Controlling the Photon Number Coherence of Solid-state Quantum Light Sources for Quantum CryptographyOpen Access

Karli Y; Vajner DA; Kappe F; Hagen PCA; Hansen LM; Schwarz R; Bracht TK; Schimpf C; Silva SFC; Walther P; Rastelli A; Axt VM; Loredo JC; Remesh V; Heindel T; Reiter DE; Weihs G

Research article (journal) | Peer reviewed

Abstract

Quantum communication networks rely on quantum cryptographic protocols including quantum key distribution (QKD) based on single photons. A critical element regarding the security of QKD protocols is the photon number coherence (PNC), i.e., the phase relation between the vacuum and one-photon Fock state. To obtain single photons with the desired properties for QKD protocols, optimal excitation schemes for quantum emitters need to be selected. As emitters, we consider semiconductor quantum dots, that are known to generate on-demand single photons with high purity and indistinguishability. Exploiting two-photon excitation of a quantum dot combined with a stimulation pulse, we demonstrate the generation of high-quality single photons with a controllable degree of PNC. The main tuning knob is the pulse area giving full control from minimal to maximal PNC, while without the stimulating pulse the PNC is negligible in our setup for all pulse areas. Our approach provides a viable route toward secure communication in quantum networks.

Details about the publication

Journalnpj Quantum Information (npj Quantum Inf)
Volume10
Issue1
Page range17-17
StatusPublished
Release year2024
DOI10.1038/s41534-024-00811-2
Link to the full texthttps://doi.org/10.1038/s41534-024-00811-2
KeywordsQuantum information; Qubits; Single photons and quantum effects;

Authors from the University of Münster

Heindel, Tobias
Professorship of experimental quantum technology (Prof. Heindel)