Skip to main page content
U.S. flag

An official website of the United States government

Dot gov

The .gov means it’s official.
Federal government websites often end in .gov or .mil. Before sharing sensitive information, make sure you’re on a federal government site.

Https

The site is secure.
The https:// ensures that you are connecting to the official website and that any information you provide is encrypted and transmitted securely.

Access keys NCBI Homepage MyNCBI Homepage Main Content Main Navigation
. 2015 Jun;10(6):497-502.
doi: 10.1038/nnano.2015.75. Epub 2015 May 4.

Single quantum emitters in monolayer semiconductors

Affiliations

Single quantum emitters in monolayer semiconductors

Yu-Ming He et al. Nat Nanotechnol. 2015 Jun.

Abstract

Single quantum emitters (SQEs) are at the heart of quantum optics and photonic quantum-information technologies. To date, all the demonstrated solid-state single-photon sources are confined to one-dimensional (1D; ref. 3) or 3D materials. Here, we report a new class of SQEs based on excitons that are spatially localized by defects in 2D tungsten-diselenide (WSe2) monolayers. The optical emission from these SQEs shows narrow linewidths of ∼130 μeV, about two orders of magnitude smaller than those of delocalized valley excitons. Second-order correlation measurements revealed a strong photon antibunching, which unambiguously established the single-photon nature of the emission. The SQE emission shows two non-degenerate transitions, which are cross-linearly polarized. We assign this fine structure to two excitonic eigenmodes whose degeneracy is lifted by a large ∼0.71 meV coupling, probably because of the electron-hole exchange interaction in the presence of anisotropy. Magneto-optical measurements also reveal an exciton g factor of ∼8.7, several times larger than those of delocalized valley excitons. In addition to their fundamental importance, establishing new SQEs in 2D quantum materials could give rise to practical advantages in quantum-information processing, such as an efficient photon extraction and a high integratability and scalability.

PubMed Disclaimer

References

    1. Nat Nanotechnol. 2012 Aug;7(8):494-8 - PubMed
    1. Nat Nanotechnol. 2012 Aug;7(8):490-3 - PubMed
    1. Nat Nanotechnol. 2015 Jun;10(6):503-6 - PubMed
    1. Nature. 2000 Aug 31;406(6799):968-70 - PubMed
    1. Nat Mater. 2015 Mar;14(3):290-4 - PubMed

Publication types

LinkOut - more resources