Zhang Qingyuan, Chen Yu, Wang Yating, He Jiajun, Yang Peng, Wang Yu, Tang Shaochun
National Laboratory of Solid State Microstructures, Collaborative Innovation Center of Advanced Microstructures, Jiangsu Key Laboratory of Artificial Functional Materials, College of Engineering and Applied Sciences, Nanjing University, Nanjing 210093, P. R. China.
Haian Institute of High-Tech Research, Nanjing University, Jiangsu 226600, P. R. China.
ACS Appl Mater Interfaces. 2023 Nov 1;15(43):50522-50531. doi: 10.1021/acsami.3c11841. Epub 2023 Oct 18.
An ultralight material that simultaneously combines remarkably rapid water transportation, highly efficient photothermal conversion, and excellent thermal insulation is highly desired for solar-driven interfacial desalination but was challenging. In this work, inspired by the unique natural structure of wood, we developed an ultralight aerogel by ice-templated synthesis as an integrated interfacial evaporator for solar-driven water production. The interior features vertically aligned biomimetic microscale channels facilitating rapid transportation of water molecules, while an improved photothermal interface allows high solar absorption and conversion via nonradiative relaxation and molecular vibrations. The biomimetic aerogel is ultralight with a density as low as 0.06 g/cm, especially its fabrication is size- and shape-programmable as a whole and easily scalable. Additionally, the outstanding thermal insulation of the aerogel focuses heat precisely at the evaporation interface, reducing ineffective heat loss, while the uniformly distributed large-sized channels promote the dynamic convection of high concentration salt ions on the evaporator surface. Consequently, the evaporator shows broadband light absorption of 92.7%, leading to a water evaporation rate reaching 4.55 kg m h under 3 simulated solar irradiations, much higher than that of other reported evaporators with randomly distributed pores. This work provides new insight into advanced hybrid aerogels for highly efficient and durable solar-driven interfacial desalination systems.
一种同时具备快速的水传输、高效的光热转换和优异隔热性能的超轻材料,对于太阳能驱动的界面脱盐来说是非常需要的,但却具有挑战性。在这项工作中,受木材独特自然结构的启发,我们通过冰模板合成法开发了一种超轻气凝胶,作为用于太阳能驱动产水的集成界面蒸发器。其内部具有垂直排列的仿生微尺度通道,便于水分子快速传输,而改进的光热界面允许通过非辐射弛豫和分子振动实现高太阳能吸收和转换。这种仿生气凝胶超轻,密度低至0.06 g/cm³,特别是其制造在整体上是尺寸和形状可编程的,并且易于扩展。此外,气凝胶出色的隔热性能将热量精确地集中在蒸发界面,减少无效热损失,而均匀分布的大尺寸通道促进了蒸发器表面高浓度盐离子的动态对流。因此,该蒸发器显示出92.7%的宽带光吸收,在3个模拟太阳辐照下产水速率达到4.55 kg m⁻² h⁻¹,远高于其他报道的具有随机分布孔隙的蒸发器。这项工作为用于高效耐用的太阳能驱动界面脱盐系统的先进混合气凝胶提供了新的见解。