Jung Dahee, Su Shengyi, Syed Zoha H, Atilgan Ahmet, Wang Xingjie, Sha Fanrui, Lei Yifan, Gianneschi Nathan C, Islamoglu Timur, Farha Omar K
Department of Chemistry and International Institute of Nanotechnology, Northwestern University, Evanston, Illinois 60208, United States.
Chemical Sciences and Engineering Division, Argonne, National Laboratory, Lemont, Illinois 60439, United States.
ACS Appl Mater Interfaces. 2022 Apr 13;14(14):16687-16693. doi: 10.1021/acsami.2c01584. Epub 2022 Mar 30.
Polyoxometalates (POMs) are versatile materials for chemical catalysis due to their tunable acidity and rich redox properties. While POMs have attracted significant attention in homogeneous catalysis, challenges regarding aggregation and instability in solvents often prevent the wide implementation of POMs as heterogeneous catalysts. Therefore, the successful incorporation of a POM into a solid support, such as a polymer, is desirable for practical applications where unique functionalities of the POM combine with the advantages of the polymer. In this work, we showcase how polymers of intrinsic microporosity (PIMs) can serve as matrices for anchoring a pure inorganic Keggin-type POM (HPWO) to fabricate PIM-based composite materials. Specifically, we found that PIMs installed with amidoxime functionalities could successfully attach POMs (PW@PIM-1-AO) without self-segregation. Furthermore, we fabricated porous fibrous mats via electrospinning of the PIM-POM composites. Comprehensive characterization confirmed the integrity of the POM in the composite material. Following this, we demonstrated that the incorporated POMs in the composite fibers maintained their innate catalytic activity for the oxidative degradation of 2-chloroethyl ethyl sulfide, a sulfur mustard simulant, in the presence of hydrogen peroxide as the oxidant. Ultimately, our work highlights that PIM-based hybrid materials provide a potential route for implementing these reactive fiber mats into protective equipment.
多金属氧酸盐(POMs)因其可调节的酸度和丰富的氧化还原性质,是用于化学催化的多功能材料。虽然POMs在均相催化中已引起广泛关注,但在溶剂中存在的聚集和稳定性问题常常阻碍其作为多相催化剂的广泛应用。因此,将POM成功地掺入固体载体(如聚合物)中,对于POM的独特功能与聚合物优势相结合的实际应用来说是很有必要的。在这项工作中,我们展示了固有微孔聚合物(PIMs)如何作为基质来锚定纯无机的Keggin型POM(HPWO),以制备基于PIM的复合材料。具体而言,我们发现安装了偕胺肟官能团的PIMs能够成功地附着POMs(PW@PIM-1-AO)而不会发生自聚集。此外,我们通过对PIM-POM复合材料进行静电纺丝制备了多孔纤维毡。综合表征证实了复合材料中POM的完整性。在此之后,我们证明了复合纤维中掺入的POMs在以过氧化氢作为氧化剂的情况下,对硫芥模拟物2-氯乙基乙基硫醚的氧化降解保持其固有的催化活性。最终,我们的工作强调基于PIM的杂化材料为将这些反应性纤维毡应用于防护装备提供了一条潜在途径。