| Literature DB >> 28940722 |
Tian Sun1, Yongjie Wang1, Wenzhi Yu1, Yusheng Wang1, Zhigao Dai2, Zeke Liu1, Bannur Nanjunda Shivananju1, Yupeng Zhang3, Kai Fu4, Babar Shabbir3, Wanli Ma1, Shaojuan Li1, Qiaoliang Bao1,3.
Abstract
The integration of graphene with colloidal quantum dots (QDs) that have tunable light absorption affords new opportunities for optoelectronic applications as such a hybrid system solves the problem of both quantity and mobility of photocarriers. In this work, a hybrid system comprising of monolayer graphene and self-doped colloidal copper phosphide (Cu3-x P) QDs is developed for efficient broadband photodetection. Unlike conventional PbS QDs that are toxic, Cu3-x P QDs are environmental friendly and have plasmonic resonant absorption in near-infrared (NIR) wavelength. The half-covered graphene with Cu3-x P nanocrystals (NCs) behaves as a self-driven p-n junction and shows durable photoresponse in NIR range. A comparison experiment reveals that the surface ligand attached to Cu3-x P NCs plays a key role in determining the charge transfer efficiency from Cu3-x P to graphene. The most efficient three-terminal photodetectors based on graphene-Cu3-x P exhibit broadband photoresponse from 400 to 1550 nm with an ultrahigh responsivity (1.59 × 105 A W-1 ) and high photoconductive gain (6.66 × 105 ) at visible wavelength (405 nm), and a good responsivity of 9.34 A W-1 at 1550 nm. The demonstration of flexible graphene-Cu3-x P photodetectors operated at NIR wavelengths may find potential applications in optical sensing, biological imaging, and wearable devices.Entities:
Keywords: Cu3−xP; broadband; flexibility; graphene; photodetector
Year: 2017 PMID: 28940722 DOI: 10.1002/smll.201701881
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281