Zuncheng Hu (18342633)Xiucai Sun (5979650)Xinshi Zhang (381701)Xiangzheng Jia (9942676)Xueting Feng (4723359)Mingwei Cui (18342636)Enlai Gao (2882204)Liu Qian (95587)Xin Gao (14001)Jin Zhang (53297)
With impressive individual properties, carbon nanotubes (CNTs) show great potential in constructing high-performance fibers. However, the tensile strength of as-prepared carbon nanotube fibers (CNTFs) by floating catalyst chemical vapor deposition (FCCVD) is plagued by the weak intertube interaction between the essential CNTs. Here, we developed a chlorine (Cl)/water (H2O)-assisted length furtherance FCCVD (CALF-FCCVD) method to modulate the intertube interaction of CNTs and enhance the mechanical strength of macroscopic fibers. The CNTs acquired by the CALF-FCCVD method show an improvement of 731% in length compared to that by the conventional iron-based FCCVD system. Moreover, CNTFs prepared by CALF-FCCVD spinning exhibit a high tensile strength of 5.27 ± 0.27 GPa (4.62 ± 0.24 N/tex) and reach up to 5.61 GPa (4.92 N/tex), which outperforms most previously reported results. Experimental measurements and density functional theory calculations show that Cl and H2O play a crucial role in the furtherance of CNT growth. Cl released from the decomposition of methylene dichloride greatly accelerates the growth of the CNTs; H2O can remove amorphous carbon on the floating catalysts to extend their lifetime, which further modulates the growth kinetics and improves the purity of the as-prepared fibers. Our design of the CALF-FCCVD platform offers a powerful way to tune CNT growth kinetics in direct spinning toward high-strength CNTFs.
Zuncheng HuXiucai SunXinshi ZhangXiangzheng JiaCaihong FengMingwei CuiEnlai GaoQian LiuXin GaoJin Zhang
Shen ZhuChing‐Hua SuS. L. LehoczkyI. MunteleD. Ila
Jaegeun LeeTeawon KimYeonsu JungKihoon JungJunbeom ParkDongmyeong LeeHyeon Su JeongJun Yeon HwangChong Rae ParkKun‐Hong LeeSeung Min Kim
Korhan ŞahinNicholas A. FasanellaIoannis ChasiotisKevin M. LyonsBradley A. NewcombManjeshwar G. KamathHan Gi ChaeSatish Kumar
Lianxi ZhengGengzhi SunZhaoyao Zhan