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用于快速芥子气解毒的本征微孔气凝胶反应性聚合物

Reactive Polymers of Intrinsic Microporous Aerogels for Rapid Mustard Gas Detoxification.

作者信息

Si Lirui, Zhu Jie, Tang Peixin, Newton Md All Amin, Si Yang, Yu Jianyong, Wang Xueli, Dai Zijian

机构信息

Shanghai Frontiers Science Center of Advanced Textiles, College of Textiles, Donghua University, Shanghai, 201620, China.

Innovation Center for Textile Science and Technology, Donghua University, Shanghai, 200051, China.

出版信息

Small. 2025 Jun;21(24):e2503608. doi: 10.1002/smll.202503608. Epub 2025 May 2.

DOI:10.1002/smll.202503608
PMID:40317986
Abstract

Polymers of intrinsic microporosity (PIMs) have broad application prospects in the detoxification of chemical warfare agents (CWAs) due to their unique pore structure, good tunable reactivity, and solution processability. However, its pore structure is relatively homogeneous, resulting in high resistance to mass transfer. Here, inspired by fractal structure in nature, a structure engineering strategy is proposed to develop 3D reactive nanofibrous aerogels featuring hierarchical porous structures to minimize mass transfer resistance. These aerogels are fabricated with amidoxime-modified PIM-1 (AO-PIM-1) nanofibers serving as building units and flexible SiO nanofibers acting as reinforcement. The macro/mesopores of amidoxime-modified PIM-1 nanofibrous aerogels (APAs) originating from freeze-shaping and electrospinning provide interconnected channels for the diffusion of CWAs, and the intrinsic micropores of AO-PIM-1 can effectively trap and anchor adsorbate molecules. In addition, the reactivity of the APAs can be activated by chlorine bleaching. This process forms an N-chlorine structure, which effectively oxidizes the adsorbed CWAs simulant 2-chloroethyl ethyl sulfide (CEES) by APAs, converting them into non-toxic products. The resulting aerogels have the properties of ultralight weight (8 mg cm), reversible compression strain of 60%, and repeatable sulfur mustard decontamination (half-life of 1.27 min). These characteristics indicate significant potential for the use in protective materials against vesicant CWAs.

摘要

固有微孔聚合物(PIMs)因其独特的孔结构、良好的可调反应性和溶液可加工性,在化学战剂(CWA)解毒方面具有广阔的应用前景。然而,其孔结构相对均匀,导致传质阻力较高。在此,受自然界分形结构的启发,提出了一种结构工程策略,以开发具有分级多孔结构的三维反应性纳米纤维气凝胶,从而将传质阻力降至最低。这些气凝胶由偕胺肟改性的PIM-1(AO-PIM-1)纳米纤维作为构建单元和柔性SiO纳米纤维作为增强材料制成。偕胺肟改性的PIM-1纳米纤维气凝胶(APA)的大孔/中孔源自冷冻成型和静电纺丝,为CWA的扩散提供了相互连接的通道,而AO-PIM-1的固有微孔可以有效地捕获和锚定吸附质分子。此外,APA的反应性可以通过氯漂白来激活。这个过程形成了一种N-氯结构,它能有效地氧化APA吸附的CWA模拟物2-氯乙基乙基硫醚(CEES),将其转化为无毒产物。所得气凝胶具有超轻重量(8 mg/cm)、60%的可逆压缩应变和可重复的芥子气去污性能(半衰期为1.27分钟)。这些特性表明其在用于对抗糜烂性CWA的防护材料方面具有巨大潜力。

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