纺织学报 ›› 2025, Vol. 46 ›› Issue (05): 41-48.doi: 10.13475/j.fzxb.20250104302
CHEN Xiao1, ZHAO Jizhong1,2, DONG Kai1,2(
)
摘要:
机电转化纤维(MECFs)是一类将新兴的接触或摩擦起电技术与传统的可穿戴纤维或纺织材料相结合,具有突出的自主式供电或自驱动传感功能的新型智能纤维材料。然而,MECFs的大面积制备和规模化应用受到其能量转化效率低和输出功率密度低等性能瓶颈的限制。为充分挖掘MECFs的性能潜力并发挥其在面向人体可穿戴应用中的优势,详细探讨了MECFs的电输出性能提升策略,包括材料选择与改性、结构设计、能量管理与优化;其中,聚合物材料本征性质是主导MECFs机电转化性能的关键因素之一,可以从化学、物理角度进行改性处理;MECFs的多维纤维或织物结构设计能够增加起电材料之间的有效接触面积,从而能够提升界面电荷转移量。同时,为满足人体表面长周期、可持续稳定供能需求,需对纤维进行低功耗、微型化能量管理,将MECFs的高压低流、高阻抗的交流输出形式转变为可穿戴电子设备所需要的稳压稳流、阻抗匹配的直流需求形式。最后,简要总结MECFs在自供能可穿戴传感技术中的应用并展望了其未来发展的趋势。MECFs的研究与应用目前正处于快速发展阶段,未来需结合材料改性、结构优化和能量管理等策略,推动其向高性能可穿戴供能或传感设备迈进。
中图分类号:
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