TY - JOUR
T1 - Integrated photonics on thin-film lithium niobate
AU - Zhu, Di
AU - Shao, Linbo
AU - Yu, Mengjie
AU - Cheng, Rebecca
AU - Desiatov, Boris
AU - Xin, C. J.
AU - Hu, Yaowen
AU - Holzgrafe, Jeffrey
AU - Ghosh, Soumya
AU - Shams-Ansari, Amirhassan
AU - Puma, Eric
AU - Sinclair, Neil
AU - Reimer, Christian
AU - Zhang, Mian
AU - Loncar, Marko
N1 - Publisher Copyright: © 2021 Optical Society of America.
PY - 2021
Y1 - 2021
N2 - 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.
AB - 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.
UR - http://www.scopus.com/inward/record.url?scp=85106666784&partnerID=8YFLogxK
U2 - 10.1364/AOP.411024
DO - 10.1364/AOP.411024
M3 - مقالة مرجعية
SN - 1943-8206
VL - 13
SP - 242
EP - 352
JO - Advances in Optics and Photonics
JF - Advances in Optics and Photonics
IS - 2
ER -