Cracked Metal–Phenolic Networks with Durable Confinement Capillarity for Enhanced Solar Desalination
Abstract
Abstract Solar‐driven interfacial desalination is a promising strategy to address freshwater shortages. Water evaporation can be enhanced through confinement capillarity by generating ultra‐thin water layers on the internal surfaces of porous photothermal materials. However, realizing confinement capillarity relies on coatings composed of aggregated nanospheres, which likely detach under mechanical compression, limiting their practical application. Herein, nature‐inspired crack patterns are introduced into adhesive photothermal supramolecular materials, metal–phenolic network coatings, forming C‐MPNs to achieve durable confinement capillarity. The crack patterns can be controlled to optimize water transport through narrow channels, enhancing the evaporation rate from 1.6 to 3.3 kg m −2 h −1 while preventing salt accumulation during seawater desalination. Furthermore, the cracks serve as buffer zones, significantly improving the mechanical stability of C‐MPN coatings under compression (exhibiting negligible change after 300 cycles)—overcoming a key challenge that has hindered the practical application of confinement capillarity. Furthermore, due to the enhanced confinement capillarity in C‐MPNs, high evaporation performance is sustained even as the size of the photothermal material increases—a rare characteristic among 3D photothermal materials. This work provides fundamental insights into the design of photothermal coatings with confinement capillarity, paving the way for their application in solar desalination.
Article Details
Authors (10)
Zhenxing Wang
Min Hu
Lin Zhu
Jiajing Zhou
West China Hospital of Stomatology, College of Biomass Science and Engineering
Fang He
Yanzhu Liu
School of Chemistry and Chemical Engineering Nanchang University Nanchang 330031 China
Yongxiu Li
School of Chemistry and Chemical Engineering Nanchang University Nanchang 330031 China
Yuexiang Li
Zhixing Lin
Department of Chemical and Petroleum Engineering, Research and Innovation Center for Graphene and 2D Materials, Food Security and Technology Center
Frank Caruso
Department of Chemical Engineering