Quantum squeezing in an all-resonant periodically poled lithium niobate microresonator
Xinyi Ren, Reshma Kopparapu, Tushar Sanjay Karnik, Chun-Ho Lee, Kiwon Kwon, Clayton Cheung, Yue Yu, Shi-Yuan Ma, Bo-Han Wu, Ran Yin, Lian Zhou, Quntao Zhuang, Dirk Englund, Zaijun Chen, Mengjie Yu

TL;DR
This paper demonstrates a highly efficient, broadband, integrated squeezed-light source on a lithium niobate chip using a resonant $ ext{PPLN}$ microresonator, achieving record squeezing levels for quantum sensing applications.
Contribution
It introduces the first fully resonant, quasi-phase matched $ ext{PPLN}$ microresonator for on-chip squeezed-light generation with record squeezing ratios.
Findings
Achieved -0.81 dB squeezing below shot noise at 27 mW pump power.
Demonstrated on-chip squeezing of -7.52 dB with high confidence.
Established a scalable, integrated platform for quantum-enhanced sensing.
Abstract
Quantum noise limits the sensitivity of optical measurements, but squeezed states of light enable quantum-enhanced metrology, sensing, and information processing. Most on-chip squeezed-light sources rely on Kerr () nonlinearities, remain limited by pump power and excess loss constraints. Quadratic () platforms instead provide stronger parametric interactions, lower pump power requirements, and greater spectral engineering flexibility. Here, we demonstrate strong, broadband squeezed-light generation on a thin-film lithium niobate (TFLN) photonic chip using a dual-resonant optical parametric amplifier implemented in a single periodically poled LN (PPLN) microresonator. Near-full-depth domain inversion is achieved simultaneously with highly over-coupled resonances, exhibiting escape efficiencies exceeding 90% and intrinsic quality factors above 2.5 million in a 0.6…
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Taxonomy
TopicsPhotorefractive and Nonlinear Optics · Advanced Fiber Laser Technologies · Photonic and Optical Devices
