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通过最大化溶胀诱导的盐负载实现吸湿水凝胶的极端吸水

Extreme Water Uptake of Hygroscopic Hydrogels through Maximized Swelling-Induced Salt Loading.

作者信息

Graeber Gustav, Díaz-Marín Carlos D, Gaugler Leon C, Zhong Yang, El Fil Bachir, Liu Xinyue, Wang Evelyn N

机构信息

Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts, 02139, USA.

Department of Chemistry, Humboldt-Universität zu Berlin, 12489, Berlin, Germany.

出版信息

Adv Mater. 2024 Mar;36(12):e2211783. doi: 10.1002/adma.202211783. Epub 2023 Jun 15.

Abstract

Hygroscopic hydrogels are emerging as scalable and low-cost sorbents for atmospheric water harvesting, dehumidification, passive cooling, and thermal energy storage. However, devices using these materials still exhibit insufficient performance, partly due to the limited water vapor uptake of the hydrogels. Here, the swelling dynamics of hydrogels in aqueous lithiumchloride solutions, the implications on hydrogel salt loading, and the resulting vapor uptake of the synthesized hydrogel-salt composites are characterized. By tuning the salt concentration of the swelling solutions and the cross-linking properties of the gels, hygroscopic hydrogels with extremely high salt loadings are synthesized, which enable unprecedented water uptakes of 1.79 and 3.86 gg at relative humidity (RH) of 30% and 70%, respectively. At 30% RH, this exceeds previously reported water uptakes of metal-organic frameworks by over 100% and of hydrogels by 15%, bringing the uptake within 93% of the fundamental limit of hygroscopic salts while avoiding leakage problems common in salt solutions. By modeling the salt-vapor equilibria, the maximum leakage-free RH is elucidated as a function of hydrogel uptake and swelling ratio. These insights guide the design of hydrogels with exceptional hygroscopicity that enable sorption-based devices to tackle water scarcity and the global energy crisis.

摘要

吸湿水凝胶正成为用于大气集水、除湿、被动冷却和热能存储的可扩展且低成本的吸附剂。然而,使用这些材料的装置仍表现出性能不足,部分原因是水凝胶的水蒸气吸收量有限。在此,对水凝胶在氯化锂水溶液中的溶胀动力学、对水凝胶盐负载量的影响以及合成的水凝胶 - 盐复合材料的水蒸气吸收量进行了表征。通过调节溶胀溶液的盐浓度和凝胶的交联性能,合成了具有极高盐负载量的吸湿水凝胶,其在相对湿度(RH)为30%和70%时分别实现了前所未有的1.79和3.86 gg的吸水量。在30%相对湿度下,这比先前报道的金属有机框架的吸水量高出100%以上,比水凝胶的吸水量高出15%,使吸水量达到吸湿盐基本极限的93%以内,同时避免了盐溶液中常见的泄漏问题。通过对盐 - 蒸汽平衡进行建模,阐明了无泄漏最大相对湿度与水凝胶吸水量和溶胀率的函数关系。这些见解为设计具有卓越吸湿性的水凝胶提供了指导,使基于吸附的装置能够应对水资源短缺和全球能源危机。

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