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首页> 外文期刊>IEEE Antennas & Propagation Magazine >Modeling Electromagnetic Wave Phenomena in Large Quantum Systems: Formulation and Computational Costs
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Modeling Electromagnetic Wave Phenomena in Large Quantum Systems: Formulation and Computational Costs

机译:大量系统中的电磁波现象建模:配方和计算成本

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摘要

The quantum framework of the time-dependent density functional theory (TDDFT) for analyzing nanostructured devices is reviewed, and alternative methods for incorporating induced electromagnetic fields into the theory are discussed. To capture the retardation effects in larger electronic structures, the TDDFT equations can be formulated by applying the Lorenz gauge-fixing condition to the induced scalar and vector potentials (analogous to macroscopic formulations used in antenna theory). Evaluating the retarded potentials via radiation integrals, however, rapidly becomes the computational bottleneck within the TDDFT time-marching framework if done in a brute-force manner. This article demonstrates that 3D space or 4D space-time fast Fourier transform (FFT) schemes can be adopted to accelerate these computations and reduce the costs of evaluating the potentials below the typical computational bottleneck of TDDFT. Thus, FFT-accelerated Lorenz gauge retarded potentials become an attractive candidate for replacing the conventionally used electrostatic-induced scalar potential within TDDFT.
机译:综述了用于分析纳米结构装置的时间依赖性密度功能理论(TDDFT)的量子框架,并讨论了将诱导电磁场掺入该理论中的替代方法。为了在较大的电子结构中捕获延迟效果,可以通过将Lorenz仪表固定条件施加到诱导的标量和矢量电位(类似于天线理论中使用的宏观制剂)来配制TDDFT方程。然而,通过辐射积分评估延迟电位,如果以暴力方式完成,则在TDDFT时间行动框架内快速变为计算瓶颈。本文展示了3D空间或4D时空快速傅里叶变换(FFT)方案可以加速这些计算,并降低评估TDDFT的典型计算瓶颈低于典型计算瓶颈的潜力的成本。因此,FFT加速的Lorenz规格延迟电位成为替换TDDFT内的常规使用的静电诱导的标量电位的有吸引力的候选者。

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