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Efficient optimization of nanoplasmonic devices using space mapping

机译:使用空间映射有效优化纳米升音装置

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We show that the space-mapping algorithm, originally developed for microwave circuit optimization, can enable the efficient optimization of nanoplasmonic devices. Space-mapping utilizes a physics-based coarse model to approximate a fine model accurately describing a device. The main concept in the algorithm is to find a mapping that relates the fine and coarse model parameters. If such a mapping is established, we can then avoid using the direct optimization of the computationally expensive fine model to find the optimal solution. Instead, we perform optimization of the computationally efficient coarse model to find its optimal solution, and then use the mapping to find an estimate of the fine model optimal. In this paper, we demonstrate the use of the space mapping algorithm for the optimization of metal dielectric- metal plasmonic waveguide devices. In our case, the fine model is a full-wave finite-difference frequency domain (FDFD) simulation of the device, while the coarse model is based on the characteristic impedance and transmission line theory. We show that, if we simply use the coarse model to optimize the structure without space mapping, the response of the structure obtained substantially deviates from the target response. On the other hand, using space mapping we obtain structures which match very well the target response. In addition, full-wave FDFD simulations of only a few candidate structures are required before the optimal solution is reached. In comparison, a direct optimization using the fine FDFD model in combination with a genetic algorithm requires thousands of full-wave FDFD simulations to reach the same optimal.
机译:我们表明,最初为微波电路优化开发的空间映射算法,可以实现纳米升性器件的有效优化。空间映射利用基于物理的粗略模型来近似精确描述设备的精细模型。算法中的主要概念是找到与粗略模型参数相关的映射。如果建立这样的映射,我们可以避免使用直接优化计算昂贵的精细模型来找到最佳解决方案。相反,我们执行计算有效的粗略模型的优化,以找到其最佳解决方案,然后使用映射来查找优化的微型模型的估计。在本文中,我们展示了空间映射算法来优化金属介质 - 金属等离子体波导装置。在我们的情况下,精细模型是设备的全波有限差分频域(FDFD)模拟,而粗略模型基于特征阻抗和传输线理论。我们表明,如果我们只使用粗略模型来优化没有空间映射的结构,则所获得的结构的响应基本偏离目标响应。另一方面,使用空间映射我们获得匹配目标响应非常匹配的结构。此外,在达到最佳解决方案之前只需要几个候选结构的全波FDFD模拟。相比之下,使用Fine FDFD模型与遗传算法组合使用的直接优化需要数千个全波FDFD模拟以达到相同的最佳。

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