How to Read Out the Phonon Number Statistics via Resonance Fluorescence Spectroscopy of a Single‐Photon Emitter

Author:

Groll Daniel1ORCID,Paschen Fabian1,Machnikowski Paweł2ORCID,Hess Ortwin34ORCID,Wigger Daniel3ORCID,Kuhn Tilmann1ORCID

Affiliation:

1. Institute of Solid State Theory University of Münster 48149 Münster Germany

2. Institute of Theoretical Physics Wrocław University of Science and Technology Wrocław 50‐370 Poland

3. School of Physics Trinity College Dublin Dublin 2 D02PN40 Ireland

4. CRANN Institute and Advanced Materials and Bioengineering Research (AMBER) Trinity College Dublin Dublin 2 D02PN40 Ireland

Abstract

AbstractIn today's development of quantum technologies a hybrid integration of phononic excitations becomes increasingly attractive. As natural quasi‐particle excitations in solid state systems, phonons couple to virtually any other excitation and therefore constitute a useful interaction channel between different building blocks in hybrid quantum systems. This work explores how the efficient light‐scattering properties of a single‐photon emitter and the appearance of characteristic sidebands in resonance fluorescence spectra, when interfaced with an arbitrary phonon quantum state, can be utilized for acousto‐optical transduction. Within reasonable approximations, an analytical description for the optical spectra in the low excitation limit is developed which can be used to read the number statistics of the initial phonon state from a given spectrum. It is shown that the readout is faulty in situations where relevant resonant transitions are forbidden due to vanishing Franck–Condon factors, especially when considering spectra with a noisy background. Two possible solutions to this problem are presented: (A) changing the detuning of the laser relative to the single‐photon emitter which modifies the relevant resonant transitions, or (B) increasing dissipation of the single‐photon emitter to promote off‐resonant transitions.

Funder

Science Foundation Ireland

Alexander von Humboldt-Stiftung

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Computational Theory and Mathematics,Condensed Matter Physics,Mathematical Physics,Nuclear and High Energy Physics,Electronic, Optical and Magnetic Materials,Statistical and Nonlinear Physics

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