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Tailoring the superradiant and subradiant nature of two coherently coupled quantum emitters

Author

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  • J.-B. Trebbia

    (Univ Bordeaux, LP2N
    Institut d’Optique & CNRS, LP2N)

  • Q. Deplano

    (Univ Bordeaux, LP2N
    Institut d’Optique & CNRS, LP2N)

  • P. Tamarat

    (Univ Bordeaux, LP2N
    Institut d’Optique & CNRS, LP2N)

  • B. Lounis

    (Univ Bordeaux, LP2N
    Institut d’Optique & CNRS, LP2N)

Abstract

The control and manipulation of quantum-entangled states is crucial for the development of quantum technologies. A promising route is to couple solid-state quantum emitters through their optical dipole-dipole interactions. Entanglement in itself is challenging, as it requires both nanometric distances between emitters and nearly degenerate electronic transitions. Here we implement hyperspectral imaging to identify pairs of coupled dibenzanthanthrene molecules, and find distinctive spectral signatures of maximally entangled superradiant and subradiant electronic states by tuning the molecular optical resonances with Stark effect. We demonstrate far-field selective excitation of the long-lived subradiant delocalized state with a laser field tailored in amplitude and phase. Optical nanoscopy of the coupled molecules unveils spatial signatures that result from quantum interferences in their excitation pathways and reveal the location of each emitter. Controlled electronic-states superposition will help deciphering more complex physical or biological mechanisms governed by the coherent coupling and developing quantum information schemes.

Suggested Citation

  • J.-B. Trebbia & Q. Deplano & P. Tamarat & B. Lounis, 2022. "Tailoring the superradiant and subradiant nature of two coherently coupled quantum emitters," Nature Communications, Nature, vol. 13(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:13:y:2022:i:1:d:10.1038_s41467-022-30672-2
    DOI: 10.1038/s41467-022-30672-2
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    References listed on IDEAS

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    1. David Press & Thaddeus D. Ladd & Bingyang Zhang & Yoshihisa Yamamoto, 2008. "Complete quantum control of a single quantum dot spin using ultrafast optical pulses," Nature, Nature, vol. 456(7219), pages 218-221, November.
    2. Elisabetta Collini & Cathy Y. Wong & Krystyna E. Wilk & Paul M. G. Curmi & Paul Brumer & Gregory D. Scholes, 2010. "Coherently wired light-harvesting in photosynthetic marine algae at ambient temperature," Nature, Nature, vol. 463(7281), pages 644-647, February.
    3. Gregory S. Engel & Tessa R. Calhoun & Elizabeth L. Read & Tae-Kyu Ahn & Tomáš Mančal & Yuan-Chung Cheng & Robert E. Blankenship & Graham R. Fleming, 2007. "Evidence for wavelike energy transfer through quantum coherence in photosynthetic systems," Nature, Nature, vol. 446(7137), pages 782-786, April.
    4. J. Hwang & M. Pototschnig & R. Lettow & G. Zumofen & A. Renn & S. Götzinger & V. Sandoghdar, 2009. "A single-molecule optical transistor," Nature, Nature, vol. 460(7251), pages 76-80, July.
    5. Jun Rui & David Wei & Antonio Rubio-Abadal & Simon Hollerith & Johannes Zeiher & Dan M. Stamper-Kurn & Christian Gross & Immanuel Bloch, 2020. "A subradiant optical mirror formed by a single structured atomic layer," Nature, Nature, vol. 583(7816), pages 369-374, July.
    6. Claudio U. Hail & Christian Höller & Korenobu Matsuzaki & Patrik Rohner & Jan Renger & Vahid Sandoghdar & Dimos Poulikakos & Hadi Eghlidi, 2019. "Nanoprinting organic molecules at the quantum level," Nature Communications, Nature, vol. 10(1), pages 1-8, December.
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