Monolayer atomic crystal molecular superlattices

磷烯 单层 超晶格 二硫化钼 材料科学 插层(化学) 石墨烯 剥脱关节 化学物理 范德瓦尔斯力 纳米技术 化学 分子 无机化学 光电子学 有机化学 冶金
作者
Chen Wang,Qiyuan He,Udayabagya Halim,Yuanyue Liu,Enbo Zhu,Zhaoyang Lin,Hai Xiao,Xidong Duan,Ziying Feng,Rui Cheng,Nathan O. Weiss,Guojun Ye,Yun-Chiao Huang,Hao Wu,Hung‐Chieh Cheng,Imran Shakir,Lei Liao,Xianhui Chen,William A. Goddard,Yu Huang
出处
期刊:Nature [Springer Nature]
卷期号:555 (7695): 231-236 被引量:418
标识
DOI:10.1038/nature25774
摘要

Artificial superlattices, based on van der Waals heterostructures of two-dimensional atomic crystals such as graphene or molybdenum disulfide, offer technological opportunities beyond the reach of existing materials. Typical strategies for creating such artificial superlattices rely on arduous layer-by-layer exfoliation and restacking, with limited yield and reproducibility. The bottom-up approach of using chemical-vapour deposition produces high-quality heterostructures but becomes increasingly difficult for high-order superlattices. The intercalation of selected two-dimensional atomic crystals with alkali metal ions offers an alternative way to superlattice structures, but these usually have poor stability and seriously altered electronic properties. Here we report an electrochemical molecular intercalation approach to a new class of stable superlattices in which monolayer atomic crystals alternate with molecular layers. Using black phosphorus as a model system, we show that intercalation with cetyl-trimethylammonium bromide produces monolayer phosphorene molecular superlattices in which the interlayer distance is more than double that in black phosphorus, effectively isolating the phosphorene monolayers. Electrical transport studies of transistors fabricated from the monolayer phosphorene molecular superlattice show an on/off current ratio exceeding 10^7, along with excellent mobility and superior stability. We further show that several different two-dimensional atomic crystals, such as molybdenum disulfide and tungsten diselenide, can be intercalated with quaternary ammonium molecules of varying sizes and symmetries to produce a broad class of superlattices with tailored molecular structures, interlayer distances, phase compositions, electronic and optical properties. These studies define a versatile material platform for fundamental studies and potential technological applications.
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