Lu Kunjuan, Liu Chenjue, Liu Jing, He Yi, Tian Xinlong, Liu Zhongxin, Cao Yang, Shen Yijun, Huang Wei, Zhang Kexi
State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, Haikou 570228, P. R. China.
School of Materials and Energy, Southwest University, Chongqing 400715, P. R. China.
ACS Appl Mater Interfaces. 2022 Jul 15. doi: 10.1021/acsami.2c04845.
Freshwater scarcity is a critical challenge threatening human survival especially due to poverty and arid and off-grid regions. Sorption-based atmospheric water harvesting (AWH) has emerged as a promising strategy for clean water production. However, most of the high-capacity sorbents are limited by the poor sorption/desorption kinetics and uncontrollable liquid leakage problem. Inspired by the plant transpiration process, we develop an environmentally friendly LiCl@pollen cell-polypyrrole (LiCl@PC-PPy) composite sorbent by confining the LiCl hygroscopic agent in the cages of the PC-PPy. The composite sorbent exhibits much improved sorption/desorption kinetics owing to the hydrophilicity of the hierarchical porous structure of the pollen cells, which provides abundant water sorption active sites and diffusion pathways and forms a concave meniscus on cell skeletons to maximize the thermal utilization efficiency. Moreover, the big cavities of the PC-PPy cages can serve as a water reservoir to reduce liquid leakage. As a result, the sorbent can capture atmospheric water to 85% of its own weight under 60% relative humidity (RH) within 2 h and rapidly release the water within 1 h under weak light irradiation of 0.8 sun. As a proof-of-concept demonstration, the fabricated AWH device can absorb 1.55 g/g at night and collect 1.53 g/g of water in 1-day outdoor operation, and the collected water can meet the drinking water standards defined by the World Health Organization (WHO) and Environmental Protection Agency (EPA).
淡水短缺是一项严峻挑战,尤其对贫困地区以及干旱和离网地区的人类生存构成威胁。基于吸附的大气取水(AWH)已成为一种颇具前景的清洁水生产策略。然而,大多数高容量吸附剂受限于较差的吸附/解吸动力学以及不可控的液体泄漏问题。受植物蒸腾过程启发,我们通过将LiCl吸湿剂限制在PC-PPy的笼状结构中,开发出一种环境友好型的LiCl@花粉细胞-聚吡咯(LiCl@PC-PPy)复合吸附剂。由于花粉细胞分级多孔结构的亲水性,复合吸附剂展现出显著改善的吸附/解吸动力学,该结构提供了丰富的水吸附活性位点和扩散途径,并在细胞骨架上形成凹形弯月面以最大化热利用效率。此外,PC-PPy笼状结构的大空腔可作为蓄水池以减少液体泄漏。结果,该吸附剂在60%相对湿度(RH)下2小时内可捕获达自身重量85%的大气水,并在0.8太阳的弱光照射下1小时内快速释放水分。作为概念验证演示,所制备的AWH装置在夜间可吸收1.55 g/g的水,在1天的户外运行中可收集1.53 g/g的水,且所收集的水符合世界卫生组织(WHO)和环境保护局(EPA)规定的饮用水标准。