College of Petrochemical Technology, Lanzhou University of Technology, Langongping Road 287, Lanzhou, 730050, P. R. China.
Macromol Rapid Commun. 2021 Feb;42(4):e2000536. doi: 10.1002/marc.202000536. Epub 2020 Nov 25.
The construction of photothermal materials with ideal salt tolerance has been a major subject for efficient solar desalination. Herein, a novel photothermal material based on porous ionic polymers (PIPs) nanowires is synthesized by Sonogashira-Hagihara cross-coupling reaction using ionic salt and alkynylbenzene as building blocks. The PIPs nanowires monolith shows abundant porosity with low density, leading a superior thermal insulation. The intrinsic superhydrophilicity of PIPs nanowires endows it with desired water transportation ability. By facile spraying Chinese carbon-ink on the PIPs nanowires monolith, its light absorption can be enhanced to be 90%. Based on these merits, the PIPs nanowires based photothermal materials show high solar energy conversion efficiency (81% under 1 sun irradiation). More interestingly, its inherently ionic framework can result in an ion-ion interaction between the external ions in water and ionic groups in PIPs framework, thus leading to excellent desalination ability by combing its unique superhydrophilicity, for example, no salt accumulation is observed after 6 h duration at 1 sun irradiation. Compared with the existing salt-resistant photothermal materials, the method takes the advantage of the intrinsically ionic feature of PIPs without using any artificial process, thus may open a new way for design and fabrication of high-performance salt-rejection photothermal materials.
具有理想耐盐性的光热材料的构建一直是高效太阳能淡化的主要课题。在此,通过 Sonogashira-Hagihara 交叉偶联反应,使用离子盐和炔基苯作为构建块,合成了一种基于多孔离子聚合物(PIPs)纳米线的新型光热材料。PIPs 纳米线整体呈现出丰富的多孔性和低密度,具有出色的隔热性能。PIPs 纳米线的固有超亲水性赋予了其所需的输水能力。通过在 PIPs 纳米线整体上简单地喷涂中国碳素墨水,可以将其光吸收增强到 90%。基于这些优点,PIPs 纳米线基光热材料表现出高太阳能转化效率(在 1 个太阳照射下为 81%)。更有趣的是,其固有离子骨架可以在外部水中的离子和 PIPs 骨架中的离子基团之间产生离子-离子相互作用,从而结合其独特的超亲水性实现优异的脱盐能力,例如,在 1 个太阳照射下持续 6 小时后没有观察到盐积累。与现有的耐盐光热材料相比,该方法利用了 PIPs 的固有离子特性,而无需使用任何人工工艺,因此可能为设计和制造高性能耐盐光热材料开辟新途径。