材料科学
范德瓦尔斯力
导电体
化学物理
纳米技术
凝聚态物理
工程物理
物理
分子
量子力学
复合材料
作者
Jiachao Zhou,Anzhe Chen,Yishu Zhang,Dong Pu,Baoshi Qiao,Jiayang Hu,Hanxi Li,Shuai Zhong,Rong Zhao,Fei Xue,Yang Xu,Kian Ping Loh,Hua Wang,Bin Yu
标识
DOI:10.1002/adma.202302419
摘要
Abstract The recently unfolded ferroionic phenomena in 2D van der Waals (vdW) copper–indium–thiophosphate (CuInP 2 S 6 or CIPS) have received widespread interest as they allow for dynamic control of conductive switching properties, which are appealing in the paradigm‐shift computing. The intricate couplings between ferroelectric polarization and ionic conduction in 2D vdW CIPS facilitate the manipulation and dynamic control of conductive behaviors. However, the complex interplays and underlying mechanisms are not yet fully explored and understood. Here, by investigating polarization switching and ionic conduction in the temperature and applied electric field domains, it is discovered that the conducting mechanisms of CIPS can be divided into four distinctive states (or modes) with transitional boundaries, depending on the dynamics of Cu ions in the material. Further, it demonstrates that dynamically‐tunable synaptic responsive behavior can be well implemented by governing the working‐state transition. This research provides an in‐depth, quantitative understanding of the complex phenomena of conductive switching in 2D vdW CIPS with coexisting ferroelectric order and ionic disorder. The developed insights in this work lay the ground for implementing high‐performance, function‐enriched devices for information processing, data storage, and neuromorphic computing based on the 2D ferroionic material systems.
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