材料科学
相变
电场
超短脉冲
成核
光电子学
电阻式触摸屏
相(物质)
化学物理
凝聚态物理
拉曼光谱
过渡金属
纳米技术
激光器
电气工程
热力学
化学
光学
物理
工程类
催化作用
有机化学
量子力学
生物化学
作者
Hui‐Kai He,Yong-Bo Jiang,Jun Yu,Ziyan Yang,Chaofan Li,Ting-Ze Wang,Dequan Dong,Fuwei Zhuge,Ming Xu,Zhiyi Hu,Rui Yang,Xiangshui Miao
出处
期刊:Materials horizons
[Royal Society of Chemistry]
日期:2021-12-21
卷期号:9 (3): 1036-1044
被引量:17
摘要
Phase engineering of two-dimensional transition metal dichalcogenides has received increasing attention in recent years due to its atomically thin nature and polymorphism. Here, we first realize an electric-field-induced controllable phase transition between semiconducting 2H and metallic 1T' phases in MoTe2 memristive devices. The device performs stable bipolar resistive switching with a cycling endurance of over 105, an excellent retention characteristic of over 105 s at an elevated temperature of 85 °C and an ultrafast switching of ∼5 ns for SET and ∼10 ns for RESET. More importantly, the device works in different atmospheres including air, vacuum and oxygen, and even works with no degradation after being placed in air for one year, indicating excellent surrounding and time stability. In situ Raman analysis reveals that the stable resistive switching originates from a controllable phase transition between 2H and 1T' phases. Density functional theory calculations reveal that the Te vacancy facilitates the phase transition in MoTe2 through decreasing the barrier between 2H and 1T' phases, and serving as nucleation sites due to the elimination of repulsive forces. This electric-field-induced controllable phase transition in MoTe2 devices offers new opportunities for developing reliable and ultrafast phase transition devices based on atomically thin membranes.
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