材料科学
热导率
石墨
复合数
碳纳米管
复合材料
过冷
相变
碳纤维
相(物质)
纳米技术
相变材料
纳米管
化学工程
传热
工程物理
化学
热力学
工程类
有机化学
物理
作者
Iskandar Kholmanov,Jae‐Hyun Kim,Eric Ou,Rodney S. Ruoff,Li Shi
出处
期刊:ACS Nano
[American Chemical Society]
日期:2015-11-03
卷期号:9 (12): 11699-11707
被引量:331
标识
DOI:10.1021/acsnano.5b02917
摘要
Continuous ultrathin graphite foams (UGFs) have been actively researched recently to obtain composite materials with increased thermal conductivities. However, the large pore size of these graphitic foams has resulted in large thermal resistance values for heat conduction from inside the pore to the high thermal conductivity graphitic struts. Here, we demonstrate that the effective thermal conductivity of these UGF composites can be increased further by growing long CNT networks directly from the graphite struts of UGFs into the pore space. When erythritol, a phase change material for thermal energy storage, is used to fill the pores of UGF-CNT hybrids, the thermal conductivity of the UGF-CNT/erythritol composite was found to increase by as much as a factor of 1.8 compared to that of a UGF/erythritol composite, whereas breaking the UGF-CNT bonding in the hybrid composite resulted in a drop in the effective room-temperature thermal conductivity from about 4.1 ± 0.3 W m(-1) K(-1) to about 2.9 ± 0.2 W m(-1) K(-1) for the same UGF and CNT loadings of about 1.8 and 0.8 wt %, respectively. Moreover, we discovered that the hybrid structure strongly suppresses subcooling of erythritol due to the heterogeneous nucleation of erythritol at interfaces with the graphitic structures.
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