Strong coupling between RF photons and plasmons of electrons on liquid helium

Plasmons, arising from the collective motion of electrons, can interact strongly with electromagnetic fields or photons; this capability has been exploited across a broad range of applications, from chemical reactivity to biosensing. Recently, there has been growing interest in plasmons for applications in quantum information processing. Electrons floating on liquid helium provide an exceptionally clean, disorder-free system and have emerged as a promising platform for this purpose. In this work, we establish this system as a tunable plasmon-photon hybrid platform. We demonstrate strong coupling between floating-electron plasmons and radio-frequency (RF) photons confined in an LC resonator. Time-resolved measurements reveal coherent oscillatory energy exchange between the plasmonic and photonic modes, providing direct evidence of their coherent coupling. These results represent a step towards cavity quantum electrodynamics with a floating-electron plasmon coupled to a resonator. Furthermore, the LC resonator serves as a sensitive probe of electron-on-helium physics, enabling the observation of the Wigner crystal transition and a quantitative study of the temperature-dependent plasmon decay arising from ripplon-induced scattering. Strong plasmon-photon coupling enables applications in plasmonics quantum technologies, yet dissipation is still a strong limitation. Here, the authors demonstrate a hybrid electron-on-Helium system where plasmons are strongly coupled to photons within an LC resonating circuit. This provides practical advantages and insight into Wigner crystal transitions and plasmon decay.

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Publication Details

Journal
Nature Communications
Published
2026-09-10
DOI
https://doi.org/10.1038/s41467-026-77527-8
Primary Topic
Quantum, superfluid, helium dynamics
Type
article
Field-Weighted Citation Impact
0.00
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article

Strong coupling between RF photons and plasmons of electrons on liquid helium

Erika Kawakami, Ivan Grytsenko, Oleksiy Rybalko, Itay Josef Barabash et al.
Nature Communications
Quantum, superfluid, helium dynamics
article

Strong coupling between RF photons and plasmons of electrons on liquid helium

Erika Kawakami, Ivan Grytsenko, Oleksiy Rybalko, Itay Josef Barabash, Yiran Tian, Asher Jennings, Hiroki Ikegami, Thomas Giovansili, Jun Wang
article en

Abstract

Plasmons, arising from the collective motion of electrons, can interact strongly with electromagnetic fields or photons; this capability has been exploited across a broad range of applications, from chemical reactivity to biosensing. Recently, there has been growing interest in plasmons for applications in quantum information processing. Electrons floating on liquid helium provide an exceptionally clean, disorder-free system and have emerged as a promising platform for this purpose. In this work, we establish this system as a tunable plasmon-photon hybrid platform. We demonstrate strong coupling between floating-electron plasmons and radio-frequency (RF) photons confined in an LC resonator. Time-resolved measurements reveal coherent oscillatory energy exchange between the plasmonic and photonic modes, providing direct evidence of their coherent coupling. These results represent a step towards cavity quantum electrodynamics with a floating-electron plasmon coupled to a resonator. Furthermore, the LC resonator serves as a sensitive probe of electron-on-helium physics, enabling the observation of the Wigner crystal transition and a quantitative study of the temperature-dependent plasmon decay arising from ripplon-induced scattering. Strong plasmon-photon coupling enables applications in plasmonics quantum technologies, yet dissipation is still a strong limitation. Here, the authors demonstrate a hybrid electron-on-Helium system where plasmons are strongly coupled to photons within an LC resonating circuit. This provides practical advantages and insight into Wigner crystal transitions and plasmon decay.

Nature Communications
Pioneer (United States) (US), École Polytechnique (FR), Chinese Academy of Sciences (CN), Kazan Federal University (RU), RIKEN (JP), B. Verkin Institute for Low Temperature Physics and Engineering of the National Academy of Sciences of Ukraine (UA), Laboratoire d'Informatique de l'École Polytechnique (FR), Institute of Physics (CN), RIKEN Center for Advanced Photonics (JP), McGill University (CA)
Openalex Percentile: Top 89%
Quantum, superfluid, helium dynamics
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