Cai Chenyang, Chen Yi, Cheng Fulin, Wei Zechang, Zhou Wenbin, Fu Yu
Co-Innovation Center of Efficient Processing and Utilization of Forest Resource, School of Materials Science and Engineering, Nanjing Forestry University, Nanjing, Jiangsu 210037, China.
ACS Nano. 2024 Feb 6;18(5):4376-4387. doi: 10.1021/acsnano.3c10313. Epub 2024 Jan 25.
Harvesting atmospheric water and converting it into electricity play vital roles in advancing next-generation energy conversion systems. However, the current water harvester systems suffer from a weak water capture ability and poor recyclability due to high diffusion barriers and low sorption kinetics, which significantly limit their practical application. Herein, we drew inspiration from the natural "Pump effect" observed in wood and successfully developed a dual "absorption-adsorption" networked MXene aerogel atmospheric water harvester (MAWH) through ice templating and confining LiCl processes, thereby serving multiple purposes of clean water production, passive dehumidification, and power generation. The MAWH benefits from the dual H-bond network of MXene and cellulose nanocrystals (absorption network) and the hygroscopic properties of lithium chloride (adsorption network). Furthermore, its aligned wood-like channel structure efficiently eliminates water nucleation near the 3D network, resulting in fast moisture absorption. The developed MAWH demonstrates a high moisture absorption ability of 3.12 g g at 90% relative humidity (RH), featuring rapid vapor transport rates and durable cyclic performance. When compared with commercial desiccants such as the 4A molecular sieve and silica gel, the MAWH can reduce the RH from 80% to 20% within just 6 h. Most notably, our integrated MAWH-based water harvesting-power generation system achieves a high voltage of ∼0.12 V at 77% RH, showcasing its potential for practical application. These developed MAWHs are considered as high-performance atmospheric water harvesters in the water collection and power generation field.
收集大气中的水分并将其转化为电能,在推进下一代能量转换系统方面发挥着至关重要的作用。然而,目前的集水器系统由于高扩散势垒和低吸附动力学,存在集水能力弱和可回收性差的问题,这严重限制了它们的实际应用。在此,我们从木材中观察到的天然“泵效应”中获得灵感,通过冰模板法和LiCl封装工艺成功开发了一种双“吸收-吸附”网络化的MXene气凝胶大气集水器(MAWH),从而实现了清洁水生产、被动除湿和发电的多种功能。MAWH受益于MXene和纤维素纳米晶体的双氢键网络(吸收网络)以及氯化锂的吸湿特性(吸附网络)。此外,其排列成木材状的通道结构有效地消除了三维网络附近的水成核现象,从而实现快速吸湿。所开发的MAWH在90%相对湿度(RH)下表现出3.12 g g的高吸湿能力,具有快速的蒸汽传输速率和持久的循环性能。与4A分子筛和硅胶等商业干燥剂相比,MAWH在短短6小时内就能将相对湿度从80%降至20%。最值得注意的是,我们基于MAWH的集成集水-发电系统在77%相对湿度下实现了约0.12 V的高电压,展示了其实际应用潜力。这些开发的MAWH被认为是集水和发电领域的高性能大气集水器。