Tao Yingle, Li Qiangqiang, Wu Qiannan, Li Haiqing
State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing 211816, China.
Mater Horiz. 2021 May 1;8(5):1439-1445. doi: 10.1039/d1mh00306b. Epub 2021 Apr 21.
Using metal-organic frameworks (MOFs) to harvest water from the atmosphere represents an attractive way to alleviate the global water shortage stress. However, the intrinsic thermal insulating nature of MOFs makes it rather challenging to scale-up water production by utilizing industrially favorable bulky MOF monoliths due to the insufficient water desorption triggered by the existing water desorption methods. To overcome this challenge, metal foam (MF) embedded MOF monoliths (MF@MOFs) are presented. In MF@MOFs, MF not only serves as the backbone of MOF monoliths to support them with excellent mechanical robustness, but also enables the rapid generation of enormous localized eddy current heating (LECH) upon their exposure to an alternating magnetic field. Compared with the traditional heating methods, the use of LECH can effectively overcome the thermal insulating nature of MOF monoliths and realize their rapid and uniform heating, thereby triggering a complete water desorption from MF@MOFs with significantly improved desorption kinetics. The viability of the LECH-triggered water release method for practical atmospheric water harvesting is also validated through a newly designed LECH-based atmospheric water harvester. Note that this is the first exploration that uses LECH to overcome the intrinsic insulating nature of MOF monoliths.
利用金属有机框架材料(MOF)从大气中收集水分是缓解全球水资源短缺压力的一种有吸引力的方法。然而,MOF固有的隔热特性使得利用工业上有利的块状MOF整体材料扩大水产量颇具挑战性,这是因为现有水脱附方法引发的水脱附不足。为了克服这一挑战,提出了嵌入金属泡沫(MF)的MOF整体材料(MF@MOFs)。在MF@MOFs中,MF不仅作为MOF整体材料的骨架,以优异的机械强度支撑它们,而且在其暴露于交变磁场时能够快速产生巨大的局部涡流加热(LECH)。与传统加热方法相比,使用LECH可以有效克服MOF整体材料的隔热特性,实现其快速均匀加热,从而触发MF@MOFs完全水脱附,显著改善脱附动力学。通过新设计的基于LECH的大气集水器,也验证了LECH触发的水释放方法用于实际大气集水的可行性。请注意,这是首次利用LECH克服MOF整体材料固有绝缘特性的探索。