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湿度诱导的自振荡和自修复超交联金属有机多面体膜

Humidity-Induced Self-Oscillating and Self-Healing Hypercrosslinked Metal-Organic Polyhedra Membranes.

作者信息

Li Jiamin, Liu Zhaoyi, Liu Jinjin, Liu Xue, Luo Yang, Liang Jiajie, Zhang Zhenjie

机构信息

College of Chemistry, Nankai University, Tianjin, 300071, China.

School of Materials Science and Engineering, National Institute for Advanced Materials, Nankai University, Tianjin, 300350, China.

出版信息

Adv Sci (Weinh). 2024 May;11(20):e2307376. doi: 10.1002/advs.202307376. Epub 2024 Mar 11.

Abstract

Designing autonomously oscillating materials is highly desirable for emerging smart material fields but challenging. Herein, a type of hypercrosslinked metal-organic polyhedra (HCMOPs) membranes formed by covalent crosslinking of boronic acid-modified Zr-based MOPs with polyvinyl alcohol (PVA) are rationally designed. In these membranes, MOPs serve as high-connectivity nodes and provide dynamic borate bonds with PVA in hypercrosslinked networks, which can be broken/formed reversibly upon the stimulus of water vapor. The humidity response characteristic of HCMOPs promotes their self-oscillating and self-healing properties. HCMOP membranes can realize a self-oscillating property above the water surface even after loading a cargo that is 1.5 times the weight of the membrane due to the fast adsorption and desorption kinetics. Finally, the HCMOP actuator can realize energy conversion from mechanical energy into electricity when coupled with a piezoelectric membrane. This work not only paves a new avenue to construct MOP-polymer hybrid materials but also expands the application scopes of MOPs for smart actuation devices.

摘要

设计自主振荡材料对于新兴的智能材料领域来说非常有必要,但具有挑战性。在此,通过硼酸改性的锆基金属有机多面体(HCMOPs)与聚乙烯醇(PVA)共价交联形成的一种超交联金属有机多面体膜被合理设计。在这些膜中,金属有机多面体充当高连接性节点,并在超交联网络中与PVA提供动态硼酸酯键,该键在水蒸气刺激下可可逆地断裂/形成。HCMOPs的湿度响应特性促进了它们的自振荡和自愈性能。即使在负载重量为膜重量1.5倍的货物后,HCMOP膜在水面上方也能实现自振荡特性,这归因于快速的吸附和解吸动力学。最后,当与压电膜耦合时,HCMOP致动器可以实现从机械能到电能的能量转换。这项工作不仅为构建金属有机多面体-聚合物杂化材料开辟了一条新途径,还扩大了金属有机多面体在智能驱动装置中的应用范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b42/11132063/c1bdd6ab56e4/ADVS-11-2307376-g003.jpg

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