稳定等离子体增强谐波产生的确定性纳米天线阵列设计。

Nanophotonics (Berlin, Germany) Pub Date : 2022-10-24 eCollection Date: 2023-02-01 DOI:10.1515/nanoph-2022-0365
Tae-In Jeong, Dong Kyo Oh, San Kim, Jongkyoon Park, Yeseul Kim, Jungho Mun, Kyujung Kim, Soo Hoon Chew, Junsuk Rho, Seungchul Kim
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引用次数: 0

摘要

由于等离子体纳米天线具有在纳米尺度上限制光场的能力,因此在非线性光学过程中得到了广泛的研究。在谐波产生中,为了有效地增强谐波发射,通常采用纳米天线阵列结构来增加发射体的数量。由于纳米天线阵列上的小激光聚焦光斑与入射激光强度呈非线性关系,从而使谐波产率最大化。然而,由于光束的高斯强度分布,位于聚焦光束边界的纳米天线的非线性产率与位于聚焦光束中心的纳米天线的非线性产率有明显的偏差。当侧束位置不稳定时,这种空间光束的不均匀性会导致发射谐波的功率不稳定,这是我们在等离子体增强三次谐波产生(THG)中观察到的。因此,我们提出了一种确定性设计纳米天线阵列密度的方法,以减少光束位置相关的THG产率的不稳定性。该方法通过降低位于波束边界的模糊纳米天线数与波束直径内的纳米天线总数之比来提高等离子体增强的THG稳定性,我们称之为模糊比(ROA)。我们发现,所测等离子体THG产率增强的变异系数随ROA的增大而减小。因此,我们的方法有利于设计可靠的传感器或由纳米天线阵列组成的非线性光学器件来增强输出信号。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deterministic nanoantenna array design for stable plasmon-enhanced harmonic generation.

Plasmonic nanoantennas have been extensively explored to boost nonlinear optical processes due to their capabilities to confine optical fields on the nanoscale. In harmonic generation, nanoantenna array architectures are often employed to increase the number of emitters in order to efficiently enhance the harmonic emission. A small laser focus spot on the nanoantenna array maximizes the harmonic yield since it scales nonlinearly with the incident laser intensity. However, the nonlinear yield of the nanoantennas lying at the boundary of a focused beam may exhibit significant deviations in comparison to those at the center of the beam due to the Gaussian intensity distribution of the beam. This spatial beam inhomogeneity can cause power instability of the emitted harmonics when the lateral beam position is not stable which we observed in plasmon-enhanced third-harmonic generation (THG). Hence, we propose a method for deterministically designing the density of a nanoantenna array to decrease the instability of the beam position-dependent THG yield. This method is based on reducing the ratio between the number of ambiguous nanoantennas located at the beam boundary and the total number of nanoantennas within the beam diameter to increase the plasmon-enhanced THG stability, which we term as the ratio of ambiguity (ROA). We find that the coefficient of variation of the measured plasmonic THG yield enhancement decreases with the ROA. Thus, our method is beneficial for designing reliable sensors or nonlinear optical devices consisting of nanoantenna arrays for enhancing output signals.

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