Wu Jiayang, Jia Linnan, Zhang Yuning, Qu Yang, Jia Baohua, Moss David J
Optical Sciences Centre, Swinburne University of Technology, Hawthorn, VIC, 3122, Australia.
Centre for Translational Atomaterials, Swinburne University of Technology, Hawthorn, VIC, 3122, Australia.
Adv Mater. 2021 Jan;33(3):e2006415. doi: 10.1002/adma.202006415. Epub 2020 Dec 1.
With superior optical properties, high flexibility in engineering its material properties, and strong capability for large-scale on-chip integration, graphene oxide (GO) is an attractive solution for on-chip integration of 2D materials to implement functional integrated photonic devices capable of new features. Over the past decade, integrated GO photonics, representing an innovative merging of integrated photonic devices and thin GO films, has experienced significant development, leading to a surge in many applications covering almost every field of optical sciences such as photovoltaics, optical imaging, sensing, nonlinear optics, and light emitting. This paper reviews the recent advances in this emerging field, providing an overview of the optical properties of GO as well as methods for the on-chip integration of GO. The main achievements made in GO hybrid integrated photonic devices for diverse applications are summarized. The open challenges as well as the potential for future improvement are also discussed.
氧化石墨烯(GO)具有卓越的光学性能、在材料性能工程方面的高度灵活性以及强大的大规模片上集成能力,是二维材料片上集成以实现具备新特性的功能集成光子器件的一个有吸引力的解决方案。在过去十年中,集成GO光子学,代表着集成光子器件与GO薄膜的创新性融合,取得了显著发展,催生了众多应用的激增,几乎涵盖了光学科学的各个领域,如光伏、光学成像、传感、非线性光学和发光等。本文综述了这一新兴领域的最新进展,概述了GO的光学性能以及GO片上集成的方法。总结了用于各种应用的GO混合集成光子器件所取得的主要成果。还讨论了面临的开放性挑战以及未来改进的潜力。