Xia Wanting, Cheng Haoyan, Zhou Shiqian, Yu Ningning, Hu Hao
School of Materials Science and Engineering, Henan University of Science and Technology, Luoyang, 471023, China.
School of Materials Science and Engineering, Henan University of Science and Technology, Luoyang, 471023, China.
J Colloid Interface Sci. 2022 Nov;625:289-296. doi: 10.1016/j.jcis.2022.06.028. Epub 2022 Jun 8.
Despite significant of solar energy to power water evaporation in seawater desalination, the commercial application of this technology is limited by the poor light absorption and low photothermal conversion of existing photothermal materials. Herein, we report a simple method for solar-driven water evaporation using a device comprising CuSe/NbCT nanocomposites supported by a glass microfiber membrane, which utilizes cotton thread as water transport pathway. The proposed device demonstrates excellent light absorption, water transportation, and thermal management. Benefiting from the strong synergetic photothermal effect of CuSe and NbCT, the CuSe/NbCT nanocomposites function as an efficient solar absorber with excellent photothermal conversion efficiency. The rough surface, low thermal conductivity and good hydrophilicity of glass microfiber membrane could maximize light capture, limit heat loss, and timely replenish water during the water evaporation process. When evaluated as a water evaporation system for outdoor seawater desalination, the system achieved a water evaporation of 12.60 kg·m within 6 h. High fresh water generation rate is an important embodiment of high photothermal conversion efficiency. This study demonstrates a new route for designing solar desalination devices with high photothermal conversion properties.
尽管太阳能在海水淡化中对驱动水蒸发具有重要意义,但该技术的商业应用受到现有光热材料光吸收差和光热转换效率低的限制。在此,我们报道了一种利用由玻璃微纤维膜支撑的CuSe/NbCT纳米复合材料的装置进行太阳能驱动水蒸发的简单方法,该装置利用棉线作为水传输途径。所提出的装置展示了优异的光吸收、水传输和热管理性能。受益于CuSe和NbCT的强协同光热效应,CuSe/NbCT纳米复合材料作为一种高效的太阳能吸收器,具有优异的光热转换效率。玻璃微纤维膜的粗糙表面、低导热性和良好的亲水性能够最大化光捕获、限制热损失,并在水蒸发过程中及时补充水分。当作为室外海水淡化的水蒸发系统进行评估时,该系统在6小时内实现了12.60 kg·m的水蒸发量。高淡水生成率是高光热转换效率的重要体现。本研究展示了一条设计具有高光热转换性能的太阳能淡化装置的新途径。