| Literature DB >> 31282020 |
Xiaoqing Chen1,2, Khurram Shehzad3, Li Gao4, Mingsheng Long5, Hui Guo1, Shuchao Qin2, Xiaomu Wang2, Fengqiu Wang2, Yi Shi2, Weida Hu5, Yang Xu3, Xinran Wang2.
Abstract
Graphene (Gr) has many unique properties including gapless band structure, ultrafast carrier dynamics, high carrier mobility, and flexibility, making it appealing for ultrafast, broadband, and flexible optoelectronics. To overcome its intrinsic limit of low absorption, hybrid structures are exploited to improve the device performance. Particularly, van der Waals heterostructures with different photosensitive materials and photonic structures are very effective for improving photodetection and modulation efficiency. With such hybrid structures, Gr hybrid photodetectors can operate from ultraviolet to terahertz, with significantly improved R (up to 109 A W-1 ) and bandwidth (up to 128 GHz). Furthermore, integration of Gr with silicon (Si) complementary metal-oxide-semiconductor (CMOS) circuits, the human body, and soft tissues is successfully demonstrated, opening promising opportunities for wearable sensors and biomedical electronics. Here, the recent progress in using Gr hybrid structures toward high-performance photodetectors and integrated optoelectronic applications is reviewed.Entities:
Keywords: flexible electronics; graphene; heterostructures; photodetectors; van der Waals
Year: 2019 PMID: 31282020 DOI: 10.1002/adma.201902039
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849