Yu Ningning, Hu Hao, Xia Wanting, Zhao Zhipeng, Cheng Haoyan
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. 2024 Mar 15;658:238-246. doi: 10.1016/j.jcis.2023.12.059. Epub 2023 Dec 14.
Solar-driven desalination is an environmentally sustainable method to alleviate the problems of freshwater scarcity and the energy crisis. However, how to improve the synergy between the photothermal material and the evaporator to achieve high photothermal conversion efficiency simultaneously, excellent thermal management system and good salt resistance remains a challenge. Here, a mushroom-shaped solar evaporation device is designed and fabricated with iron diselenide/carbon black (FeSe/CB) coated cellulose acetate (CA) film as mushroom surface and cotton swab as mushroom handle, which presented high solar-driven evaporation and excellent salt resistance. Thanks to the unique photothermal effect and the synergistic effect, the FeSe/CB composites enabled a promising photothermal conversion efficiency of up to 65.8 °C after 180 s. The mushroom-shaped evaporation device effectively overcomes water transport and steam spillage channel blockage caused by salt crystallization through its unique vertical transport water channels and conical air-water interface. When exposed to real sunlight, the solar evaporation rate of the steam generation structure reached as high as 2.03 kg m h, which is more than 13 times higher than natural evaporation. This study offered new insights into the higher solar-driven evaporation rate and salt-blocking resistance of the FeSe/CB mushroom-shaped solar evaporation device for solar-powered water production.
太阳能驱动的海水淡化是一种环境可持续的方法,可缓解淡水短缺和能源危机问题。然而,如何提高光热材料与蒸发器之间的协同作用,以同时实现高光热转换效率、出色的热管理系统和良好的耐盐性仍然是一项挑战。在此,设计并制造了一种蘑菇形太阳能蒸发装置,其以二硒化铁/炭黑(FeSe/CB)包覆的醋酸纤维素(CA)膜作为蘑菇表面,棉签作为蘑菇柄,该装置呈现出高太阳能驱动蒸发和出色的耐盐性。得益于独特的光热效应和协同效应,FeSe/CB复合材料在180秒后实现了高达65.8℃的有前景的光热转换效率。该蘑菇形蒸发装置通过其独特的垂直输水通道和锥形气-水界面,有效克服了盐结晶导致的水传输和蒸汽溢出通道堵塞问题。当暴露在真实阳光下时,蒸汽发生结构的太阳能蒸发速率高达2.03 kg m⁻² h⁻¹,比自然蒸发高出13倍以上。这项研究为用于太阳能制水的FeSe/CB蘑菇形太阳能蒸发装置的更高太阳能驱动蒸发速率和抗盐堵塞性提供了新的见解。