Exciton Energy Routing via Defect Networks in hBN/2D-Perovskite Hybrids

Fuente: arXiv
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Autori principali: Darbari, Sara, Bittorf, Paul, Multerer, Leon, Chahshouri, Fatemeh, Darman, Parsa, Ruchka, Pavel, Giessen, Harald, Taleb, Masoud, Abdi, Yaser, Talebi, Nahid
Natura: Preprint
Pubblicazione: 2025
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author Darbari, Sara
Bittorf, Paul
Multerer, Leon
Chahshouri, Fatemeh
Darman, Parsa
Ruchka, Pavel
Giessen, Harald
Taleb, Masoud
Abdi, Yaser
Talebi, Nahid
author_facet Darbari, Sara
Bittorf, Paul
Multerer, Leon
Chahshouri, Fatemeh
Darman, Parsa
Ruchka, Pavel
Giessen, Harald
Taleb, Masoud
Abdi, Yaser
Talebi, Nahid
contents Excitons in two dimensional Ruddlesden Popper perovskites (RPPs) exhibit large and tunable binding energies, making them promising candidates for optoelectronic applications. In particular, long-range exciton energy transfer in these materi-als holds potential for light-harvesting technologies and nanoscale interconnects. Here, using cathodoluminescence spectros-copy, we demonstrate that exciton energy can be transferred over ultralong distances, up to 150 micrometers, in heterostructures composed of hexagonal boron nitride (hBN) and RPPs. This transfer is enabled by efficient exciton coupling to defect centers in hBN and subsequent defect defect interactions. This mechanism not only facilitates long-range energy transfer, but also leads to enhanced luminescence intensity, narrower emission linewidths, extended exciton lifetimes, and reduced electron-beam-induced degradation. Owing to the high density of emitters within the hBN layers, the investigated van der Waals heterostructure emerges as a robust and stable hybrid platform. Our findings open promising pathways for room-temperature excitonic devices with enhanced performance, including quantum transducers, light-harvesting systems, and optoelectronic interconnects.
format Preprint
id arxiv_https___arxiv_org_abs_2504_12024
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Exciton Energy Routing via Defect Networks in hBN/2D-Perovskite Hybrids
Darbari, Sara
Bittorf, Paul
Multerer, Leon
Chahshouri, Fatemeh
Darman, Parsa
Ruchka, Pavel
Giessen, Harald
Taleb, Masoud
Abdi, Yaser
Talebi, Nahid
Mesoscale and Nanoscale Physics
Materials Science
Excitons in two dimensional Ruddlesden Popper perovskites (RPPs) exhibit large and tunable binding energies, making them promising candidates for optoelectronic applications. In particular, long-range exciton energy transfer in these materi-als holds potential for light-harvesting technologies and nanoscale interconnects. Here, using cathodoluminescence spectros-copy, we demonstrate that exciton energy can be transferred over ultralong distances, up to 150 micrometers, in heterostructures composed of hexagonal boron nitride (hBN) and RPPs. This transfer is enabled by efficient exciton coupling to defect centers in hBN and subsequent defect defect interactions. This mechanism not only facilitates long-range energy transfer, but also leads to enhanced luminescence intensity, narrower emission linewidths, extended exciton lifetimes, and reduced electron-beam-induced degradation. Owing to the high density of emitters within the hBN layers, the investigated van der Waals heterostructure emerges as a robust and stable hybrid platform. Our findings open promising pathways for room-temperature excitonic devices with enhanced performance, including quantum transducers, light-harvesting systems, and optoelectronic interconnects.
title Exciton Energy Routing via Defect Networks in hBN/2D-Perovskite Hybrids
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2504.12024