之字形的
材料科学
热导率
石墨烯
超晶格
凝聚态物理
分子动力学
原子间势
纳米结构
从头算
电导率
化学物理
氮化硼
纳米技术
光电子学
计算化学
物理
复合材料
化学
几何学
数学
量子力学
作者
Alper Kınacı,Justin B. Haskins,Cem Sevik,Tahir Çağın
出处
期刊:Physical Review B
[American Physical Society]
日期:2012-09-06
卷期号:86 (11)
被引量:516
标识
DOI:10.1103/physrevb.86.115410
摘要
Chemical and structural diversity present in hexagonal boron nitride ((h-BN) and graphene hybrid nanostructures provide new avenues for tuning various properties for their technological applications. In this paper we investigate the variation of thermal conductivity ($\kappa$) of hybrid graphene/h-BN nanostructures: stripe superlattices and BN (graphene) dots embedded in graphene (BN) are investigated using equilibrium molecular dynamics. To simulate these systems, we have parameterized a Tersoff type interaction potential to reproduce the ab initio energetics of the B-C and N-C bonds for studying the various interfaces that emerge in these hybrid nanostructures. We demonstrate that both the details of the interface, including energetic stability and shape, as well as the spacing of the interfaces in the material exert strong control on the thermal conductivity of these systems. For stripe superlattices, we find that zigzag configured interfaces produce a higher $\kappa$ in the direction parallel to the interface than the armchair configuration, while the perpendicular conductivity is less prone to the details of the interface and is limited by the $\kappa$ of h-BN. Additionally, the embedded dot structures, having mixed zigzag and armchair interfaces, affects the thermal transport properties more strongly than superlattices. Though dot radius appears to have little effect on the magnitude of reduction, we find that dot concentration (50% yielding the greatest reduction) and composition (embedded graphene dots showing larger reduction that h-BN dot) have a significant effect.
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