Zhang Xintao, Liu Ji, Han Shuang, Li Wei, Li Changjun, Gao Fu-Lin, Shu Chao, Yu Zhong-Zhen, Li Xiaofeng
State Key Laboratory of Organic-Inorganic Composites, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Beijing Key Laboratory of Advanced Functional Polymer Composites, Beijing University of Chemical Technology, Beijing 100029, China.
ACS Appl Mater Interfaces. 2023 Nov 8;15(44):51289-51299. doi: 10.1021/acsami.3c13297. Epub 2023 Oct 27.
Solar-driven water evaporation can alleviate the severe water scarcity situation in a nonpolluting and sustainable manner. Although the design of integrated three-dimensional (3D) solar evaporators has been proven to be effective in achieving ultrahigh evaporation rates and energy efficiency, their scalable application is still hindered by complex manufacturing processes and poor portability. Herein, we report a highly portable shape-memory 3D solar evaporator by depositing MXene on low-cost lignin-cellulosic sponges for freshwater production. When not in use, the 3D evaporator can be compressed into a thin film with up to 89.3% volume reduction, ensuring minimal space occupation and high portability. When needed, due to the shape-memory effect, the 3D structure can be rapidly restored by swelling the compressed film in water, resulting in an efficient 3D solar evaporator. This 3D evaporator exhibits not only a high evaporation rate of 2.48 kg m h under 1 sun illumination but also excellent long-term stability and recyclability. In addition, the 3D evaporator itself can serve as a water reservoir without requiring a continuous water supply during evaporation, showing remarkable application flexibility. This work opens a new perspective for manufacturing highly portable and efficient 3D solar evaporators and may facilitate their progress from the laboratory to commercial applications.
太阳能驱动的水蒸发可以以无污染且可持续的方式缓解严重的水资源短缺状况。尽管集成三维(3D)太阳能蒸发器的设计已被证明在实现超高蒸发速率和能源效率方面是有效的,但其可扩展应用仍受到复杂制造工艺和便携性差的阻碍。在此,我们报道了一种通过在低成本木质纤维素海绵上沉积MXene来制备用于淡水生产的高度便携的形状记忆3D太阳能蒸发器。在不使用时,3D蒸发器可被压缩成薄膜,体积减少高达89.3%,确保占用空间最小且便携性高。需要时,由于形状记忆效应,通过将压缩薄膜在水中溶胀可快速恢复3D结构,从而得到高效的3D太阳能蒸发器。这种3D蒸发器不仅在1个太阳光照下表现出2.48 kg m⁻² h⁻¹的高蒸发速率,还具有出色的长期稳定性和可回收性。此外,3D蒸发器本身可作为蓄水池,在蒸发过程中无需连续供水,显示出显著的应用灵活性。这项工作为制造高度便携且高效的3D太阳能蒸发器开辟了新视角,并可能促进其从实验室走向商业应用。