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集成微环谐振器的二维层状氧化石墨烯薄膜用于增强非线性光学

2D Layered Graphene Oxide Films Integrated with Micro-Ring Resonators for Enhanced Nonlinear Optics.

作者信息

Wu Jiayang, Yang Yunyi, Qu Yang, Jia Linnan, Zhang Yuning, Xu Xingyuan, Chu Sai T, Little Brent E, Morandotti Roberto, Jia Baohua, Moss David J

机构信息

Center for Micro-Photonics, Swinburne University of Technology, Hawthorn, VIC, 3122, Australia.

Centre for Translational Atomaterials, Swinburne University of Technology, Hawthorn, VIC, 3122, Australia.

出版信息

Small. 2020 Apr;16(16):e1906563. doi: 10.1002/smll.201906563. Epub 2020 Mar 11.

Abstract

Layered 2D graphene oxide (GO) films are integrated with micro-ring resonators (MRRs) to experimentally demonstrate enhanced nonlinear optics. Both uniformly coated (1-5 layers) and patterned (10-50 layers) GO films are integrated on complementary-metal-oxide-semiconductor (CMOS)-compatible doped silica MRRs using a large-area, transfer-free, layer-by-layer GO coating method with precise control of the film thickness. The patterned devices further employ photolithography and lift-off processes to enable precise control of the film placement and coating length. Four-wave-mixing (FWM) measurements for different pump powers and resonant wavelengths show a significant improvement in efficiency of ≈7.6 dB for a uniformly coated device with 1 GO layer and ≈10.3 dB for a patterned device with 50 GO layers. The measurements agree well with theory, with the enhancement in FWM efficiency resulting from the high Kerr nonlinearity and low loss of the GO films combined with the strong light-matter interaction within the MRRs. The dependence of GO's third-order nonlinearity on layer number and pump power is also extracted from the FWM measurements, revealing interesting physical insights about the evolution of the GO films from 2D monolayers to quasi bulk-like behavior. These results confirm the high nonlinear optical performance of integrated photonic resonators incorporated with 2D layered GO films.

摘要

将层状二维氧化石墨烯(GO)薄膜与微环谐振器(MRR)集成,通过实验证明了非线性光学性能的增强。使用大面积、无转移、逐层GO涂层方法,并精确控制膜厚,将均匀涂层(1 - 5层)和图案化(10 - 50层)的GO薄膜集成在与互补金属氧化物半导体(CMOS)兼容的掺杂二氧化硅MRR上。图案化器件进一步采用光刻和剥离工艺,以实现对薄膜放置和涂层长度的精确控制。针对不同泵浦功率和谐振波长的四波混频(FWM)测量表明,对于具有1层GO的均匀涂层器件,效率显著提高约7.6 dB,对于具有50层GO的图案化器件,效率显著提高约10.3 dB。测量结果与理论吻合良好,FWM效率的提高源于GO薄膜的高克尔非线性和低损耗,以及MRR内强烈的光与物质相互作用。还从FWM测量中提取了GO三阶非线性对层数和泵浦功率的依赖性,揭示了关于GO薄膜从二维单层到类块状行为演变的有趣物理见解。这些结果证实了与二维层状GO薄膜集成的集成光子谐振器具有高非线性光学性能。

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