Asymmetric Rydberg blockade of giant excitons in Cuprous Oxide
Abstract
The ability to generate and control strong long-range interactions via highly excited electronic states has been the foundation for recent breakthroughs in a host of areas, from atomic and molecular physics [1, 2] to quantum optics [3, 4] and technology [5-7]. Rydberg excitons provide a promising solid-state realization of such highly excited states, for which record-breaking orbital sizes of up to a micrometer have indeed been observed in cuprous oxide semiconductors [8]. Here, we demonstrate the generation and control of strong exciton interactions in this material by optically producing two distinct quantum states of Rydberg excitons. This makes two-color pump-probe experiments possible that allow for a detailed probing of the interactions. Our experiments reveal the emergence of strong spatial correlations and an inter-state Rydberg blockade that extends over remarkably large distances of several micrometers. The generated many-body states of semiconductor excitons exhibit universal properties that only depend on the shape of the interaction potential and yield clear evidence for its vastly extended-range and power-law character.
Keywords
Cite
@article{arxiv.2010.15459,
title = {Asymmetric Rydberg blockade of giant excitons in Cuprous Oxide},
author = {Julian Heckötter and Valentin Walther and Stefan Scheel and Manfred Bayer and Thomas Pohl and Marc Aßmann},
journal= {arXiv preprint arXiv:2010.15459},
year = {2021}
}
Comments
Main script: 7 pages, 3 figures. Supplementary file 15 pages, 5 figures