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首页> 外文期刊>Physical Review, A >Strongly enhanced and directionally tunable second-harmonic radiation from a plasmonic particle-in-cavity nanoantenna
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Strongly enhanced and directionally tunable second-harmonic radiation from a plasmonic particle-in-cavity nanoantenna

机译:从等离子体粒子腔内纳米腔内强化和定向和定向的第二谐波辐射

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摘要

Second-harmonic (SH) generation is tremendously important for nonlinear sensing, microscopy, and communication systems. One of the great challenges of current designs is to enhance the SH signal and simultaneously tune its radiation direction with a high directivity. In contrast to the linear plasmonic scattering dominated by a bulk dipolar mode, a complex surface-induced multipolar source at the doubled frequency sets a fundamental limit to control the SH radiation from metallic nanostructures. In this work, we harness a plasmonic hybridization mechanism together with a special selection rule governing the SH radiation to achieve the high-intensity and tunable-direction emission by a metallic particle-in-cavity nanoantenna (PIC-NA). The nanoantenna is modelled with a first-principle, self-consistent boundary element method, which considers the depletion of pump waves. The giant SH enhancement arises from a hybridized gap plasmon resonance between the small particle and the large cavity that functions as a concentrator and reflector. Centrosymmetry breaking of the PIC-NA not only modifies the gap plasmon mode boosting the SH signal, but also redirects the SH wave with a unidirectional emission. The PIC-NA has a significantly larger SH conversion efficiency compared to existing literature. The main beam of the radiation pattern can be steered over a wide angle by tuning the particle's position.
机译:对非线性感测,显微镜和通信系统具有第二次谐波(SH)的产生。当前设计的巨大挑战之一是增强SH信号,并以高方向性同时调整其辐射方向。与由散装偶极模式支配的线性等离子体散射相反,双倍频率的复杂表面诱导的多极源设置了基本限制以控制来自金属纳米结构的SH辐射。在这项工作中,我们将等离子体杂交机制与用于SH辐射的特殊选择规则一起利用,以实现金属颗粒纳米南非奈纳(PIC-NA)的高强度和可调方向发射。纳米南纳以第一原理自我一致的边界元素建模,其考虑泵波的耗尽。巨大的SH增强来自小颗粒和用作浓缩器和反射器的大腔之间的杂交间隙等离子体共振。 CentroSymmetry Breaking PIC-NA不仅修改了助推SH信号的差距等离子体模式,而且还将SH波带重定向,具有单向排放。与现有文献相比,PIC-NA具有明显更大的SH转换效率。通过调谐粒子的位置,可以通过宽角度转向辐射图案的主束。

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