Luo Qiang, Chen Minshuo, Yu Dongdong, Zhang Tiance, Zhao Jiajun, Zhang Lei, Han Xuefeng, Zhou Maolin, Hou Yongping, Zheng Yongmei
Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University, Beijing 100191, P. R. China.
ACS Nano. 2024 Jun 4;18(22):14650-14660. doi: 10.1021/acsnano.4c02866. Epub 2024 May 18.
Atmospheric water harvesting is a practical strategy that is achieved by removing materials from air moisture to relieve global water scarcity. Here we design a water-harvester (i.e., MOF-303/thiolated polymer composite (MTC)) by using a metal-organic framework (MOF-303) and thiolated chitosan (TC) skeleton. Intermolecular hydrogen bonding between TC and MOF-303 facilitates porous structures with enlarged air-polymer interfaces for long cycling life and high capacity at low relative humidity. Benefiting from synergetic effects on porosity and anchorage for accelerating the uptake-release of moisture, MTC exhibits a rapid water uptake capacity of 0.135 g/g in 60 min under 12.5 RH% and ultrafast water desorption kinetics of 0.003 g/g/min at 8.5 RH%, which is superior to the as-reported MOF-303 based adsorbents. At low heat (∼40 °C), the water desorption and collection rate, respectively, are 0.0195 and 0.0168 g/g/min within 210 min, showing ultrahigh harvesting efficiency. These results highlight the enormous potential as promising materials for solving the world's water scarcity crisis. This study offers an insight into the design of AWH materials, which can be extended into applications in some realms, e.g., freshwater development for industry in arid areas, water engineering-related devices and systems, etc.
大气水收集是一种切实可行的策略,通过从空气中去除水分来缓解全球水资源短缺问题。在此,我们利用金属有机框架(MOF-303)和硫醇化壳聚糖(TC)骨架设计了一种集水器(即MOF-303/硫醇化聚合物复合材料(MTC))。TC与MOF-303之间的分子间氢键促进了多孔结构的形成,扩大了空气-聚合物界面,从而实现了长循环寿命和在低相对湿度下的高容量。得益于孔隙率和锚固作用的协同效应,加速了水分的吸收-释放,MTC在12.5%相对湿度下60分钟内的快速吸水容量为0.135 g/g,在8.5%相对湿度下的超快脱水动力学为0.003 g/g/min,优于已报道的基于MOF-303的吸附剂。在低热(约40°C)条件下,210分钟内的脱水和集水速率分别为0.0195和0.0168 g/g/min,显示出超高的收集效率。这些结果突出了其作为解决全球水资源短缺危机的有前景材料的巨大潜力。本研究为大气水收集材料的设计提供了见解,可扩展到一些领域的应用,例如干旱地区工业淡水开发、与水工程相关的设备和系统等。