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用于具有极高品质因数的片上谐振器的通用光导几何结构。

Universal light-guiding geometry for on-chip resonators having extremely high Q-factor.

作者信息

Kim Dae-Gon, Han Sangyoon, Hwang Joonhyuk, Do In Hwan, Jeong Dongin, Lim Ji-Hun, Lee Yong-Hoon, Choi Muhan, Lee Yong-Hee, Choi Duk-Yong, Lee Hansuek

机构信息

Department of Physics, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.

Graduate School of Nanoscience and Technology, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, 34141, Republic of Korea.

出版信息

Nat Commun. 2020 Nov 23;11(1):5933. doi: 10.1038/s41467-020-19799-2.

Abstract

By providing an effective way to leverage nonlinear phenomena in integrated devices, high-Q optical resonators have led to recent advances in on-chip photonics. However, developing fabrication processes to shape any new material into a resonator with extremely smooth surfaces on a chip has been an exceptionally challenging task. Here, we describe a universal method to implement ultra-high-Q resonators with any new material having desirable properties that can be deposited by physical vapor deposition. Using this method light-guiding cores with surface roughness on the molecular-scale are created automatically on pre-patterned substrates. Its efficacy has been verified using AsS, a chalcogenide glass that has high-nonlinearity. The Q-factor of the AsS resonator so-developed approached the propagation loss record achieved in chalcogenide fibers which were limited by material losses. Owing to the boosted Q-factor, lasing by stimulated Brillouin scattering has been demonstrated with 100 times lower threshold power than the previous record.

摘要

通过提供一种在集成器件中利用非线性现象的有效方法,高Q值光学谐振器推动了片上光子学的最新进展。然而,开发一种制造工艺,将任何新材料加工成芯片上具有极其光滑表面的谐振器,一直是一项极具挑战性的任务。在此,我们描述了一种通用方法,用于用任何具有理想特性且可通过物理气相沉积法沉积的新材料来实现超高Q值谐振器。使用这种方法,在预先图案化的衬底上会自动形成分子尺度表面粗糙度的光导芯。我们使用具有高非线性的硫系玻璃AsS验证了该方法的有效性。如此开发的AsS谐振器的品质因数接近硫系光纤中受材料损耗限制所达到的传播损耗记录。由于品质因数的提高,通过受激布里渊散射实现的激光发射的阈值功率比之前的记录低100倍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a8fe/7683556/4651899bc949/41467_2020_19799_Fig1_HTML.jpg

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