Wang Shuo, Niu Ye, Wang Chengjun, Wang Fei, Zhu Zhaoqi, Sun Hanxue, Liang Weidong, Li An
College of Petrochemical Technology, Lanzhou University of Technology, Langongping Road 287, Lanzhou 730050, P. R. China.
Department of Chemistry and Chemical Engineering, Ankang University, Ankang, Shaanxi 725000, P. R. China.
ACS Appl Mater Interfaces. 2021 Sep 15;13(36):42803-42812. doi: 10.1021/acsami.1c11291. Epub 2021 Aug 30.
Solar steam generation (SSG) as a pollution-free and sustainable way for desalination or wastewater treatment has attracted great attention in recent years. Herein, we report the fabrication of novel aerogels GAHAS and GAHAF composed of 3-aminopropyltriethoxysilane (KH550)-modified hollow glass microspheres (HGM) and reduced graphene oxide (RGO) by a sol-gel method for highly efficient SSG. The RGO can well wrap on modified HGM and form an interpenetrated porous structure with an excellent mechanical property. In addition, benefiting from the hollow structure of HGM, GAHAS obtained by supercritical CO drying well maintains the original structure of the hydrogel and shows low thermal conductivity (0.0823 W m K) in the wet state and self-floating ability. Combined with its superhydrophilic wettability and high light absorption (ca. 93%), the as-prepared GAHAS shows an outstanding photothermal conversion efficiency of 89.13% under 1 sun (1 kW m) illumination and excellent stability. Moreover, from the simulated seawater outdoor solar desalination experiment, it was found that the concentrations of the four primary ions K, Ca, Na, and Mg in purified water are 1.65, 0.09, 1.42, and 0.32 mg L, respectively, and fully meet drinking water standards. Thus, our GAHAS aerogel shows great potential for practical application in SSG. This work enriches the photothermal materials and may provide a new idea for design and creation of HGM-based photothermal materials with low thermal conductivity, tunable porosity, high mechanical strength, self-floating ability, and high solar energy conversion efficiency for SSG.
太阳能蒸汽发生(SSG)作为一种无污染且可持续的海水淡化或废水处理方式,近年来备受关注。在此,我们报道了通过溶胶 - 凝胶法制备由3 - 氨丙基三乙氧基硅烷(KH550)改性的空心玻璃微球(HGM)和还原氧化石墨烯(RGO)组成的新型气凝胶GAHAS和GAHAF,用于高效太阳能蒸汽发生。RGO能够很好地包裹在改性HGM上,并形成具有优异机械性能的互穿多孔结构。此外,受益于HGM的空心结构,通过超临界CO2干燥获得的GAHAS很好地保持了水凝胶的原始结构,在湿态下显示出低导热率(0.0823 W m -1 K -1)和自漂浮能力。结合其超亲水性润湿性和高吸光率(约93%),所制备的GAHAS在1个太阳(1 kW m -2)光照下表现出89.13%的出色光热转换效率和优异的稳定性。此外,从模拟海水室外太阳能淡化实验中发现,净化水中四种主要离子K、Ca、Na和Mg的浓度分别为1.65、0.09、1.42和0.32 mg L -1,完全符合饮用水标准。因此,我们的GAHAS气凝胶在太阳能蒸汽发生的实际应用中显示出巨大潜力。这项工作丰富了光热材料,并可能为设计和制备具有低导热率、可调孔隙率、高机械强度、自漂浮能力和高太阳能转换效率的基于HGM的光热材料用于太阳能蒸汽发生提供新思路。