Author Affiliations
Abstract
1 State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China
2 School of Physics, Ningxia University, Yinchuan 750021, China
3 Shanghai Research Center for Quantum Sciences, Shanghai 201315, China
4 Collaborative Innovation Center of Light Manipulations and Applications, Shandong Normal University, Jinan 250358, China
Lithium niobate is a material that exhibits outstanding electro-optic, nonlinear optical, acousto-optic, piezoelectric, photorefractive, and pyroelectric properties. A thin-film lithium niobate photonic crystal can confine light in the sub-wavelength scale, which is beneficial to the integration of the lithium niobate on-chip device. The commercialization of the lithium niobate on insulator gives birth to the emergence of high-quality lithium niobate photonic crystals. In order to provide guidance to the research of lithium niobate photonic crystal devices, recent progress about fabrication, characterization, and applications of the thin-film lithium niobate photonic crystal is reviewed. The performance parameters of the different devices are compared.
lithium niobate photonic crystal integrated optics 
Chinese Optics Letters
2024, 22(3): 033602
Author Affiliations
Abstract
1 State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China
2 Shanghai Research Center for Quantum Sciences, Shanghai 201315, China
3 Collaborative Innovation Center of Light Manipulations and Applications, Shandong Normal University, Jinan 250358, China
The compact and reliable ultraviolet (UV) source has attracted remarkable attention for its potential use in optical measurement systems, high-density optical storage, and biomedical applications. We demonstrate ultraviolet generation by frequency doubling in a lithium-tantalate-on-insulator (LTOI) microdisk via modal phase matching. The 50-µm-diameter microdisk was milled by a focused ion beam (FIB) and followed by chemo-mechanical polishing (CMP) to smooth the disk surface and edge, and the Q-factor reaches 2.74×105 in the visible band. On-chip UV coherent light with a wavelength of 384.3 nm was achieved, which shows great promise for using LTOIs in integrated ultraviolet source platforms.
lithium-tantalate thin film ultraviolet light second-harmonic generation 
Chinese Optics Letters
2023, 21(6): 061902
何书宸 1,2魏志伟 1,2葛睿 1,2陈玉萍 1,2,*
作者单位
摘要
1 区域光纤通信网与新型光通信系统国家重点实验室,上海 200240
2 上海交通大学物理与天文学院,上海 200240
增强现实(AR)技术将计算机生成的虚拟信息融入现实世界,可为使用者提供沉浸式的体验,被认为是下一代显示技术,但依旧存在一些问题。针对AR显示系统中色差、色彩均匀性、光场均匀性等问题,设计一种基于消色差超构光栅的光波导解决方案。仿真超构光栅的耦出响应,在单层超构光栅的情况下,实现了三种波长光(473,532,620 nm)相同角度入射和相同角度出射,消除了色差。采用双层超构光栅,在实现消色差的基础上,进一步实现了对不同波长光的强度比例可调和耦出效率可调,改善了色彩均匀度,有望用于扩瞳。所提基于消色差超构光栅的AR显示光波导设计有望为头戴式AR显示设备提供全新设计思路。
增强现实 超构光栅 消色差 色彩均匀性 
激光与光电子学进展
2022, 59(20): 2011016
Author Affiliations
Abstract
1 Shandong University, China
2 Shanghai Jiao Tong University, China
Lithium niobate (LiNbO3), so-called “Silicon in Photonics,” is a multifunctional crystal with a combination of a number of excellent physical properties. In optics and photonics, the LiNbO3-based devices, such as modulators, wavelength converters, waveguide amplifiers, and quantum photonic chips, have been realized and widely applied in various areas. In addition to the traditional waveguides, the LiNbO3 on insulators (LNOI) technology enables fabrication of large-scale, high-quality LiNbO3 thin film wafers, boosting the development of thin film LiNbO3-based devices; consequently, versatile applications have been realized to satisfy the small footprint for photonic integrated circuits (PICs). Aiming to present the impressive progresses in this field, Chinese Optics Letters publishes this special issue focusing on the fabrication of new LNOI wafers, new design of LNOI-based structures, and the intriguing applications of LNOI-based devices in selected active topics.
