English

A Fiber-pigtailed Quantum Dot Device Generating Indistinguishable Photons at GHz Clock-rates

Quantum Physics 2026-02-11 v2

Abstract

Solid-state quantum light sources based on semiconductor quantum dots (QDs) are increasingly employed in photonic quantum information applications. Especially when moving towards real-world scenarios outside shielded lab environments, the efficient and robust coupling of nanophotonic devices to single-mode optical fibers offers substantial advantage by enabling "plug-and-play" operation. In this work we present a fiber-pigtailed cavity-enhanced source of flying qubits emitting single indistinguishable photons at clock-rates exceeding 11\,GHz. This is achieved by employing a fully deterministic technique for fiber-pigtailing optimized QD-devices based on hybrid circular Bragg grating (hCBG) micro-cavities. The fabricated fiber-pigtailed hCBGs feature radiative emission lifetimes of <80<80\,ps, corresponding to a Purcell factor of \sim9, a suppression of multi-photon emission events with g(2)(0)<1%g^{(2)}(0)<1\%, a photon-indistinguishability >80%>80\% and a measured single-photon coupling efficiency of 53%\% in a high numerical aperture single-mode fiber, corresponding to 1.2 Megaclicks per second at the single-photon detectors under 8080\,MHz excitation clock-rates. Furthermore, we show that high multi-photon suppression and indistinguishability prevail for excitation clock-rates exceeding 11\,GHz. Our results show that Purcell-enhanced fiber-pigtailed quantum light sources based on hCBG cavities are a prime candidate for applications of quantum information science.

Keywords

Cite

@article{arxiv.2409.08982,
  title  = {A Fiber-pigtailed Quantum Dot Device Generating Indistinguishable Photons at GHz Clock-rates},
  author = {Lucas Rickert and Kinga Żołnacz and Daniel A. Vajner and Martin von Helversen and Sven Rodt and Stephan Reitzenstein and Hanqing Liu and Shulun Li and Haiqiao Ni and Paweł Wyborski and Grzegorz Sęk and Anna Musiał and Zhichuan Niu and Tobias Heindel},
  journal= {arXiv preprint arXiv:2409.08982},
  year   = {2026}
}

Comments

11 pages (+ 15 pages Supplementary Information), 5 figures (+ 10 figures Supplementary Information), 67 references