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Thermal Transport in 3D Pillared CNT-graphene Nanostructures

机译:3D柱柱状CNT-石墨烯纳米结构的热输送

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Thermal transport in two types of 3D pillared SWCNT-graphene nanostructures, which combine graphene floors and (6,6) armchair single-walled carbon nanotube (SWCNT) columns is studied by measuring both in-plane and out-of-plane thermal conductivity using molecular dynamics (MD) simulations with the AIREBO interatomic potential. Interpillar distance and pillar height dependency of thermal conductivity in 3D pillared SWCNT-graphene super-structure are examined at various temperatures (300K, 600K, 900K, and 1200K). It is shown that the thermal conductivity of these 3D nanostructures can be readily tuned: the in-plane thermal conductivity increases with increasing interpillar distance while the out of plane thermal conductivity increases with increasing pillar height and decreasing interpillar distance. The highest in-plane thermal conductivity obtained is 40 W/m-K for 3D superstructure with Type 1 unit cell with a 3.3 nm interpillar distance and 1.2 nm pillar height at room temperature. The highest out of plane thermal conductivity is 6.8 W/m-K for 3D super-structure with Type 1 unit cell which has 2.1 nm interpillar distance and 4.2 nm pillar height. Later, these values are compared with the thermal conductivity values of pure (6,6) SWCNT and single graphene layer, which are calculated using MD with the same interatomic potential.
机译:通过使用使用内部和外平面的导热率,研究了两种类型的3D柱状SWCNT-石墨烯纳米结构,其结合了石墨烯楼层和(6,6)扶手椅单壁碳纳米管(SWCNT)柱。使用随着Airebo Interatatomic潜力的分子动力学(MD)模拟。在各种温度(300K,600K,900K和1200K)上检查3D柱状SWCNT-石墨烯超结构中导热率的内部距离和柱高度依赖性。结果表明,这些3D纳米结构的导热率可以容易地调整:在增加内插距离增加时,面内导热率增加,而平面导热率随着柱的高度的增加和内插距离而增加。获得的最高面内导热系数为40W / m k,用于3D上部结构,带有1型单元电池,室温下的3.3nm内距距离和1.2nm柱高。具有6.8W / m-K的最高飞机导热率为3D超级结构,具有1型单元电池,具有2.1nm内隙距离和4.2nm柱高度。稍后,将这些值与纯(6,6)SWCNT和单个石墨烯层的导热值进行比较,其使用具有相同的内部潜力的MD计算。

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