Chinese Optics Letters
2021, 19(6): 060001
Author Affiliations
Abstract
State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China
We investigate the influences of structure parameters and interface shapes on the bandwidth of the edge state of lithium niobate valley photonic crystals. By increasing the size difference of two air holes in the same unit cell, we find that the bandwidth of the lossless nontrivial edge state possesses a peak value of 0.0201(a/λ), which can be used to construct broadband valley photonic crystal waveguides. Mode field distributions verify that the waveguide is robust against sharp bends and exhibits chirality. When the unit cell is arranged in a bearded interface with the top and bottom components showing negative and positive valley Chern numbers, respectively, we find that the lithium niobate valley photonic crystal is more likely to exhibit a lossless edge state, which is difficult to be realized in valley waveguides with low refractive index materials. This work can provide guidance on the design of the high-performance topological waveguide.
lithium niobate valley photonic crystal waveguide propagation loss 
Chinese Optics Letters
2021, 19(6): 060014
Author Affiliations
Abstract
State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China
All-optical logic gates including AND, XOR, and NOT gates, as well as a half-adder, are realized based on two-dimensional lithium niobate photonic crystal (PhC) circuits with PhC micro-cavities. The proposed all-optical devices have an extinction ratio as high as 23 dB due to the effective all-optical switch function induced by two-missing-hole micro-cavities. These proposed devices can have potential implementation of complex integrated optical functionalities including all-optical computing in a lithium niobate slab or thin film.
230.3750 Optical logic devices 230.5298 Photonic crystals 
Chinese Optics Letters
2019, 17(7): 072301
Author Affiliations
Abstract
1 State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China
2 e-mail: xfchen@sjtu.edu.cn
Future quantum information networks operated on telecom channels require qubit transfer between different wavelengths while preserving quantum coherence and entanglement. Qubit transfer is a nonlinear optical process, but currently the types of atoms used for quantum information processing and storage are limited by the narrow bandwidth of upconversion available. Here we present the first experimental demonstration of broadband and high-efficiency quasi-phase matching second-harmonic generation (SHG) in a chip-scale periodically poled lithium niobate thin film. We achieve a large bandwidth of up to 2 THz for SHG by satisfying quasi-phase matching and group-velocity matching simultaneously. Furthermore, by changing the film thickness, the central wavelength of the quasi-phase matching SHG bandwidth can be modulated from 2.70 μm to 1.44 μm. The reconfigurable quasi-phase matching lithium niobate thin film provides a significant on-chip integrated platform for photonics and quantum optics.
Lithium niobate Thin film devices and applications Harmonic generation and mixing Nonlinear optics, integrated optics 
Photonics Research
2018, 6(10): 10000954
Author Affiliations
Abstract
State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China
Developing natural “free space” frequency upconversion is essential for photonic integrated circuits. In a single-crystal lithium niobate thin film planar waveguide of less than 1 μm thickness, we achieve type I and type II mode phase-matching conditions simultaneously for this thin film planar waveguide. Finally, by employing the mode phase matching of e+ee with d33 at 1018 nm, we successfully achieve a green second-harmonic wave output with the conversion efficiency of 0.12%/(W·cm2), which verifies one of our simulation results. The rich mode phase matching for three-wave mixing in a thin film planar waveguide may provide a potential application in on-chip frequency upconversions for integrated photonic and quantum devices.
190.4390 Nonlinear optics, integrated optics 130.3730 Lithium niobate 
Chinese Optics Letters
2017, 15(9): 091901
作者单位
摘要
上海交通大学物理与天文系, 上海 200240
利用级联的线性电光效应对光进行控制是一种非常有效而且常用的控制光的手段。对于周期性畴反转铌酸锂(PPLN)一维光子晶体,在平行于光轴方向施加电场可周期性改变折射率大小,形成电光光子晶体结构;在垂直于光轴方向施加电场不仅可以改变折射率椭球大小,同时可以周期性改变折射率椭球主轴方向。综述了部分已报道的基于周期性的级联电光效应的应用,介绍了其在可调的手性器件、全光逻辑门、基于快慢光的时间隐身和非线性光学等方面的应用,展望了级联电光效应在未来集成光子芯片中的潜在应用。
非线性光学 级联电光光子晶体 电光效应 铌酸锂 
激光与光电子学进展
2017, 54(6): 060001
Author Affiliations
Abstract
Department of Physics and Astronomy, Shanghai Jiao Tong University, State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai 200240, China
Using a lithium niobate (LN) material, we propose a broadband polarization beam splitter (PBS) with high efficiency by employing a negative refractive photonic crystal (PhC) wedge slab with an angle of 60°. It can split the incident light into two parts at about 90° with TE and TM polarizations. The transmissions of polarized light for an LN-based PBS are more than 80% with a broad angle and wavelength bandwidth of 8° and 70 nm at 1.55 μm, while with a Si-based PhC, no PBS with high efficiency can be realized for the relatively lower transmission of TM output light.
230.5298 Photonic crystals 230.3120 Integrated optics devices 130.3730 Lithium niobate 
Chinese Optics Letters
2016, 14(4): 042301

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