Guan Weixin, Zhao Yaxuan, Lei Chuxin, Yu Guihua
Materials Science and Engineering Program and Walker Department of Mechanical Engineering, The University of Texas at Austin, Austin, TX 78712.
Proc Natl Acad Sci U S A. 2023 Sep 19;120(38):e2308969120. doi: 10.1073/pnas.2308969120. Epub 2023 Sep 11.
Water scarcity is a pressing global issue, requiring innovative solutions such as atmospheric water harvesting (AWH), which captures moisture from the air to provide potable water to many water-stressed areas. Thermoresponsive hydrogels, a class of temperature-sensitive polymers, demonstrate potential for AWH as matrices for hygroscopic components like salts predominantly due to their relatively energy-efficient desorption properties compared to other sorbents. However, challenges such as limited swelling capacity due to the salting-out effect and difficulty in more complete water release hinder the effectiveness of conventional hydrogel sorbents. To overcome these limitations, we introduce molecularly confined hydration in thermoresponsive hydrogels by employing a bifunctional polymeric network composed of hygroscopic zwitterionic moieties and thermoresponsive moieties. Here, we show that this approach ensures stable water uptake, enables water release at relatively low temperatures, and exhibits rapid sorption-desorption kinetics. Furthermore, by incorporating photothermal absorbers, the sorbent can achieve solar-driven AWH with comparable water release performance. This work advances the design of AWH sorbents by introducing molecularly confined hydration in thermoresponsive hydrogels, leading to a more efficient and sustainable approach to water harvesting. Our findings offer a potential solution for advanced sorbent design with comprehensive performance to mitigate the freshwater crisis.
水资源短缺是一个紧迫的全球性问题,需要诸如大气取水(AWH)之类的创新解决方案,大气取水可从空气中捕获水分,为许多水资源紧张地区提供饮用水。热响应水凝胶是一类对温度敏感的聚合物,作为盐等吸湿成分的基质,在大气取水中显示出潜力,这主要是因为与其他吸附剂相比,它们具有相对节能的解吸特性。然而,诸如盐析效应导致的溶胀能力有限以及更难完全释放水分等挑战,阻碍了传统水凝胶吸附剂的有效性。为了克服这些限制,我们通过采用由吸湿两性离子部分和热响应部分组成的双功能聚合物网络,在热响应水凝胶中引入分子受限水合作用。在此,我们表明这种方法可确保稳定的水分吸收,能在相对较低的温度下释放水分,并表现出快速的吸附 - 解吸动力学。此外,通过加入光热吸收剂,该吸附剂可实现具有可比水分释放性能的太阳能驱动大气取水。这项工作通过在热响应水凝胶中引入分子受限水合作用,推进了大气取水吸附剂的设计,从而形成一种更高效、可持续的取水方法。我们的研究结果为具有综合性能的先进吸附剂设计提供了潜在解决方案,以缓解淡水危机。