论文标题
石墨烯纳米弹簧的机械,导热性和机电特性的探索
Exploration of mechanical, thermal conductivity and electromechanical properties of graphene nanoribbon springs
论文作者
论文摘要
最新的实验进步[liu \ textit {等,NPJ 2D材料和应用},2019年,\ textbf {3},23,23]提出了石墨烯纳米替伯邦弹簧(GNR)的设计,以实质上增强了原始石墨烯的可力性。 GNRS是一种周期性起伏的石墨烯纳米替宾,其中起伏是窦,半圆或马蹄形的。除此之外,GNRS的几何形状取决于设计参数,例如音高的长度和振幅,厚度和连接角。由于参数对所产生的物理特性的影响很昂贵且复杂,因此我们使用分子动力学模拟探讨了GNR的机械,热和机电特性。我们的结果表明,GNRS(GNRH)的马蹄形设计可以明显胜过石墨烯基里加米(Kirigami)的设计。还通过开发多尺度建模来检查GNR的热导率,这表明沿这些纳米结构的热传输可以有效调节。我们发现,GNR和GNRH的拉伸拉伸不会产生任何压电极化。弯曲诱导的杂交变化导致柔韧性极化,其中相应的挠性系数比石墨烯高25美元\%$。我们的结果为GNR的关键物理特性提供了全面的愿景,并可能有助于利用石墨烯的出色物理来设计新型的可拉伸纳米设计。
Recent experimental advances [Liu \textit{et al., npj 2D Materials and Applications}, 2019, \textbf{3}, 23] propose the design of graphene nanoribbon spring (GNRS) to substantially enhance the stretchability of pristine graphene. GNRS is a periodic undulating graphene nanoribbon, where undulations are of sinus or half-circles or horseshoe shapes. Besides those, GNRS geometry depends on design parameters, like pitch's length and amplitude, thickness and joining angle. Because of the fact that parametric influence on the resulting physical properties are expensive and complicated to be examined experimentally, we explore the mechanical, thermal and electromechanical properties of GNRS using molecular dynamics simulations. Our results demonstrate that horseshoe shape design of GNRS (GNRH) can distinctly outperform the graphene kirigami design concerning the stretchability. The thermal conductivity of GNRS were also examined by developing a multiscale modeling, which suggests that the thermal transport along these nanostructures can be effectively tuned. We found that however, the tensile stretching of GNRS and GNRH does not yield any piezoelectric polarization. The bending induced hybridization change results in a flexoelectric polarization, where the corresponding flexoelectric coefficient is $25\%$ higher than graphene. Our results provide a comprehensive vision to the critical physical properties of GNRS and may help to employ the outstanding physics of the graphene to design novel stretchable nanodevices.