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Efficient Frequency Doubling with Active Stabilization on Chip

delete2021-10-11
delete23
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OA
AI
J
Jia‐Yang Chen
C
Chao Tang
M
Mingwei Jin
詹黎 (Li Zhan)
Z
Zhaohui Ma
H
Heng Fan
S
Santosh Kumar
Y
Yong Meng Sua
Y
Yu‐Ping Huang *
DOI:10.1002/lpor.202100091delete
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Abstract

Abstract

En 中文
Thin-film lithium niobate (TFLN) is superior for integrated nanophotonics due to its outstanding properties in nearly all aspects: strong second-order nonlinearity, fast and efficient electro-optic effects, wide transparency window, and little two photon absorption and free carrier scattering. Together, they permit highly integrated nanophotonic circuits capable of complex photonic processing by incorporating disparate elements on the same chip. Yet, there has to be a demonstration that synergizes those superior properties for system advantage. Here, such a chip that capitalizes on TFLN's favorable ferroelectricity, high second-order nonlinearity, and strong electro-optic effects is demonstrated. It consists of a monolithic circuit integrating a Z-cut, quasi-phase matched microring with high quality factor and a phase modulator used in active feedback control. By Pound-Drever-Hall locking, it realizes stable frequency doubling at about 50% conversion with only milliwatt pump power. This demonstration addresses a long-outstanding challenge facing cavity-based optical processing, including frequency conversion, frequency comb generation, and all-optical switching, whose stable performance is hindered by photorefractive or thermal effects. These results further establish TFLN as an excellent material capable of optical multitasking, as desirable to build multi-functional chip devices.
Keywords:
integrated photonics
lithium niobate
nonlinear optics
Pound-Drever-Hall

Journal

L
Laser and Photonics Reviews
IF:
10
Papers:
3.7K
Citations:
2.1W

Organization

S
Stevens Institute of Technology
Scholars:
2.9K
Papers: 2.9K
Citations: 3.2K