材料科学
限制
吸附
泄漏(经济)
复合数
盐(化学)
多孔介质
多孔性
化学稳定性
理论(学习稳定性)
边界(拓扑)
盐溶液
热力学平衡
材料性能
边值问题
热力学
体积热力学
水的性质
复合材料
化学工程
热稳定性
渗透(HVAC)
热容
工艺工程
热力学过程
环境工程
干旱
水溶液
机械
大气压力
纳米技术
作者
Zhihua Yu,He Shan,Wei Tang,Zhifeng Hu,R.Z. Wang
摘要
Hygroscopic salt-embedded composite materials (HSCMs) are promising for sorption-based atmospheric water harvesting (SAWH), because they combine the high sorption capacities of hygroscopic salts with the kinetics-enhancing properties of porous matrices. However, extensive efforts have been devoted to enhancing the efficiency of these emerging materials, while their stability has received comparatively less attention. This perspective highlights salt leakage from HSCMs as a critical challenge limiting their long-term application in SAWH. We first introduce the advantages of HSCMs in arid regions and highlight the issues of salt leakage. We further assess the potential multiscale impacts of salt leakage on materials, systems, environment, and human health. On this basis, we establish a thermodynamic stability boundary framework to estimate the leakage risk of HSCMs by comparing the equilibrium volume of the generated salt solution with the carrying capacity of the matrix. Finally, we propose design strategies to guide the development of next-generation leakage-free HSCMs for sustainable SAWH.
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