On chip plasmonic slit cavity platform for room temperature strong coupling with deterministically positioned colloidal quantum dots

Fuente: arXiv
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Autori principali: Qin, Jin, Schurr, Benedikt, Pertsch, Patrick, Friedrich, Daniel, Knopf, Max, Asgarnezhad-Zorgabad, Saeid, Meschede, Lars, Clarke, Daniel D. A., Emmerling, Monika, Podhorodecki, Artur, Hess, Ortwin, Hecht, Bert
Natura: Preprint
Pubblicazione: 2025
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author Qin, Jin
Schurr, Benedikt
Pertsch, Patrick
Friedrich, Daniel
Knopf, Max
Asgarnezhad-Zorgabad, Saeid
Meschede, Lars
Clarke, Daniel D. A.
Emmerling, Monika
Podhorodecki, Artur
Hess, Ortwin
Hecht, Bert
author_facet Qin, Jin
Schurr, Benedikt
Pertsch, Patrick
Friedrich, Daniel
Knopf, Max
Asgarnezhad-Zorgabad, Saeid
Meschede, Lars
Clarke, Daniel D. A.
Emmerling, Monika
Podhorodecki, Artur
Hess, Ortwin
Hecht, Bert
contents Strong coupling between quantum emitters and optical cavities is essential for quantum information processing, high-purity single-photon sources, and nonlinear quantum devices. Achieving this regime at room temperature in a compact, deterministic on-chip platform-critical for integration with nanoelectronic circuitry and scalable device architectures-remains a major challenge, mainly due to the difficulty of fabricating cavities with ultra-small mode volumes and precisely positioning quantum emitters. Here, we demonstrate a robust quantum plasmonic device in which colloidal quantum dots (Qdots) are strongly coupled to plasmonic slit cavities using a dielectrophoresis-based positioning technique with real-time photoluminescence (PL) feedback, providing directly resolvable coupled structures that enable parallel device fabrication and straightforward integration with additional optical elements such as waveguides. Our measurements reveal clear PL resolved Rabi splitting at room temperature with pre characterized cavities, with variations across devices that scale with the average number of coupled Qdots. While electrical tuning via the quantum-confined Stark effect is enabled by integrated electrodes, its impact is largely overshadowed by room-temperature spectral diffusion. Our results pave the way for scalable, electrically tunable quantum plasmonic platforms, offering new opportunities for integrated quantum photonic circuits, active light-matter interactions, and room-temperature quantum technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2510_27531
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle On chip plasmonic slit cavity platform for room temperature strong coupling with deterministically positioned colloidal quantum dots
Qin, Jin
Schurr, Benedikt
Pertsch, Patrick
Friedrich, Daniel
Knopf, Max
Asgarnezhad-Zorgabad, Saeid
Meschede, Lars
Clarke, Daniel D. A.
Emmerling, Monika
Podhorodecki, Artur
Hess, Ortwin
Hecht, Bert
Optics
Strong coupling between quantum emitters and optical cavities is essential for quantum information processing, high-purity single-photon sources, and nonlinear quantum devices. Achieving this regime at room temperature in a compact, deterministic on-chip platform-critical for integration with nanoelectronic circuitry and scalable device architectures-remains a major challenge, mainly due to the difficulty of fabricating cavities with ultra-small mode volumes and precisely positioning quantum emitters. Here, we demonstrate a robust quantum plasmonic device in which colloidal quantum dots (Qdots) are strongly coupled to plasmonic slit cavities using a dielectrophoresis-based positioning technique with real-time photoluminescence (PL) feedback, providing directly resolvable coupled structures that enable parallel device fabrication and straightforward integration with additional optical elements such as waveguides. Our measurements reveal clear PL resolved Rabi splitting at room temperature with pre characterized cavities, with variations across devices that scale with the average number of coupled Qdots. While electrical tuning via the quantum-confined Stark effect is enabled by integrated electrodes, its impact is largely overshadowed by room-temperature spectral diffusion. Our results pave the way for scalable, electrically tunable quantum plasmonic platforms, offering new opportunities for integrated quantum photonic circuits, active light-matter interactions, and room-temperature quantum technologies.
title On chip plasmonic slit cavity platform for room temperature strong coupling with deterministically positioned colloidal quantum dots
topic Optics
url https://arxiv.org/abs/2510.27531