光学捕获时的局限性。