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通过理解聚合物-金属有机框架(MOF)相互作用扩展聚合物-MOF凝胶的设计空间

Expanding the Design Space of Polymer-Metal Organic Framework (MOF) Gels by Understanding Polymer-MOF Interactions.

作者信息

Verma Prince, Bannon Mark S, Kuenen Mara K, Raj Sanoj, Dhakal Ankit, Stone Kevin, Nichols Asa W, Machan Charles W, Colón Yamil J, Letteri Rachel A, Giri Gaurav

机构信息

Department of Chemical Engineering, University of Virginia, Charlottesville, Virginia 22903, United States.

Department of Chemical and Biomolecular Engineering, University of Notre Dame, Notre Dame ,Indiana46556, United States.

出版信息

Chem Mater. 2024 Jul 25;36(19):9356-9369. doi: 10.1021/acs.chemmater.4c00112. eCollection 2024 Oct 8.

Abstract

The fabrication of polymer-MOF composite gels holds great potential to provide emergent properties for drug delivery, environmental remediation, and catalysis. To leverage the full potential of these composites, we investigated how the presence and chemistry of polymers impact MOF formation within the composites and, in turn, how MOFs impact polymer gelation. We show that polymers with a high density of strongly metal-binding carboxylic acids inhibit MOF formation; however, reducing the density of carboxylic acids or substituting them with weaker metal-binding hydroxyl groups permits both MOF formation and gelation within composites. Preparing composites with poly(ethylene glycol) (PEG), which does not bind MOF zirconium (Zr)-oxo clusters, and observing gelation suggests that MOFs can entrap polymer chains to create cross-links in addition to cross-linking them through polymer-Zr-oxo interactions. Both simulations and experiments show composite hydrogels formed with poly(vinyl alcohol) (PVA) to be more stable than those made with PEG, which can reptate through MOF pores upon heating. We demonstrate the generalizability of this composite formation process across different Zr-based MOFs (UiO-66, NU-901, UiO-67, and MOF-525) and by spin-coating gels into conformable films. PVA-UiO-66 composite hydrogels demonstrated high sorption and sustained release of methylene blue relative to the polymer alone (3× loading, 28× slower release), and PVA-MOF-525 composite hydrogels capably sorb the therapeutic peptide Angiotensin 1-7. By understanding the influence of polymer-MOF interactions on the structure and properties of composite gels, this work informs and expands the design space of this emerging class of materials.

摘要

聚合物-金属有机框架(MOF)复合凝胶的制备在药物递送、环境修复和催化等领域展现出巨大潜力,有望带来新的性能。为充分发挥这些复合材料的潜力,我们研究了聚合物的存在及其化学性质如何影响复合材料中MOF的形成,以及MOF如何反过来影响聚合物凝胶化。我们发现,具有高密度强金属结合羧酸的聚合物会抑制MOF的形成;然而,降低羧酸密度或将其替换为较弱金属结合的羟基,则可使复合材料中同时发生MOF形成和凝胶化。用不与MOF锆(Zr)-氧簇结合的聚乙二醇(PEG)制备复合材料并观察到凝胶化现象,这表明MOF除了通过聚合物-Zr-氧相互作用使聚合物交联外,还能捕获聚合物链以形成交联。模拟和实验均表明,由聚乙烯醇(PVA)形成的复合水凝胶比由PEG形成的更稳定,后者在加热时可通过MOF孔道蠕动。我们通过旋涂凝胶形成贴合薄膜,证明了这种复合形成过程在不同锆基金属有机框架(UiO-66、NU-901、UiO-67和MOF-525)中的通用性。相对于单独的聚合物,PVA-UiO-66复合水凝胶对亚甲基蓝具有高吸附性和缓释性能(负载量提高3倍,释放速度慢28倍),且PVA-MOF-525复合水凝胶能够吸附治疗性肽血管紧张素1-7。通过了解聚合物-MOF相互作用对复合凝胶结构和性能的影响,这项工作为这一新兴材料类别的设计空间提供了信息并进行了拓展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dc51/11467831/ab401c9dfb48/cm4c00112_0001.jpg

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