KIP-Veröffentlichungen

Jahr 2025
Autor(en) Ulrich Pfister, Daniel Wendland, Florian Hornung, Lena Engel, Hendrik Hüging, Elias Herzog, Ponraj Vijayan, Raphael Joos, Erik Jung, Michael Jetter, Simone L. Portalupi, Wolfram H. P. Pernice, Peter Michler
Titel Telecom wavelength quantum dots interfaced with silicon-nitride circuits via photonic wire bonding
KIP-Nummer HD-KIP 25-16
KIP-Gruppe(n) F31
Dokumentart Paper
Quelle npj Nanophoton 2 (2025)
doi https://doi.org/10.1038/s44310-025-00061-w
Abstract (en)

Photonic integrated circuits find applications in classical and quantum communication, computing and sensing. For ideal performance, efforts are made to effectively combine different platforms to benefit from their respective strengths. Here, direct laser written photonic wire bonds are employed to interface triggered sources of quantum light, based on semiconductor quantum dots embedded into etched microlenses, with low-loss silicon-nitride photonics. Single photons at telecom wavelengths are generated by In(Ga)As quantum dots which are then funneled into a silicon-nitride chip containing single-mode waveguides and beamsplitters. The second-order correlation function of g(2)(0) = 0.11 ± 0.02, measured via the on-chip beamsplitter, clearly demonstrates the transfer of single photons into the silicon-nitride platform. The photonic wire bonds funnel on average 27.9 ± 8.0% of the bare microlens emission (NA = 0.6) into the silicon-nitride-based photonic integrated circuit even at cryogenic temperatures. This opens the route for the effective future up-scaling of circuitry complexity based on the use of multiple different platforms.

bibtex
@article{pfister2025,
  author   = {Ulrich Pfister, Daniel Wendland, Florian Hornung, Lena Engel, Hendrik Hüging, Elias Herzog, Ponraj Vijayan, Raphael Joos, Erik Jung, Michael Jetter, Simone L. Portalupi, Wolfram H. P. Pernice, Peter Michler},
  title    = {Telecom wavelength quantum dots interfaced with silicon-nitride circuits via photonic wire bonding},
  journal  = {npj Nanophoton},
  year     = {2025},
  volume   = {2},
  number   = {11}
}
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