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通过控制气流和后合成处理制备超强碳纳米管纤维

Super-Strong Carbon Nanotube Fibers Achieved by Engineering Gas Flow and Postsynthesis Treatment.

作者信息

Oh Eugene, Cho Hyunjung, Kim Juhan, Kim Ji Eun, Yi Youngjin, Choi Junwon, Lee Haemin, Im Ye Hoon, Lee Kun-Hong, Lee Won Jae

机构信息

LG Chem R&D Campus Daejeon, 188 Munji-ro, Yuseong-gu, Daejeon 34122, Republic of Korea.

Department of Chemical Engineering, Pohang University of Science & Technology, 77 Cheongam-Ro, Nam-Gu, Pohang, Gyeongbuk 37673, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2020 Mar 18;12(11):13107-13115. doi: 10.1021/acsami.9b19861. Epub 2020 Mar 3.

Abstract

Carbon nanotube fibers (CNTFs) are directly spun from a floating-catalyst chemical vapor deposition apparatus using gas-phase carbon and an iron nanocatalyst. The essential synthesis and post-treatment factors that affect the strength of CNTFs are investigated to obtain CNTFs with greater strength than those of any previously reported high-performance fibers. The key factors optimized included the degree of rotational flow inside the reactor, the ratio of the starting materials, and the postsynthesis treatment conditions. The formation of rotational gas flow inside the reactor was confirmed by computational fluid dynamics simulations, and the feed ratio of the starting materials was optimized through response surface methodology. In addition, a reproducible and highly efficient postsynthesis treatment method was established. Pristine CNTFs with a high specific strength (SS) (average 2.2 N/tex, max. 2.3 N/tex) were synthesized through decreased rotational flow and optimization of the CNTF synthesis conditions. To improve the SS of the CNTFs further, we adopted an acid wet-stretching method that included washing and heat treatment. This drastically increased the SS of the CNTFs (average 5.5 N/tex, max. 6.4 N/tex) because of the decrease in the volume of the pores between the CNT bundles.

摘要

碳纳米管纤维(CNTFs)是使用气相碳和铁纳米催化剂从浮动催化剂化学气相沉积装置直接纺丝而成。研究了影响碳纳米管纤维强度的关键合成及后处理因素,以获得强度高于此前报道的任何高性能纤维的碳纳米管纤维。优化的关键因素包括反应器内的旋转流程度、原料比例和合成后处理条件。通过计算流体动力学模拟确认了反应器内旋转气流的形成,并通过响应面法优化了原料的进料比。此外,还建立了一种可重复且高效的合成后处理方法。通过降低旋转流并优化碳纳米管纤维的合成条件,合成了具有高比强度(SS)(平均2.2 N/tex,最大2.3 N/tex)的原始碳纳米管纤维。为了进一步提高碳纳米管纤维的比强度,我们采用了包括洗涤和热处理在内的酸湿拉伸法。由于碳纳米管束之间孔隙体积的减小,这极大地提高了碳纳米管纤维的比强度(平均5.5 N/tex,最大6.4 N/tex)。

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