Integrated photonics on thin-film lithium niobate
Интегрированная фотоника на тонкопленочном ниобате лития
2021-03-09
SCID: 54.1/ywkqx4ad
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electro-optic modulatorslithium niobate on insulator (LNOI)nonlinear wavelength convertersthin-film lithium niobateultra-low-loss resonators
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Abstract (AI)
Lithium niobate (LN), an outstanding and versatile material, has influenced our daily life for decades—from enabling high-speed optical communications that form the backbone of the Internet to realizing radio-frequency filtering used in our cell phones. This half-century-old material is currently embracing a revolution in thin-film LN integrated photonics. The successes of manufacturing wafer-scale, high-quality thin films of LN-on-insulator (LNOI) and breakthroughs in nanofabrication techniques have made high-performance integrated nanophotonic components possible. With rapid development in the past few years, some of these thin-film LN devices, such as optical modulators and nonlinear wavelength converters, have already outperformed their legacy counterparts realized in bulk LN crystals. Furthermore, the nanophotonic integration has enabled ultra-low-loss resonators in LN, which has unlocked many novel applications such as optical frequency combs and quantum transducers. In this review, we cover—from basic principles to the state of the art—the diverse aspects of integrated thin-film LN photonics, including the materials, basic passive components, and various active devices based on electro-optics, all-optical nonlinearities, and acousto-optics. We also identify challenges that this platform is currently facing and point out future opportunities. The field of integrated LNOI photonics is advancing rapidly and poised to make critical impacts on a broad range of applications in communication, signal processing, and quantum information.
Key Findings
1
Integrated thin-film LN photonics is rapidly advancing and is poised to impact communications, signal processing, and quantum information applications.
2
Nanophotonic integration in thin-film LN enables ultra-low-loss resonators, enabling applications like optical frequency combs and quantum transducers.
3
The review covers materials, passive components, and active devices (electro-optic, all-optical nonlinear, acousto-optic) and identifies current challenges and future opportunities for LNOI photonics.
4
Thin-film LN devices such as optical modulators and nonlinear wavelength converters have recently outperformed legacy bulk-LN counterparts.
5
Wafer-scale, high-quality thin-film lithium niobate on insulator (LNOI) manufacturing and advanced nanofabrication have enabled high-performance integrated nanophotonic components.
Research Object
Thin-film lithium niobate integrated photonics platform (lithium niobate-on-insulator, LNOI) and its nanophotonic devices
Research Subject
Properties, performance, and device-level behaviors of integrated thin-film LN photonics including materials, passive components, active devices (electro-optic modulators, nonlinear wavelength converters, acousto-optic devices), ultra-low-loss resonators, and challenges/opportunities for integration and applications
Publication Details
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2021-03-09
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