Mineart Kenneth P, Dickerson Joshua D, Love Dillon M, Lee Byeongdu, Zuo Xiaobing, Spontak Richard J
Department of Chemical & Biomolecular Engineering, North Carolina State University, Raleigh, NC, 27695, USA.
Department of Materials Science & Engineering, North Carolina State University, Raleigh, NC, 27695, USA.
Macromol Rapid Commun. 2017 Mar;38(5). doi: 10.1002/marc.201600666. Epub 2017 Jan 24.
Since nanostructured amphiphilic macromolecules capable of affording high ion and water transport are becoming increasingly important in a wide range of contemporary energy and environmental technologies, the swelling kinetics and temperature dependence of water uptake are investigated in a series of midblock-sulfonated thermoplastic elastomers. Upon self-assembly, these materials maintain a stable hydrogel network in the presence of a polar liquid. In this study, real-time water-sorption kinetics in copolymer films prepared by different casting solvents are elucidated by synchrotron small-angle X-ray scattering and gravimetric measurements, which directly correlate nanostructural changes with macroscopic swelling to establish fundamental structure-property behavior. By monitoring the equilibrium swelling capacity of these materials over a range of temperatures, an unexpected transition in the vicinity of 50 °C has been discovered. Depending on copolymer morphology and degree of sulfonation, hydrothermal conditioning of specimens to temperatures above this transition permits retention of superabsorbent swelling at ambient temperature.
由于能够实现高离子和水传输的纳米结构两亲性大分子在当代广泛的能源和环境技术中变得越来越重要,因此对一系列中间嵌段磺化热塑性弹性体的溶胀动力学和吸水率的温度依赖性进行了研究。自组装后,这些材料在极性液体存在下保持稳定的水凝胶网络。在本研究中,通过同步加速器小角X射线散射和重量测量阐明了由不同浇铸溶剂制备的共聚物薄膜中的实时吸水动力学,这直接将纳米结构变化与宏观溶胀相关联,以建立基本的结构-性能行为。通过监测这些材料在一系列温度范围内的平衡溶胀能力,发现在50℃附近出现了意想不到的转变。根据共聚物形态和磺化程度,将试样进行水热调节至高于该转变温度可使材料在环境温度下保持高吸水性溶胀。