Coherent control of quantum-dot spins with cyclic optical transitions

Z Zhe Xian Koong U Urs Haeusler J Jan M. Kaspari C Christian Schimpf B Benyam Dejen A Ahmed M. Hassanen D Daniel Graham (Department of Psychological Science) Y Yusuf Karli A Ailton J. Garcia Jr M Melina Peter E Edmund Clarke M Maxime Hugues M Michał Gawełczyk A Armando Rastelli D Doris E. Reiter M Mete Atatüre D Dorian A. Gangloff

Abstract

Abstract Solid-state spins are promising as interfaces from stationary qubits to single photons for quantum communication technologies. Semiconductor quantum dots have excellent optical coherence, exhibit near-unity collection efficiencies when coupled to photonic structures, and possess long-lived spins for quantum memory. However, the incompatibility of performing optical spin control and single-shot readout simultaneously has been a challenge faced by almost all solid-state emitters. To overcome this, we leverage light-hole mixing to realize a highly asymmetric lambda system in a negatively charged heavy-hole exciton in Faraday configuration. By compensating GHz-scale differential Stark shifts, induced by unequal coupling to Raman control fields, and by performing nuclear-spin cooling, we achieve quantum control of an electron-spin qubit with a π -pulse contrast of 97.4% while preserving spin-selective optical transitions with a cyclicity of 471 (50). We demonstrate this scheme for both GaAs and InGaAs quantum dots, and show that it is compatible with the operation of a nuclear quantum memory. Our approach thus enables repeated emission of indistinguishable photons together with qubit control, as required for single-shot readout, photonic cluster-state generation, and quantum repeater technologies.

Article Details

Volume / Issue Vol. 17, Issue 1
Published June 24, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

Z

Zhe Xian Koong

U

Urs Haeusler

J

Jan M. Kaspari

C

Christian Schimpf

B

Benyam Dejen

A

Ahmed M. Hassanen

D

Daniel Graham

Department of Psychological Science

Y

Yusuf Karli

A

Ailton J. Garcia Jr

M

Melina Peter

E

Edmund Clarke

M

Maxime Hugues

M

Michał Gawełczyk

A

Armando Rastelli

D

Doris E. Reiter

M

Mete Atatüre

D

Dorian A. Gangloff