| Literature DB >> 31144499 |
Shukui Zhang1,2, Xudong Wang1, Yan Chen1,2, Guangjian Wu1, Yicheng Tang1, Liqing Zhu1, Haoliang Wang1, Wei Jiang1,2, Liaoxin Sun1, Tie Lin1, Hong Shen1, Weida Hu1, Jun Ge1, Jianlu Wang1, Xiangjian Meng1, Junhao Chu1.
Abstract
Recently, two-dimensional (2D) materials, especially transition-metal dichalcogenides (TMDCs), have attracted extensive interest owing to their potential applications in optoelectronics. Here, we demonstrate a hybrid 2D-zero-dimensional (0D) photodetector, which consists of a single-layer or few-layer molybdenum disulfide (MoS2) thin film and a thin layer of core/shell zinc cadmium selenide/zinc sulfide (ZnCdSe/ZnS) colloidal quantum dots (QDs). It is worth mentioning that the photoresponsivity of the hybrid 2D-0D photodetector is 3 orders of magnitude larger than the TMDC photodetector (from 10 to 104 A W-1). The detectivity of the hybrid structure detector is up to 1012 Jones, and the gain is up to 105. Due to an effective energy transfer from the photoexcited QD sensitizing layer to MoS2 films, light absorption is enhanced and more excitons are generated. Thus, this hybrid 2D-0D photodetector takes advantage of high charge mobility in the MoS2 layer and efficient photon absorption/exciton generation in the QDs, which suggests their promising applications in the development of TMDC-based optoelectronic devices.Entities:
Keywords: MoS; energy transfer; hybrid 2D−0D photodetector; quantum dots; transition-metal dichalcogenides
Year: 2019 PMID: 31144499 DOI: 10.1021/acsami.9b03971
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229