Yang Kaijie, Pan Tingting, Dang Saichao, Gan Qiaoqiang, Han Yu
Advanced Membranes and Porous Materials (AMPM) Center, Physical Sciences and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal, Saudi Arabia.
Materials Science Engineering Program, Physical Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal, Saudi Arabia.
Nat Commun. 2022 Nov 4;13(1):6653. doi: 10.1038/s41467-022-34528-7.
Direct solar desalination exhibits considerable potential for alleviating the global freshwater crisis. However, the prevention of salt accumulation while maintaining high water production remains an important challenge that limits its practical applications because the methods currently employed for achieving rapid salt backflow usually result in considerable heat loss. Herein, we fabricate a solar evaporator featuring vertically aligned mass transfer bridges for water transport and salt backflow. The 3D open architecture constructed using mass transfer bridges enables the evaporator to efficiently utilize the conductive heat that would otherwise be lost, significantly improving the water evaporation efficiency without compromising on salt rejection. The fabricated evaporator can treat salt water with more than 10% salinity. Moreover, it can continuously and steadily work in a real environment under natural sunlight with a practical solar-to-water collection efficiency of >40%. Using the discharged water from reverse osmosis plants and sea water from the Red Sea, the evaporator demonstrates a daily freshwater generation rate of ~5 L/m, which is sufficient to satisfy individual drinking water requirements. With strong salt rejection, high energy efficiency, and simple scalability, the 3D evaporator has considerable promise for freshwater supply for water-stressed and off-grid communities.
直接太阳能海水淡化在缓解全球淡水危机方面具有巨大潜力。然而,在保持高产水量的同时防止盐分积累仍然是一个重要挑战,这限制了其实际应用,因为目前用于实现快速盐分回流的方法通常会导致大量热损失。在此,我们制造了一种太阳能蒸发器,其具有垂直排列的传质桥用于水传输和盐分回流。利用传质桥构建的三维开放结构使蒸发器能够有效利用原本会损失的传导热,在不影响脱盐性能的情况下显著提高水蒸发效率。所制造的蒸发器能够处理盐度超过10%的盐水。此外,它可以在自然阳光下的实际环境中持续稳定运行,实际太阳能到水的收集效率大于40%。使用反渗透工厂的排放水和红海海水,该蒸发器的日淡水产量约为5升/平方米,足以满足个人饮用水需求。凭借强大的脱盐能力、高能效和简单的可扩展性,这种三维蒸发器在为水资源紧张和离网社区提供淡水方面具有巨大潜力。