Molecular Dynamics Study on Lubrication Mechanism in Crystalline Structure between Copper and Sulfur

K. Saitoh, Tomohiro Sato, M. Takuma, Y. Takahashi, R. Chin
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引用次数: 3

Abstract

To clarify the nanosized mechanism of good lubrication in copper disulfide (Cu2S) crystal which is used as a sliding material, atomistic modeling of Cu2S is conducted and molecular dynamics (MD) simulations are performed in this paper. The interatomic interaction between atoms and crystalline structure in the phase of hexagonal crystal of Cu2S are carefully estimated by first-principle calculations. Then, approximating these interactions, we originally construct a conventional interatomic potential function of Cu2S crystal in its hexagonal phase. By using this potential function, we perform MD simulation of Cu2S crystal which is subjected to shear loading parallel to the basal plane. We compare results obtained by different conditions of sliding directions. Unlike ordinary hexagonal metallic crystals, it is found that the easy-glide direction does not always show small shear stress for Cu2S crystal. Besides, it is found that shearing velocity affects largely the magnitude of averaged shear stress. Generally speaking, higher velocity results in higher resistance against shear deformation. As a result, it is understood that Cu2S crystal exhibits somewhat liquid-like (amorphous) behavior in sliding condition and shear resistance increases with increase of sliding speed.
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铜与硫晶体结构润滑机理的分子动力学研究
为了阐明作为滑动材料的二硫化铜(Cu2S)晶体在纳米尺度下良好润滑的机理,对其进行了原子建模和分子动力学(MD)模拟。用第一性原理计算方法对Cu2S六方晶相中原子间的相互作用和晶体结构进行了详细的估计。然后,近似这些相互作用,我们最初构建了Cu2S晶体在六方相中的常规原子间势函数。利用该势函数,对平行于基面剪切载荷作用下的Cu2S晶体进行了MD模拟。比较了不同滑动方向条件下得到的结果。与普通的六方金属晶体不同,Cu2S晶体的易滑动方向并不总是表现出较小的剪切应力。此外,还发现剪切速度对平均剪应力的大小有很大影响。一般来说,速度越快,抗剪切变形能力越强。结果表明,Cu2S晶体在滑动状态下表现出一定的液态(非晶态)行为,且剪切阻力随滑动速度的增加而增加。
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