碳纳米管
材料科学
结晶
色散(光学)
电磁屏蔽
流变学
复合材料
粘度
纳米技术
相(物质)
纳米管
纳米复合材料
电阻率和电导率
捆绑
纳米流体学
渗流阈值
工作(物理)
流变仪
剪切流
作者
Yuanhui Wang,Kaixiang Pang,Linlin Zhao,Jiwei Zhang,Yi Zhang,Yaxuan Zhao,Chunhong Gong,Shuaishuai Zhou,Jingwei Zhang
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2025-11-25
卷期号:19 (3): 94908280-94908280
标识
DOI:10.26599/nr.2025.94908280
摘要
Single-walled carbon nanotubes (SWCNTs) have promising applications in flexible electromagnetic interference (EMI) shielding materials owing to their electrical and mechanical properties. However, their macroscopic performance has long been constrained by bundle aggregation and processing-induced structural damage. Conventional turbulent-based dispersion methods inevitably trade dispersion efficiency for structural integrity, resulting in a long-standing processing bottleneck. Here, we propose a novel solvent crystallization-induced directional dispersion (SCIDD) strategy, which engineers a rheological phase transition to couple shear force direction with nanotube debundling orientation. Temperature-controlled solvent crystallization along SWCNTs surfaces increases viscosity and drives a turbulent-to-laminar transition, thereby enabling dispersion of ultralong SWCNTs bundles under aligned shear conditions. Computational fluid dynamics and in situ electrical measurements confirm rheological phase transition and flow induced SWCNTs orientation-establishing the mechanistic link between crystallization, rheological phase transition, and non-destructive dispersion. SCIDD has achieved a high-concentration slurry (1 wt%) that maintains stability for over 10 months, resulting in the production of ultralong SWCNTs (mean aspect ratio ~ 1600; ID/IG = 0.012). This significant advancement enables the creation of high-performance freestanding films that exhibit high conductivity (500 S cm-1), specific shielding effectiveness (SSE/t) up to 47762 dB cm2 g-1. This work resolves the longstanding efficiency–integrity dilemma in SWCNT processing while offering a scalable, green route to harness the intrinsic properties of one-dimensional nanocarbons for advanced electromagnetic and flexible electronic applications.
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