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Accurate Computation of Electric Field Enhancement Factors for Metallic Nanoparticles Using the Discrete Dipole Approximation

机译:使用离散偶极子近似精确计算金属纳米粒子的电场增强因子

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We model the response of nanoscale Ag prolate spheroids to an external uniform static electric field using simulations based on the discrete dipole approximation, in which the spheroid is represented as a collection of polarizable subunits. We compare the results of simulations that employ subunit polarizabilities derived from the Clausius–Mossotti relation with those of simulations that employ polarizabilities that include a local environmental correction for subunits near the spheroid’s surface [Rahmani et al. Opt Lett 27: 2118 (2002)]. The simulations that employ corrected polarizabilities give predictions in very good agreement with exact results obtained by solving Laplace’s equation. In contrast, simulations that employ uncorrected Clausius–Mossotti polarizabilities substantially underestimate the extent of the electric field “hot spot” near the spheroid’s sharp tip, and give predictions for the field enhancement factor near the tip that are 30 to 50% too small.
机译:我们使用基于离散偶极近似的模拟对纳米级Ag扁长球体的响应进行建模,其中,球体表示为可极化亚基的集合。我们将采用从Clausius-Mossotti关系得出的亚基极化率的仿真结果与采用包括对球体表面附近的亚基进行局部环境校正的极化率的仿真结果进行比较[Rahmani等。 Opt Lett 27:2118(2002)]。采用校正的极化率的模拟给出的预测与通过求解拉普拉斯方程获得的精确结果非常吻合。相比之下,采用未经校正的克劳修斯-莫索蒂极化率的模拟则大大低估了球体尖锐尖端附近的电场“热点”的程度,并且对尖端附近的场增强因子的预测太小了30%至50%。

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