Optomechanical wave mixing by a single quantum dot

Weiß, M.; Wigger. D.; Nagele, M.; Müller, K.; Finley, J.J.; Kuhn, T.; Machnikowski. P.; Krenner, H.J.

Research article (journal) | Peer reviewed

Abstract

Wave mixing is an archetypical phenomenon in bosonic systems. In optomechanics, the bidirectional conversion between electromagnetic waves or photons at optical frequencies and elastic waves or phonons at radio frequencies is building on precisely this fundamental principle. Surface acoustic waves (SAWs) provide a versatile interconnect on a chip and thus enable the optomechanical control of remote systems. Here we report on the coherent nonlinear three-wave mixing between the coherent fields of two radio frequency SAWs and optical laser photons via the dipole transition of a single quantum dot exciton. In the resolved sideband regime, we demonstrate fundamental acoustic analogues of sum and difference frequency generation between the two SAWs and employ phase matching to deterministically enhance or suppress individual sidebands. This transfer between the acoustic and optical domains is described by theory that fully takes into account direct and virtual multiphonon processes. Finally, we show that the precision of the wave mixing is limited by the frequency accuracy of modern radio frequency electronics.

Details about the publication

JournalOptica
Volume8
Issue3
Page range291-300
StatusPublished
Release year2021
Language in which the publication is writtenEnglish
DOI10.1364/OPTICA.412201
Link to the full texthttps://doi.org/10.1364/OPTICA.412201
KeywordsSurface acoustic waves, Quantum dots

Authors from the University of Münster

Krenner, Hubert
Professorship of experimental physics with a research focus on solid-state physics (Prof. Krenner)
Kuhn, Tilmann
Professur für Festkörpertheorie (Prof. Kuhn)
Weiß, Matthias
Institute of Physics (PI)
Wigger, Daniel
Professur für Festkörpertheorie (Prof. Kuhn)