吸附
材料科学
自愈水凝胶
水蒸气
水分
化学工程
乙二醇
湿度
聚合物
水活度
PEG比率
工作(物理)
热力学
含水量
高分子化学
复合材料
有机化学
吸附
化学
物理
岩土工程
财务
工程类
经济
作者
Xinyue Liu,Lenan Zhang,Bachir El Fil,Carlos D. Díaz‐Marín,Yang Zhong,Xiangyu Li,Shaoting Lin,Evelyn N. Wang
标识
DOI:10.1002/adma.202211763
摘要
Water vapor sorption is a ubiquitous phenomenon in nature and plays an important role in various applications, including humidity regulation, energy storage, thermal management, and water harvesting. In particular, capturing moisture at elevated temperatures is highly desirable to prevent dehydration and to enlarge the tunability of water uptake. However, owing to the thermodynamic limit of conventional materials, sorbents inevitably tend to capture less water vapor at higher temperatures, impeding their broad applications. Here, an inverse temperature dependence of water sorption in poly(ethylene glycol) (PEG) hydrogels, where their water uptake can be doubled with increasing temperature from 25 to 50 °C, is reported. With mechanistic modeling of water-polymer interactions, this unusual water sorption is attributed to the first-order phase transformation of PEG structures, and the key parameters for a more generalized strategy in materials development are identified. This work elucidates a new regime of water sorption with an unusual temperature dependence, enabling a promising engineering space for harnessing moisture and heat.
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