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Efficient Prediction and Analysis of Optical Trapping at Nanoscale via Finite Element Tearing and Interconnecting Method

机译:有限元撕裂和互连方法对纳米级光阱的有效预测和分析

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摘要

Numerical simulation plays an important role for the prediction of optical trapping based on plasmonic nano-optical tweezers. However, complicated structures and drastic local field enhancement of plasmonic effects bring great challenges to traditional numerical methods. In this article, an accurate and efficient numerical simulation method based on a dual-primal finite element tearing and interconnecting (FETI-DP) and Maxwell stress tensor is proposed, to calculate the optical force and potential for trapping nanoparticles. A low-rank sparsification approach is introduced to further improve the FETI-DP simulation performance. The proposed method can decompose a large-scale and complex problem into small-scale and simple problems by using non-overlapping domain division and flexible mesh discretization, which exhibits high efficiency and parallelizability. Numerical results show the effectiveness of the proposed method for the prediction and analysis of optical trapping at nanoscale.
机译:数值模拟在基于等离激元纳米光学镊子的光陷阱预测中起着重要作用。然而,复杂的结构和等离子体效应的剧烈局部场增强给传统的数值方法带来了巨大的挑战。本文提出了一种基于双原始有限元撕裂和互连(FETI-DP)和麦克斯韦应力张量的准确高效的数值模拟方法,以计算捕获纳米粒子的光学力和电势。引入了低秩稀疏化方法,以进一步提高FETI-DP仿真性能。该方法通过使用非重叠域划分和柔性网格离散化技术,可以将一个大的复杂问题分解为小规模的简单问题,具有较高的效率和可并行性。数值结果表明,所提出的方法对于纳米级光阱的预测和分析是有效的。

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