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Comparative analysis of frictional behavior and mechanism of molybdenum ditelluride with different structures
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作者 Lina ZHANG Xinfeng TAN +2 位作者 Jianguo JIAO Dan GUO Jianbin LUO 《Friction》 SCIE EI CAS CSCD 2024年第1期110-119,共10页
Two-dimensional(2D)transition metal dichalcogenides(TMDCs)have layered structures with excellent tribological properties.Since the energy difference between hexagonal-molybdenum ditelluride(2H-MoTe_(2))and distorted o... Two-dimensional(2D)transition metal dichalcogenides(TMDCs)have layered structures with excellent tribological properties.Since the energy difference between hexagonal-molybdenum ditelluride(2H-MoTe_(2))and distorted octahedral-molybdenum ditelluride(1T′-MoTe_(2))is very small among the transition metal dichalcogenides(TMDCs),MoTe_(2) becomes one of the most promising candidates for phase engineering.In our experiment,we found that the friction force and friction coefficient(COF)of 2H-MoTe_(2) were an order of magnitude smaller than those of 1T′-MoTe_(2) by the atomic force microscope(AFM)experiments.The friction difference between 1T′-MoTe_(2) and 2H-MoTe_(2) was further verified in molecular dynamics(MD)simulations.The density functional theory(DFT)calculations suggest that the friction contrast is related to the difference in sliding energy barrier of the potential energy surface(PES)for a tip sliding across the surface.The PES obtained from the DFT calculation indicates that the maximum energy barrier and the minimum energy path(MEP)energy barrier of 2H-MoTe_(2) are both smaller than those of 1T′-MoTe_(2),which means that less energy needs to be dissipated during the sliding process.The difference in energy barrier of the PES could be ascribed to its larger interlayer spacing and weaker Mo–Te interatomic interactions within the layers of 2H-MoTe_(2) than those of 1T′-MoTe_(2).The obvious friction difference between 1T′-MoTe_(2) and 2H-MoTe_(2) not only provides a new non-destructive means to detect the phase transition by the AFM,but also provides a possibility to tune friction by controlling the phase transition,which has the potential to be applied in extreme environments such as space lubrication. 展开更多
关键词 FRICTION two-dimensional(2D)materials distorted octahedral-molybdenum ditelluride(1T′-mote_(2)) hexagonal-molybdenum ditelluride(2h-mote_(2)) phase transition
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1T’-MoTe_2原位生长关键工艺技术
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作者 熊丝纬 孙清清 《半导体技术》 CAS CSCD 北大核心 2016年第8期625-630,共6页
二元过渡金属硫族化合物碲化钼(MoTe_2),由于其室温下合适的禁带宽度和较高的理论迁移率,将作为沟道材料应用于下一代集成电路器件中,而受到普遍的关注。通过碲(Te)和钼(Mo)的原位固相反应,在真空环境中不同温度条件下退火得到1T’-MoT... 二元过渡金属硫族化合物碲化钼(MoTe_2),由于其室温下合适的禁带宽度和较高的理论迁移率,将作为沟道材料应用于下一代集成电路器件中,而受到普遍的关注。通过碲(Te)和钼(Mo)的原位固相反应,在真空环境中不同温度条件下退火得到1T’-MoTe_2薄膜。利用喇曼光谱、X射线光电子能谱分析以及椭圆偏振光谱化对制备的MoTe_2薄膜进行表征分析,研究了不同退火温度对MoTe_2薄膜质量的影响。实验表明,在450℃退火条件下,薄膜喇曼峰强高,半峰宽较窄,结晶质量良好。但是,由于高温下单质和化合态Te的再蒸发效应,当退火温度从450℃上升到600℃时,薄膜喇曼峰强明显减小且半峰宽变宽,结晶质量显著变差。 展开更多
关键词 二元过渡金属硫族化合物(TMD) 1T’-碲化钼(1T’-Mo Te2) 原位生长 薄膜合成 再蒸发效应
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