材料科学
MXenes公司
聚丙烯腈
复合数
静电纺丝
纳米纤维
纳米技术
光电子学
能量收集
红外线的
可穿戴计算机
热的
摩擦电效应
热能
热导率
气凝胶
可穿戴技术
复合材料
光热治疗
织物
灵活性(工程)
功率密度
制作
表面能
电池(电)
纳米材料
热传导
作者
Ahmadreza Moradi,Piotr K. Szewczyk,Urszula Stachewicz
标识
DOI:10.1002/adma.202522098
摘要
ABSTRACT Developing multifunctional materials that combine efficient heat conduction, energy harvesting, sensing capability, and flexibility is crucial for next‐generation portable and wearable electronics. Here, exploiting the remarkable properties of Ti 3 C 2 T x MXene nanosheets, multifunctional polyacrylonitrile (PAN)‐MXene nanofibers and yarns are fabricated via a straightforward and scalable electrospinning process. Incorporation of MXenes enhances the thermal conductivity of individual PAN nanofibers, as measured by scanning thermal microscopy, and greatly increases the heat conduction capacity of composite yarns, showing a ∼22°C higher surface temperature recorded by infrared thermography. The composite nanofibers also exhibit strong passive heating capability, rapidly reaching up to 60°C under infrared irradiation. Furthermore, MXenes elevate the tribo‐negative character of PAN nanofibers, decreasing their surface potential to −360 mV and yielding a high triboelectric power density of 432.7 mW m −2 , approximately 25% higher than pristine PAN. Moreover, the produced composite yarns demonstrate reliable tactile‐sensing performance, detecting forces as low as 0.1 N. Altogether, these flexible and durable PAN‐MXene structures provide a promising route toward sustainable and energy‐autonomous electronic textiles, offering new opportunities in wearable electronics, soft robotics, and smart sensing systems.
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