Double-layer metasurface for enhanced photon up-conversion

arXiv: Optics Pub Date : 2020-12-07 DOI:10.1063/5.0040839
P. Manley, M. Segantini, Doğuşcan Ahiboz, M. Hammerschmidt, G. Arnaoutakis, Rowan W. MacQueen, S. Burger, C. Becker
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引用次数: 9

Abstract

We present a double-layer dielectric metasurface obtained by stacking a silicon nanodisc array and a silicon photonic crystal slab with equal periodicity on top of each other. We focus on the investigation of electric near-field enhancement effects occurring at resonant excitation of the metasurface and study its optical properties numerically and experimentally. We find that the major difference in multi-layer metasurfaces when compared to conventional single-layer structures appears to be in Rayleigh-Wood anomalies: they are split into multiple different modes which are themselves spectrally broadened. As a proof of concept we cover a double-layer metasurface with a lanthanide-doped up-conversion particle layer and study its interaction with a 1550 nm photoexcitation. We observe a 2.7-fold enhancemed up-conversion photoluminescence by using the stacked metasurface instead of a planar substrate, although only around 1% of the up-conversion material is exposed to enhanced near-fields. Two mechanisms are identified explaining this behavior: First, enhanced near-fields when exciting the metasurface resonantly, and second, light trapping by total internal reflection in the particle layer when the metasurface redirects light into high-angle diffraction orders. These results pave the way for low-threshold and, in particular, broadband photon up-conversion in future solar energy and biosensing applications.
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增强光子上转换的双层超表面
本文提出了一种由具有等周期性的硅纳米片阵列和硅光子晶体板叠加而成的双层介电超表面。本文重点研究了超表面共振激发下的电近场增强效应,并对其光学特性进行了数值和实验研究。我们发现,与传统单层结构相比,多层超表面的主要区别似乎在于瑞利-伍德异常:它们被分裂成多个不同的模式,这些模式本身也被频谱拓宽。为了证明这一概念,我们在双层超表面上覆盖了掺杂镧系元素的上转换粒子层,并研究了其与1550 nm光激发的相互作用。通过使用堆叠的超表面而不是平面衬底,我们观察到2.7倍增强的上转换光致发光,尽管只有约1%的上转换材料暴露在增强的近场中。发现了两种机制来解释这种行为:第一,共振激发超表面时增强了近场,第二,当超表面将光重定向到高角度衍射阶时,粒子层中的全内反射捕获了光。这些结果为未来太阳能和生物传感应用中的低阈值,特别是宽带光子上转换铺平了道路。
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