材料科学
兴奋剂
碳纳米管
导电体
纳米技术
电阻率和电导率
氮气
灵活性(工程)
电导率
杂原子
碳纤维
化学工程
光电子学
电磁屏蔽
铜
钼
纳米管
载流子
工作(物理)
纤维
纳米材料
碳纳米管场效应晶体管
作者
Tongzhao Sun,Junze Huang,Bowen Yu,Yanyan Zhao,Xiaocang Han,Zijian Wang,Xinshi Zhang,Xiangyang LI,X. Zhao,Jinhui Yang,Lixing Kang,Yuanlong Shao,Muqiang Jian,Jin Zhang
标识
DOI:10.1038/s41467-026-69498-7
摘要
Lightweight and highly conductive carbon nanotube fibers (CNTFs) are attractive for flexible electronics, yet their performance remains constrained by inefficient charge transport. Here we report a synergistic doping strategy that integrates in-plane nitrogen doping with endohedral molybdenum pentachloride (MoCl5) incorporation to produce CNTFs with exceptional electrical properties and environmental durability. Nitrogen doping creates sidewall defect sites that promote MoCl5 encapsulation, yielding a strong charge-transfer effect and markedly increased carrier density. The resulting fibers achieve a high specific electrical conductivity of 14166 S m2 kg−1 and a current carrying capacity of 1241 A mm−2, surpassing copper by 115% and 28%, respectively. The CNTFs also exhibit high flexibility and environmental stability, retaining performance under thermal, mechanical, and solvent stresses. When woven into textiles, they deliver an electromagnetic shielding effectiveness of 92.7 dB (8.2-12.4 GHz). This work establishes a scalable doping approach for fabricating ultrahigh-conductivity CNTFs for advanced flexible electronics. The authors propose a synergistic nitrogen and endohedral MoCl5 doping strategy that produces lightweight carbon nanotube fibers with high specific electrical conductivity surpassing copper, while maintaining excellent environmental stability.
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