Wang Xiaoyu, Zhang Hui, Liu Xinxin, Du Jie, Xu Yingguang
School of Materials Science and Engineering, Hainan University, Haikou 570228, China.
Shandong Key Laboratory of Preparation and Application of New Thermoplastic Elastomer Materials, Yantai 265702, China.
Polymers (Basel). 2025 Aug 20;17(16):2253. doi: 10.3390/polym17162253.
Atmospheric water harvesting, as an emerging water collection technology, is expected to mitigate water resource crises. Adsorption-based atmospheric water harvesting technology offers distinct advantages, including geographical independence and reduced reliance on ambient humidity levels. Herein, a thermoresponsive gel (PNIPAM/TO-CNF) integrated with lithium chloride was constructed to achieve accelerated moisture sorption and rapid desorption capabilities. In the designated PNIPAM/TO-CNF/LiCl gel, PNIPAM provided a temperature-responsive hydrophilic-hydrophobic transition network; the hydrophilicity and structural strength were enhanced by TO-CNF, the moisture absorption capacity was dramatically elevated by hygroscopic salt LiCl, and pore-forming agent polyethylene glycol created a favorable porous structure. This synergistic design endows the gel with an optimized hydrophilic network, temperature-responsive behavior, and a porous architecture conducive to water vapor transportation, thereby achieving rapid moisture absorption and desorption. Under 60% relative humidity, the gel exhibited a water vapor adsorption capacity of 144% within 1 h, reaching its maximum absorption capacity of 178% after 140 min. The gel exhibited an even more superior desorption performance: when heated to 70 °C, its moisture content rapidly decreased to 16% of its initial weight within 1 h, corresponding to the desorption of 91% of the total absorbed water. A simplified pore-forming methodology that enables the integration of temperature-responsive properties with efficient moisture transfer channels was reported in this paper, providing a viable design pathway for achieving accelerated adsorption-desorption cycles in atmospheric water harvesting.
大气取水作为一种新兴的集水技术,有望缓解水资源危机。基于吸附的大气取水技术具有显著优势,包括不受地理位置限制以及减少对环境湿度水平的依赖。在此,构建了一种与氯化锂集成的热响应凝胶(PNIPAM/TO-CNF),以实现加速吸湿和快速解吸能力。在指定的PNIPAM/TO-CNF/LiCl凝胶中,PNIPAM提供了一个温度响应性的亲水-疏水转变网络;TO-CNF增强了亲水性和结构强度,吸湿盐LiCl显著提高了吸湿能力,成孔剂聚乙二醇创造了有利的多孔结构。这种协同设计赋予凝胶优化的亲水网络、温度响应行为以及有利于水蒸气传输的多孔结构,从而实现快速吸湿和解吸。在60%相对湿度下,该凝胶在1小时内水蒸气吸附容量达到144%,140分钟后达到最大吸附容量178%。该凝胶表现出更优异的解吸性能:加热至70°C时,其含水量在1小时内迅速降至初始重量的16%,相当于解吸了总吸水量的91%。本文报道了一种简化的成孔方法,该方法能够将温度响应特性与高效的水分传输通道相结合,为在大气取水中实现加速吸附-解吸循环提供了可行的设计途径。