Three-Photon Excitation of InGaN Quantum Dots

Viviana Villafañe, Bianca Scaparra, Manuel Rieger, Stefan Appel, Rahul Trivedi, Tongtong Zhu, John Jarman, Rachel A. Oliver, Robert A. Taylor, Jonathan J. Finley, and Kai Müller
Phys. Rev. Lett. 130, 083602 – Published 23 February 2023

Abstract

We demonstrate that semiconductor quantum dots can be excited efficiently in a resonant three-photon process, while resonant two-photon excitation is highly suppressed. Time-dependent Floquet theory is used to quantify the strength of the multiphoton processes and model the experimental results. The efficiency of these transitions can be drawn directly from parity considerations in the electron and hole wave functions in semiconductor quantum dots. Finally, we exploit this technique to probe intrinsic properties of InGaN quantum dots. In contrast to nonresonant excitation, slow relaxation of charge carriers is avoided, which allows us to measure directly the radiative lifetime of the lowest energy exciton states. Since the emission energy is detuned far from the resonant driving laser field, polarization filtering is not required and emission with a greater degree of linear polarization is observed compared to nonresonant excitation.

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  • Received 18 January 2022
  • Revised 20 April 2022
  • Accepted 27 January 2023

DOI:https://doi.org/10.1103/PhysRevLett.130.083602

© 2023 American Physical Society

Physics Subject Headings (PhySH)

Atomic, Molecular & Optical

Authors & Affiliations

Viviana Villafañe1,*, Bianca Scaparra1,*, Manuel Rieger1, Stefan Appel1, Rahul Trivedi2, Tongtong Zhu3, John Jarman3, Rachel A. Oliver3, Robert A. Taylor4, Jonathan J. Finley1, and Kai Müller1,†

  • 1Walter Schottky Institut and Physik Department, Technische Universität München, Am Coulombwall 4, 85748 Garching, Germany
  • 2Max-Planck-Institute for Quantum Optics, Hans-Kopfermann-Strasse 1, 85748 Garching, Germany
  • 3Department of Materials Science, University of Cambridge, Cambridge, United Kingdom of Great Britain and Northern Ireland
  • 4Department of Physics, Clarendon Laboratory, University of Oxford, Oxford OX1 3PU, United Kingdom

  • *V. V. and B. S. contributed equally to this work.
  • kai.mueller@wsi.tum.de

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Issue

Vol. 130, Iss. 8 — 24 February 2023

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