材料科学
极限抗拉强度
模数
原子力显微镜
原位
杨氏模量
纳米尺度
复合材料
纳米技术
化学
有机化学
作者
Konstantin L. Firestein,Joel E. von Treifeldt,Dmitry G. Kvashnin,Joseph F. S. Fernando,Chao Zhang,Alexander G. Kvashnin,Evgeny V. Podryabinkin,Alexander V. Shapeev,Dumindu P. Siriwardena,Павел Б. Сорокин,Dmitri Golberg
出处
期刊:Nano Letters
[American Chemical Society]
日期:2020-07-07
卷期号:20 (8): 5900-5908
被引量:127
标识
DOI:10.1021/acs.nanolett.0c01861
摘要
Two-dimensional transition metal carbides, that is, MXenes and especially Ti3C2, attract attention due to their excellent combination of properties. Ti3C2 nanosheets could be the material of choice for future flexible electronics, energy storage, and electromechanical nanodevices. There has been limited information available on the mechanical properties of Ti3C2, which is essential for their utilization. We have fabricated Ti3C2 nanosheets and studied their mechanical properties using direct in situ tensile tests inside a transmission electron microscope, quantitative nanomechanical mapping, and theoretical calculations employing machine-learning derived potentials. Young's modulus in the direction perpendicular to the Ti3C2 basal plane was found to be 80-100 GPa. The tensile strength of Ti3C2 nanosheets reached up to 670 MPa for ∼40 nm thin nanoflakes, while a strong dependence of tensile strength on nanosheet thickness was demonstrated. Theoretical calculations allowed us to study mechanical characteristics of Ti3C2 as a function of nanosheet geometrical parameters and structural defect concentration.
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