Enhanced and directional light emission from two-dimensional excitons using Mie voids

Fuente: arXiv
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Main Authors: Sarbajna, Avishek, Ghimire, Ganesh, Breev, Ilia, Zambrana-Puyalto, Xavier, Xiang, Cheng, Huck, Alexander, Booth, Timothy J., Raza, Søren
Format: Preprint
Published: 2025
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author Sarbajna, Avishek
Ghimire, Ganesh
Breev, Ilia
Zambrana-Puyalto, Xavier
Xiang, Cheng
Huck, Alexander
Booth, Timothy J.
Raza, Søren
author_facet Sarbajna, Avishek
Ghimire, Ganesh
Breev, Ilia
Zambrana-Puyalto, Xavier
Xiang, Cheng
Huck, Alexander
Booth, Timothy J.
Raza, Søren
contents Controlling light emission at the nanoscale has important applications in solid-state lighting, displays, and quantum light sources. Achieving this control requires both enhanced local electromagnetic fields to boost emission intensity and engineered radiation patterns to direct photons efficiently. Mie voids, consisting of an air cavity surrounded by a high-index semiconductor, are particularly suited for this purpose because they expose their strongest fields in an accessible region for nearby emitters while supporting resonances that shape directional emission through interference. Here, we demonstrate an all-van der Waals nanophotonic platform that couples excitons in atomically thin WS$_2$ to Mie void resonators formed in WSe$_2$. Guided by electromagnetic simulations, we identify void geometries that maximize photoluminescence through synergistic enhancement of excitation and emission processes. We also develop a two-step fabrication strategy that enables independent control of void diameter and depth, providing a route to systematically tune the optical response. Experimentally, we observe up to a 600-fold increase in photoluminescence intensity from monolayer WS$_2$ placed on individual voids compared to on an unstructured WSe$_2$, along with pronounced out-of-plane beaming of light that yields a forward-to-off-axis enhancement of 2.6 dB. Our results establish Mie voids in van der Waals semiconductors as a new platform for controlling light-matter interactions and realizing compact, directional, and efficient nanoscale light sources.
format Preprint
id arxiv_https___arxiv_org_abs_2512_17546
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Enhanced and directional light emission from two-dimensional excitons using Mie voids
Sarbajna, Avishek
Ghimire, Ganesh
Breev, Ilia
Zambrana-Puyalto, Xavier
Xiang, Cheng
Huck, Alexander
Booth, Timothy J.
Raza, Søren
Optics
Mesoscale and Nanoscale Physics
Controlling light emission at the nanoscale has important applications in solid-state lighting, displays, and quantum light sources. Achieving this control requires both enhanced local electromagnetic fields to boost emission intensity and engineered radiation patterns to direct photons efficiently. Mie voids, consisting of an air cavity surrounded by a high-index semiconductor, are particularly suited for this purpose because they expose their strongest fields in an accessible region for nearby emitters while supporting resonances that shape directional emission through interference. Here, we demonstrate an all-van der Waals nanophotonic platform that couples excitons in atomically thin WS$_2$ to Mie void resonators formed in WSe$_2$. Guided by electromagnetic simulations, we identify void geometries that maximize photoluminescence through synergistic enhancement of excitation and emission processes. We also develop a two-step fabrication strategy that enables independent control of void diameter and depth, providing a route to systematically tune the optical response. Experimentally, we observe up to a 600-fold increase in photoluminescence intensity from monolayer WS$_2$ placed on individual voids compared to on an unstructured WSe$_2$, along with pronounced out-of-plane beaming of light that yields a forward-to-off-axis enhancement of 2.6 dB. Our results establish Mie voids in van der Waals semiconductors as a new platform for controlling light-matter interactions and realizing compact, directional, and efficient nanoscale light sources.
title Enhanced and directional light emission from two-dimensional excitons using Mie voids
topic Optics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2512.17546