Hydrogel Fiber Fabric Combining Rapid Water Transport, Thermal Localization, and Large-Scale Production For Ultra-High Salt-Resistant Solar Desalination

Hydrogel Fiber Fabric Combining Rapid Water Transport, Thermal Localization, and Large-Scale Production For Ultra-High Salt-Resistant Solar Desalination
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DOI:
10.1016/j.nanoen.2023.108847
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发表时间:
2023-09
期刊:
影响因子:
17.6
通讯作者:
Jianyong Yu;Juhua Yun;Shuo Zang;Minsu Han;Xuhui Sun;Zequn Wang;Yuman Zhou;Aslam Khan
Jianyong Yu;Juhua Yun;Shuo Zang;Minsu Han;Xuhui Sun;Zequn Wang;Yuman Zhou;Aslam Khan
中科院分区:
材料科学1区
文献类型:
--
作者:
Jianyong Yu;Juhua Yun;Shuo Zang;Minsu Han;Xuhui Sun;Zequn Wang;Yuman Zhou;Aslam Khan

文献摘要

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Solar vapor generation (SVG) is one of the most promising strategies for addressing the freshwater shortage crisis. However, fewer existing solar evaporators combine excellent evaporation rates, salt resistance, and large-scale production potential, which are the keys to realizing industrialization. Herein, we prepare sodium alginate/reduced graphene oxide (SA/rGO) hydrogel fibers with complex nano-network structures and introduce a novel compact hydrogel fiber fabric (HFF-C) evaporator by integrating the advantages of hydrogel and fabric for the first time. The HFF-C evaporator exhibits a synergistic impact based on its porous structure and capillary effect between the fibers, along with efficient thermal management, resulting in both efficient water transport and thermal localization. The constructed HFF-C evaporator demonstrates an exceptional evaporation rate (4.13 kg m−2h−1) in 20 wt% brine under one sun illumination, which is the highest reported value to our knowledge. Importantly, no salt deposition occurs on the evaporator’s surface over 8 h of operation. Furthermore, we successfully prepare an HFF-C evaporator with a large size of 13 × 100 cm2using a multibeam loom. This study presents a novel design concept for a solar hydrogel-based evaporator with excellent evaporation rates, ultra-high salt resistance, and large-scale production potential, thus promising significant advancements in the practical application of SVG.