Double-layer metasurface for enhanced photon up-conversion

We present a double-layer dielectric metasurface obtained by stacking a silicon nanodisk 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...

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Main Authors: Phillip Manley, Michele Segantini, Doguscan Ahiboz, Martin Hammerschmidt, Georgios Arnaoutakis, Rowan W. MacQueen, Sven Burger, Christiane Becker
Format: Article
Language:English
Published: AIP Publishing LLC 2021-03-01
Series:APL Photonics
Online Access:http://dx.doi.org/10.1063/5.0040839
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spelling doaj-ae2921e4bd99430aa718f3432c70eaa22021-04-02T15:43:26ZengAIP Publishing LLCAPL Photonics2378-09672021-03-0163036103036103-1110.1063/5.0040839Double-layer metasurface for enhanced photon up-conversionPhillip Manley0Michele Segantini1Doguscan Ahiboz2Martin Hammerschmidt3Georgios Arnaoutakis4Rowan W. MacQueen5Sven Burger6Christiane Becker7Helmholtz Zentrum Berlin für Materialien und Energie, Department Optics for Solar Energy, Hahn-Meitner-Platz 1, Berlin 14109, GermanyHelmholtz Zentrum Berlin für Materialien und Energie, Department Spins in Energy Conversion and Quantum Information Science, Hahn-Meitner-Platz 1, Berlin 14109, GermanyHelmholtz Zentrum Berlin für Materialien und Energie, Department Optics for Solar Energy, Hahn-Meitner-Platz 1, Berlin 14109, GermanyJCMwave GmbH, Bolivarallee 22, Berlin 14050, GermanyDepartment of Solar Energy and Environmental Physics, The Jacob Blaustein Institutes for Desert Research, Ben-Gurion University of the Negev, Sede Boqer Campus, Be’er Sheva 8499000, IsraelHelmholtz Zentrum Berlin für Materialien und Energie, Department Spins in Energy Conversion and Quantum Information Science, Hahn-Meitner-Platz 1, Berlin 14109, GermanyDepartment of Modelling and Simulation of Complex Processes, Zuse Institute Berlin, Takustraße 7, Berlin 14195, GermanyHelmholtz Zentrum Berlin für Materialien und Energie, Department Optics for Solar Energy, Hahn-Meitner-Platz 1, Berlin 14109, GermanyWe present a double-layer dielectric metasurface obtained by stacking a silicon nanodisk 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 enhanced 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.http://dx.doi.org/10.1063/5.0040839
collection DOAJ
language English
format Article
sources DOAJ
author Phillip Manley
Michele Segantini
Doguscan Ahiboz
Martin Hammerschmidt
Georgios Arnaoutakis
Rowan W. MacQueen
Sven Burger
Christiane Becker
spellingShingle Phillip Manley
Michele Segantini
Doguscan Ahiboz
Martin Hammerschmidt
Georgios Arnaoutakis
Rowan W. MacQueen
Sven Burger
Christiane Becker
Double-layer metasurface for enhanced photon up-conversion
APL Photonics
author_facet Phillip Manley
Michele Segantini
Doguscan Ahiboz
Martin Hammerschmidt
Georgios Arnaoutakis
Rowan W. MacQueen
Sven Burger
Christiane Becker
author_sort Phillip Manley
title Double-layer metasurface for enhanced photon up-conversion
title_short Double-layer metasurface for enhanced photon up-conversion
title_full Double-layer metasurface for enhanced photon up-conversion
title_fullStr Double-layer metasurface for enhanced photon up-conversion
title_full_unstemmed Double-layer metasurface for enhanced photon up-conversion
title_sort double-layer metasurface for enhanced photon up-conversion
publisher AIP Publishing LLC
series APL Photonics
issn 2378-0967
publishDate 2021-03-01
description We present a double-layer dielectric metasurface obtained by stacking a silicon nanodisk 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 enhanced 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.
url http://dx.doi.org/10.1063/5.0040839
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