Disorder-Engineered Hybrid Plasmonic Cavities for Emission Control of Defects in hBN

Fuente: arXiv
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Main Authors: Genc, Sinan, Yucel, Oguzhan, Aglarci, Furkan, Rodriguez-Fernandez, Carlos, Yilmaz, Alpay, Caglayan, Humeyra, Ates, Serkan, Bek, Alpan
Format: Preprint
Published: 2025
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author Genc, Sinan
Yucel, Oguzhan
Aglarci, Furkan
Rodriguez-Fernandez, Carlos
Yilmaz, Alpay
Caglayan, Humeyra
Ates, Serkan
Bek, Alpan
author_facet Genc, Sinan
Yucel, Oguzhan
Aglarci, Furkan
Rodriguez-Fernandez, Carlos
Yilmaz, Alpay
Caglayan, Humeyra
Ates, Serkan
Bek, Alpan
contents Defect-based quantum emitters in hexagonal boron nitride (hBN) are promising building blocks for scalable quantum photonics due to their stable single-photon emission at room temperature. However, enhancing their emission intensity and controlling the decay dynamics remain significant challenges. This study demonstrates a low-cost, scalable fabrication approach to integrate plasmonic nanocavities with defect-based quantum emitters in hBN nanoflakes. Using the thermal dewetting process, we realize two distinct configurations: stochastic Ag nanoparticles (AgNPs) on hBN flakes and hybrid plasmonic nanocavities formed by AgNPs on top of hBN flakes supported on gold/silicon dioxide (Au/SiO2) substrates. While AgNPs on bare hBN yield up to a two-fold photoluminescence (PL) enhancement with reduced emitter lifetimes, the hybrid nanocavity architecture provides a dramatic, up to 100-fold PL enhancement and improved uniformity across multiple. emitters, all without requiring deterministic positioning. Finite-difference time-domain (FDTD) simulations and time-resolved PL measurements confirm size-dependent control over decay dynamics and cavity-emitter interactions. Our versatile solution overcomes key quantum photonic device development challenges, including material integration, emission intensity optimization, and spectral multiplexity. Future work will explore potential applications in integrated photonic circuits hosting on-chip quantum systems and hBN-based label-free single-molecule detection through such quantum nanoantennas.
format Preprint
id arxiv_https___arxiv_org_abs_2506_14517
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Disorder-Engineered Hybrid Plasmonic Cavities for Emission Control of Defects in hBN
Genc, Sinan
Yucel, Oguzhan
Aglarci, Furkan
Rodriguez-Fernandez, Carlos
Yilmaz, Alpay
Caglayan, Humeyra
Ates, Serkan
Bek, Alpan
Optics
Applied Physics
Quantum Physics
Defect-based quantum emitters in hexagonal boron nitride (hBN) are promising building blocks for scalable quantum photonics due to their stable single-photon emission at room temperature. However, enhancing their emission intensity and controlling the decay dynamics remain significant challenges. This study demonstrates a low-cost, scalable fabrication approach to integrate plasmonic nanocavities with defect-based quantum emitters in hBN nanoflakes. Using the thermal dewetting process, we realize two distinct configurations: stochastic Ag nanoparticles (AgNPs) on hBN flakes and hybrid plasmonic nanocavities formed by AgNPs on top of hBN flakes supported on gold/silicon dioxide (Au/SiO2) substrates. While AgNPs on bare hBN yield up to a two-fold photoluminescence (PL) enhancement with reduced emitter lifetimes, the hybrid nanocavity architecture provides a dramatic, up to 100-fold PL enhancement and improved uniformity across multiple. emitters, all without requiring deterministic positioning. Finite-difference time-domain (FDTD) simulations and time-resolved PL measurements confirm size-dependent control over decay dynamics and cavity-emitter interactions. Our versatile solution overcomes key quantum photonic device development challenges, including material integration, emission intensity optimization, and spectral multiplexity. Future work will explore potential applications in integrated photonic circuits hosting on-chip quantum systems and hBN-based label-free single-molecule detection through such quantum nanoantennas.
title Disorder-Engineered Hybrid Plasmonic Cavities for Emission Control of Defects in hBN
topic Optics
Applied Physics
Quantum Physics
url https://arxiv.org/abs/2506.14517