材料科学
导电体
多孔性
纳米纤维
纳米技术
储能
纳米线
膜
摩擦电效应
压力降
过滤(数学)
多孔介质
电导率
下降(电信)
化学工程
静电纺丝
导线
工艺工程
饮用水净化
超级电容器
能量转换
电极
作者
Xiaoxue Yao,Zhenwen Zhang,Wei Deng,Chuhan Feng,Qili Xu,Wenzhu Lin,Zehua Peng,Yang Cao,Guo Wang,Bee Luan Khoo,Steven Wang
标识
DOI:10.1002/advs.202508650
摘要
Emerging conductive porous materials hold remarkable promise for Joule-heating applications like electothermal filtration, smart textiles, and energy management due to their porous and conductive synergy. However, their development is constrained by a design trade-off between achieving high porosity for efficient flow transmission and maintaining a conductive network for effective charge transport. To overcome this, a bridged conductive nanofibrous membrane (BCNM) by linking polypyrrole-coated nanofibers via self-assembled polypyrrole nanowires is developed. This dual-state network establishes continuous electron pathways while preserving multiscale porous channels, orchestrating air permeation, particulate capture, and electrothermal sterilization for all-in-one air purification. Leveraging this synergy, BCNM captures 98.79% of >0.3 µm particles under an ultra-low pressure drop of 76 Pa and instantaneously self-heats to 100 °C at low power to sterilize 99.49% of airborne bacteria. These performances compare favorably with leading conductive porous materials in both filtration performance and energy economy. A proof-of-concept solar-powered purifier incorporating the BCNM outperforms existing purification technologies in terms of filtration, sterilization, energy efficiency, and cost. This work offers an innovative material-structure-function paradigm for developing energy-interactive porous materials, with broad potential in smart filtration, biomedical protection, and sustainable energy systems.
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