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用于有毒有机磷酸酯去污的金属氢氧化物/聚合物纺织品:润湿性、催化活性及聚集效应的深入研究

Metal Hydroxide/Polymer Textiles for Decontamination of Toxic Organophosphates: An Extensive Study of Wettability, Catalytic Activity, and the Effects of Aggregation.

作者信息

Dwyer Derek B, Liu Jian, Gomez Jasmine C, Tovar Trenton M, Davoodabadi Ali, Bernier William E, DeCoste Jared B, Jones Wayne E

机构信息

Binghamton University State University of New York , 4400 Vestal Parkway East , Binghamton 13902 , New York , United States.

Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston 60208 , Illinois , United States.

出版信息

ACS Appl Mater Interfaces. 2019 Aug 28;11(34):31378-31385. doi: 10.1021/acsami.9b10440. Epub 2019 Aug 15.

Abstract

Electrospun nanofibers (NFs) incorporated with catalytically active components have gained significant interest in chemical protective clothing. This is because of the desirable properties of the NFs combined with decontamination capability of the active component. Here, a series of metal hydroxide catalysts Ti(OH), Zr(OH), and Ce(OH) were incorporated into three different polymer NF systems. These new polymer/metal hydroxide composite NFs were then evaluated for their catalytic activity against a nerve agent simulant. Two methods were utilized to incorporate the metal hydroxides into the NFs. Method one used direct incorporation of Ti(OH), Zr(OH), and Ce(OH) catalysts, whereas method two employed incorporation of Ti(OH) via a precursor molecule. Composite NFs prepared via method one resulted in greatly improved reaction rates over the respective pure metal hydroxides due to reduced aggregation of catalysts, with polymer/Ce(OH) composite NFs having the fastest reaction rates out of method one materials. Interestingly, composite samples prepared by method two yielded the fastest reaction rates overall. This is because of the homogeneous distribution of the metal hydroxide catalyst throughout the NF. This homogeneous distribution created a hydroxyl-decorated NF surface with a greater number of exposed active sites for catalysis. The hydroxyl-decorated NF surface also resulted in an unexpected highly wettable composite NF, which also was found to contribute to the observed reaction rates. These results are not only promising for applications in chemical protective clothing but also show great potential for application in areas which need highly wettable membrane materials. This includes areas such as separators, antifouling membranes, and certain medical applications.

摘要

含有催化活性成分的电纺纳米纤维(NFs)在化学防护服领域引起了广泛关注。这是因为纳米纤维具有理想的性能,同时活性成分具有去污能力。在此,将一系列金属氢氧化物催化剂Ti(OH)、Zr(OH)和Ce(OH)掺入三种不同的聚合物纳米纤维体系中。然后评估这些新型聚合物/金属氢氧化物复合纳米纤维对神经毒剂模拟物的催化活性。采用两种方法将金属氢氧化物掺入纳米纤维中。方法一直接掺入Ti(OH)、Zr(OH)和Ce(OH)催化剂,而方法二则通过前驱体分子掺入Ti(OH)。通过方法一制备的复合纳米纤维由于催化剂聚集减少,其反应速率比相应的纯金属氢氧化物有了显著提高,其中聚合物/Ce(OH)复合纳米纤维在方法一的材料中反应速率最快。有趣的是,通过方法二制备的复合样品总体上反应速率最快。这是因为金属氢氧化物催化剂在整个纳米纤维中均匀分布。这种均匀分布形成了一个羟基修饰的纳米纤维表面,具有更多暴露的催化活性位点。羟基修饰的纳米纤维表面还导致了一种意外的高润湿性复合纳米纤维,这也被发现有助于观察到的反应速率。这些结果不仅在化学防护服应用方面很有前景,而且在需要高润湿性膜材料的领域也显示出巨大的应用潜力。这包括隔膜、防污膜和某些医疗应用等领域。

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