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钛辅助石墨化法制备轻质高导热石墨泡沫

Ti assisted graphitization approach for the preparation of graphite foam with light weight and high thermal conductivity.

作者信息

Guo Xing, Liu Yaxiong, Tian Xiaodong, Tao Zechao, Yan Xi, Liu Zhanjun

机构信息

CAS Key Laboratory of Carbon Materials, Institute of Coal Chemistry, Chinese Academy of Sciences Taiyuan 030001 China

Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences Beijing 100049 China.

出版信息

RSC Adv. 2023 Feb 20;13(9):6075-6086. doi: 10.1039/d2ra06164c. eCollection 2023 Feb 14.

Abstract

The state-of-the-art graphite foams (GFs) are afflicted by large bulk density and low thermal conductivity, restricting their practical application. To alleviate the above problem, herein, an issue-oriented scheme, , an titanium (Ti) assisted catalytic graphitization strategy was proposed by using AR mesophase pitch (ARMP) as a precursor. In a typical preparation process, the mixture of Ti and ARMP underwent a pressurized foam, carbonization, and graphitization procedure successively to obtain GFs. The results showed that the Ti content played an important role in the development of the graphitic microcrystal structure due to the catalytic graphitization of Ti. According to the XRD analysis and molecular dynamics (MD) simulation, we confirmed that Ti promoted graphitization mainly by the generation of TiC during the high-temperature graphitization. The GFs obtained with 11 wt% Ti exhibited the most perfect graphitic crystal structure, with the highest graphitization degree. Thanks to the improved graphitization degree, the thermal conductivity of GFs increased with the added amount of Ti increasing from 0 to 11 wt%. The highest thermal conductivity of 60.8 W m K and the low bulk density of 0.36 g cm could be achieved when the addition amount of Ti was 11 wt%. Meanwhile, apart from the optimization of thermal conductivity and bulk density, the compressive strength was also enhanced as the amount of Ti increased from 0 to 15 wt%. Our work provided a facile and scalable approach to preparing GFs with low density and high thermal conductivity.

摘要

目前最先进的石墨泡沫(GFs)存在堆积密度大、热导率低的问题,限制了它们的实际应用。为了缓解上述问题,在此提出了一种面向问题的方案,即采用AR中间相沥青(ARMP)作为前驱体的钛(Ti)辅助催化石墨化策略。在典型的制备过程中,Ti与ARMP的混合物依次经过加压发泡、碳化和石墨化过程以获得GFs。结果表明,由于Ti的催化石墨化作用,Ti含量在石墨微晶结构的发展中起着重要作用。根据XRD分析和分子动力学(MD)模拟,我们证实Ti主要通过在高温石墨化过程中生成TiC来促进石墨化。含11 wt% Ti的GFs表现出最完美的石墨晶体结构,石墨化程度最高。由于石墨化程度的提高,GFs的热导率随着Ti添加量从0增加到11 wt%而增加。当Ti的添加量为11 wt%时,可实现最高热导率60.8 W m K和最低堆积密度0.36 g cm 。同时,除了热导率和堆积密度的优化外,随着Ti含量从0增加到15 wt%,抗压强度也得到了提高。我们的工作为制备低密度、高导热率的GFs提供了一种简便且可扩展的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f1e8/9939979/156ac39e9cbf/d2ra06164c-f1.jpg

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