| Literature DB >> 30557023 |
Jinxiong Wu1, Chenguang Qiu2, Huixia Fu3, Shulin Chen4,5, Congcong Zhang1, Zhipeng Dou4,5, Congwei Tan6, Teng Tu1, Tianran Li1, Yichi Zhang1, Zhiyong Zhang2, Lian-Mao Peng2, Peng Gao4,5, Binghai Yan3, Hailin Peng1,6.
Abstract
The air-stable and high-mobility two-dimensional (2D) Bi2O2Se semiconductor has emerged as a promising alternative that is complementary to graphene, MoS2, and black phosphorus for next-generation digital applications. However, the room-temperature residual charge carrier concentration of 2D Bi2O2Se nanoplates synthesized so far is as high as about 1019-1020 cm-3, which results in a poor electrostatic gate control and unsuitable threshold voltage, detrimental to the fabrication of high-performance low-power devices. Here, we first present a facile approach for synthesizing 2D Bi2O2Se single crystals with ultralow carrier concentration of ∼1016 cm-3 and high Hall mobility up to 410 cm2 V-1 s-1 simultaneously at room temperature. With optimized conditions, these high-mobility and low-carrier-concentration 2D Bi2O2Se nanoplates with domain sizes greater than 250 μm and thicknesses down to 4 layers (∼2.5 nm) were readily grown by using Se and Bi2O3 powders as coevaporation sources in a dual heating zone chemical vapor deposition (CVD) system. High-quality 2D Bi2O2Se crystals were fabricated into high-performance and low-power transistors, showing excellent current modulation of >106, robust current saturation, and low threshold voltage of -0.4 V. All these features suggest 2D Bi2O2Se as an alternative option for high-performance low-power digital applications.Entities:
Keywords: 2D materials; Bi2O2Se; chemical vapor deposition; field-effect transistor; high mobility; low residual carrier concentration
Year: 2018 PMID: 30557023 DOI: 10.1021/acs.nanolett.8b03696
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189