Xu Weizhong, Xing Yun, Liu Jian, Wu Huaping, Cui Ying, Li Dewen, Guo Daoyou, Li Chaorong, Liu Aiping, Bai Hao
Center for Optoelectronics Materials and Devices, Key Laboratory of Optical Field Manipulation of Zhejiang Province, Faculty of Mechanical Engineering & Automation , Zhejiang Sci-Tech University , Hangzhou 310018 , P. R. China.
Key Laboratory of E&M (Ministry of Education & Zhejiang Province) , Zhejiang University of Technology , Hangzhou 310014 , P. R. China.
ACS Nano. 2019 Jul 23;13(7):7930-7938. doi: 10.1021/acsnano.9b02331. Epub 2019 Jun 26.
A nature-inspired water-cycling system, akin to trees, to perform effective water and solar energy management for photosynthesis and transpiration is considered to be a promising strategy to solve water scarcity issues globally. However, challenges remain in terms of the relatively low transport rate, short transport distance, and unsatisfactory extraction efficiency. Herein, enlightened by conifer tracheid construction, an efficient water transport and evaporation system composed of a hierarchical structured aerogel is reported. This architecture with radially aligned channels, micron pores, and molecular meshes is realized by applying a radial ice-template method and cryopolymerization technique. This nature-inspired design benefits the aerogel excellent capillary rise performance, realizing a long-distance (>28 cm at 190 min) and quick (>1 cm at 1 s, >9 cm at 300 s) antigravity water transport on a macroscopic scale, regardless of clean water, seawater, sandy groundwater, or dye-including effluent. Furthermore, an efficient water transpiration and collection is performed by the bilayer-structured aerogel with a carbon heat collector on an aerogel top, demonstrating a solar steam generation rate of 2.0 kg m h with the energy conversion efficiency up to 85.7% under one solar illumination. This biomimetic design with the advantage of water transport and evaporation provides a potential approach to realize water purification, regeneration, and desalination.
一种受自然启发的水循系统,类似于树木,用于为光合作用和蒸腾作用进行有效的水和太阳能管理,被认为是解决全球水资源短缺问题的一种有前景的策略。然而,在相对较低的传输速率、较短的传输距离和不尽人意的提取效率方面仍然存在挑战。在此,受针叶树管胞结构的启发,报道了一种由分级结构气凝胶组成的高效水传输和蒸发系统。这种具有径向排列通道、微米级孔隙和分子筛的结构是通过应用径向冰模板法和冷冻聚合技术实现的。这种受自然启发的设计使气凝胶具有出色的毛细上升性能,在宏观尺度上实现了长距离(190分钟时>28厘米)和快速(1秒时>1厘米,300秒时>9厘米)的反重力水传输,无论清水、海水、含沙地下水还是含染料废水均可。此外,通过在气凝胶顶部带有碳热收集器的双层结构气凝胶进行高效的水蒸腾和收集,在一个太阳光照下,太阳能蒸汽产生速率为2.0千克·平方米·小时,能量转换效率高达85.7%。这种具有水传输和蒸发优势的仿生设计为实现水净化、再生和脱盐提供了一种潜在方法。