论文标题

通过增加有效管的贡献,同时增强了碳纳米管纤维的坚韧,破裂工作和导热率

Simultaneously Enhanced Tenacity, Rupture Work, and Thermal Conductivity of Carbon Nanotubes Fibers by Increasing the Effective Tube Contribution

论文作者

Zhang, Xiao, De Volder, Michael, Zhou, Wenbin, Issman, Liron, Wei, Xiaojun, Kaniyoor, Adarsh, Portas, Jeronimo Terrones, Smail, Fiona, Wang, Zibo, Wang, Yanchun, Liu, Huaping, Zhou, Weiya, Elliott, James, Xie, Sishen, Boies, Adam

论文摘要

尽管单个碳纳米管(CNT)作为聚合物链的成分优越,但由于缺乏合成方法,CNT纤维(CNTF)的机械和热性能仍然不如商业合成纤维,因此在超级结构中有效地嵌入CNT。传统技术在机械增强方面的应用导致目标特性的温和改善,同时充其量在其他方面达到了平等。在这项工作中,开发了一种双绘画技术,以变形,不断地生长CNTF并重新排列中尺度和纳米级形态中的成分CNT。因此,可以共同改进所得CNTF的机械和热能性能,并以特定的强度(坚韧)$ \ rm \ sim3.30 \,n \,tex^{ - 1} $同时达到最高性能, $ \ rm \ sim354 \,w \,m^{ - 1} \,k^{ - 1} $,尽管从商业低晶状体材料开始($ i {\ rm_g}:i {\ rm_d} \ sim5 $)。处理后的CNTF比可比的碳纤维,Zylon,Dyneema和Kevlar更通用。此外,基于用原位拉伸拉曼测量的单个CNT的载荷转移效率的证据,我们发现对财产增强的主要贡献者是(1)承载载荷CNT捆绑包的比例增加,以及(2)附着在这些捆绑包上的管子的有效长度的扩展。

Although individual carbon nanotubes (CNTs) are superior as constituents to polymer chains, the mechanical and thermal properties of CNT fibers (CNTFs) remain inferior to commercial synthetic fibers due to the lack of synthesis methods to embed CNTs effectively in superstructures. The application of conventional techniques for mechanical enhancement resulted in a mild improvement of target properties while achieving parity at best on others. In this work, a Double-Drawing technique is developed to deform continuously grown CNTFs and rearrange the constituent CNTs in both mesoscale and nanoscale morphology. Consequently, the mechanical and thermal properties of the resulting CNTFs can be jointly improved, and simultaneously reach their highest performances with specific strength (tenacity) $\rm\sim3.30\,N\,tex^{-1}$, work of rupture $\rm\sim70\,J\,g^{-1}$, and thermal conductivity $\rm\sim354\,W\,m^{-1}\,K^{-1}$, despite starting from commercial low-crystallinity materials ($I{\rm_G}:I{\rm_D}\sim5$). The processed CNTFs are more versatile than comparable carbon fiber, Zylon, Dyneema, and Kevlar. Furthermore, based on evidence of load transfer efficiency on individual CNTs measured with In-Situ Stretching Raman, we find the main contributors to property enhancements are (1) the increased proportion of load-bearing CNT bundles and (2) the extension of effective length of tubes attached on these bundles.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源