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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Temperature-dependent mechanical properties of Tin+1CnO2 (n=1, 2) MXene monolayers: a first-principles study
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Temperature-dependent mechanical properties of Tin+1CnO2 (n=1, 2) MXene monolayers: a first-principles study

机译:锡+ 1cNO2(n = 1,2)mxene单层的温度依赖性机械性能:第一原理研究

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Two-dimensional (2D) transition metal carbides, carbonitrides, and nitrides (named as MXenes) have become of the fastest growing family of 2D materials in terms of compositions and their applications in different areas. One of the least explored properties of MXenes is their mechanical properties. While the basic elastic properties of MXenes have been studied by first-principles, the effects of temperature on the elastic properties have never been explored. In this study, we investigate temperature-dependent structural and mechanical properties of the titanium-containing MXenes (Tin+1CnO2 (n = 1, 2)) based on the first-principles calculations combined with quasi-harmonic approximation. The effective Young's modulus of a single layer of Ti2CO2 and Ti3C2O2 is calculated to be 565 and 482 GPa, respectively, at 0 K. By increasing temperature to 1000 K, Young's moduli of Ti2CO2 and Ti3C2O2 decrease to 469 GPa and 442 GPa, respectively, which indicates a larger reduction in stiffness in thinner MXenes at higher temperatures. Our calculations of the temperature-dependent bond strengths within MXenes showed that titanium and carbon atoms in Ti3C2O2 form stronger bonds than Ti2CO2 and atomic bonds in Ti2CO2 lose their stiffness more than Ti3C2O2 with increasing temperatures. The Debye temperature of these monolayers is also calculated to provide a comparison of the thermal conductivity between these monolayers, in which the results show that the Ti3C2O2 has a higher thermal conductivity than Ti2CO2. Our calculated electronic properties results of the monolayers are also shown that the electrical conductivity of the monolayers would not change with temperature. Our study extends MXenes applications to high-temperature applications, such as structural composite components and aerospace coatings.
机译:二维(2D)过渡金属碳化物,碳氮化物和氮化物(命名为MxENes)已成为在组合物中产生最快的2D材料系列,以及它们在不同区域中的应用。 MxENes的最不探索属性之一是其机械性能。虽然已经通过第一原理研究了MXENES的基本弹性性质,但是从未探索过温度对弹性物质的影响。在该研究中,基于与准谐波近似联合的第一原理计算,研究了含钛的MxEnes(锡+ 1cNO2(n = 1,2))的温度依赖性结构和机械性能。单层Ti2CO2和Ti3C2O2的有效杨氏模量分别以0k为565和482GPa,分别以0k增加到1000K,杨氏调节和Ti3C2O2分别降至469GPa和442GPa,这表明在较高温度下较薄的mxenes刚度较大。我们在蒙胶中的温度依赖性粘合强度的计算表明,Ti3C2O2中的钛和碳原子在Ti2CO 2中形成更强的键,Ti2CO2中的原子键失去其刚度大于Ti3C2O2的温度。还计算了这些单层的脱娇温度以提供这些单层之间的导热率的比较,其中结果表明Ti3C2O2具有比Ti2CO2更高的导热率。我们计算出单层的电子特性结果也表明单层的电导率不会随温度而变化。我们的研究将MxENES应用扩展到高温应用,例如结构复合部件和航空涂层。

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