Two-photon interference in the telecom C-band after frequency conversion of photons from remote quantum emitters
Jonas H. Weber (1), Benjamin Kambs (2), Jan Kettler (1), Simon Kern, (1), Julian Maisch (1), H\"useyin Vural (1), Michael Jetter (1), Simone L., Portalupi (1), Christoph Becher (2), Peter Michler (1) ((1) Institut f\"ur, Halbleiteroptik und Funktionelle Grenzfl\"achen

TL;DR
This paper demonstrates two-photon interference at telecom wavelengths between remote quantum dot emitters after frequency conversion, showing potential for long-distance quantum communication with stable, fiber-compatible single-photon sources.
Contribution
It presents the first TPI experiment at 1550 nm between remote QDs with quantum frequency conversion, achieving high visibility over long fiber channels.
Findings
TPI visibility of (29+-3)% at telecom wavelength
No impact on TPI visibility after 2 km fiber transmission
Quantum frequency conversion effectively erases frequency differences
Abstract
Efficient fiber-based long-distance quantum communication via quantum repeaters relies on deterministic single-photon sources at telecom wavelengths, with the potential to exploit the existing world-wide infrastructures. For upscaling the experimental complexity in quantum networking, two-photon interference (TPI) of remote non-classical emitters in the low-loss telecom bands is of utmost importance. With respect to TPI of distinct emitters, several experiments have been conducted, e.g., using trapped atoms [Beugnon2006], ions [Maunz2007], NV-centers [Bernien2012, Sipahigil2012], SiV-centers [Sipahigil2014], organic molecules [Lettow2010] and semiconductor quantum dots (QDs) [Patel2010, Flagg2010, He2013b, Gold2014, Giesz2015, Thoma2017, Reindl2017, Zopf2017]; however, the spectral range was far from the highly desirable telecom C-band. Here, we report on TPI at 1550 nm between…
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