Center for Phononics and Thermal Energy Science, School of Physics Science and Engineering, and Institute for Advanced Study, Tongji University, Shanghai 200092, People's Republic of China.
Nanoscale. 2017 Sep 28;9(37):14208-14214. doi: 10.1039/c7nr04944g.
From the mathematic category of surface Gaussian curvature, carbon allotropes can be classified into three types: zero curvature, positive curvature, and negative curvature. By performing Green-Kubo equilibrium molecular dynamics simulations, we found that surface curvature has a significant impact on the phonon vibration and thermal conductivity (κ) of carbon crystals. When curving from zero curvature to negative or positive curvature structures, κ is reduced by several orders of magnitude. Interestingly, we found that κ of negatively curved carbon crystals exhibits a monotonic dependence on curvature. Through phonon mode analysis, we show that curvature induces remarkable phonon softening in phonon dispersion, which results in the reduction of phonon group velocity and flattening of phonon band structure. Furthermore, the curvature was found to induce phonon mode hybridization, leading to the suppression of phonon relaxation time. Our study provides physical insight into thermal transport in curvature materials, and will be valuable in the modulation of phonon activity through surface curvature.
从曲面高斯曲率的数学范畴来看,碳的同素异形体可分为三类:零曲率、正曲率和负曲率。通过进行格林-库伯平衡分子动力学模拟,我们发现表面曲率对碳晶体的声子振动和热导率(κ)有着显著的影响。当从零曲率弯曲到负曲率或正曲率结构时,κ会降低几个数量级。有趣的是,我们发现负曲率碳晶体的κ与曲率呈单调关系。通过声子模式分析,我们表明曲率在声子色散中引起了显著的声子软化,从而降低了声子群速度并使声子能带结构变平。此外,曲率还会引起声子模式杂化,从而抑制声子弛豫时间。本研究为曲率材料中的热输运提供了物理见解,并将有助于通过表面曲率来调节声子活动。