Fabrication of low-loss quasi-single-mode PPLN waveguide and its application to a modularized broadband high-level squeezer
Takahiro Kashiwazaki (1), Taichi Yamashima (2), Naoto Takanashi (2),, Asuka Inoue (1), Takeshi Umeki (1), and Akira Furusawa (2, 3) ((1) NTT, Device Technology Labs, (2) The University of Tokyo, (3) RIKEN Center for, Quantum Computing)

TL;DR
This paper reports the fabrication of a low-loss, quasi-single-mode PPLN waveguide that significantly enhances broadband squeezing levels, enabling its application in high-speed, fault-tolerant quantum computing systems.
Contribution
It introduces a novel low-loss quasi-single-mode PPLN waveguide with improved squeezing performance for quantum optics applications.
Findings
Achieved 7% optical propagation loss in a 45 mm waveguide.
Obtained 6.3 dB squeezing over a 6 THz bandwidth.
Estimated over 10 dB squeezing at the waveguide output excluding losses.
Abstract
A continuous-wave (CW) broadband high-level optical quadrature squeezer is essential for high-speed large-scale fault-tolerant quantum computing on a time-domain-multiplexed continuous-variable optical cluster state. CW THz-bandwidth squeezed light can be obtained with a waveguide optical parametric amplifier (OPA); however, the squeezing level have been insufficient for applications of fault-tolerant quantum computation because of degradation of the squeezing level due to their optical losses caused by the structural perturbation and pump-induced phenomena. Here, by using mechanical polishing processes, we fabricated a low-loss quasi-single-mode periodically-poled LiNbO3 (PPLN) waveguide, which shows 7% optical propagation loss with a waveguide length of 45 mm. Using the waveguide, we assembled a low-loss fiber-pigtailed OPA module with a total insertion loss of 21%. Thanks to its…
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