微粒
过滤(数学)
材料科学
吸附
气凝胶
化学工程
沉积(地质)
粒子(生态学)
纤维素
Zeta电位
空气过滤器
纳米技术
表面改性
分散性
悬挂(拓扑)
空气净化
比表面积
粒径
纳米颗粒
密度泛函理论
生物量(生态学)
表面粗糙度
表面电荷
生物污染
空气过滤
水处理
作者
Han Han,Qi Zhang,Xiaobin Wei,Jincan Zhang,Hui Wang,Rujie Wang,Hetang Wang
摘要
ABSTRACT Particulate matter pollution poses a threat to public health, necessitating the development of high‐efficiency, sustainable air filters. Bacterial cellulose (BC) aerogels are promising candidates; however, achieving high filtration efficiency can increase air resistance. We present a surface functionalization‐guided strategy for the precise tuning of aerogel surface groups to alter particle capture behavior and improve filtration performance. Using γ‐aminopropyltriethoxysilane (KH550) as a model silane precursor, we demonstrated enhanced electrostatic adsorption and the formation of dendritic deposition patterns that improved the capture of inhalable particulate matter (PM 2.5 ). The BC‐KH550 aerogels exhibited outstanding filtration efficiency (>99%) while maintaining robust mechanical properties and stability under humid conditions. Theoretical simulations revealed that the enhanced electrostatic interactions following surface modification significantly influenced filtration performance, revealing a synergistic effect between surface functional groups and PM. This advanced the fundamental understanding of the structure‐function relationship of modified BC aerogels and provided a blueprint for designing next‐generation sustainable air filters with tunable surfaces.
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