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用于高效和腔增强太阳能驱动废水处理的三维互穿网络海绵的构建

Construction of a Three-Dimensional Interpenetrating Network Sponge for High-Efficiency and Cavity-Enhanced Solar-Driven Wastewater Treatment.

作者信息

Wang Xinling, Li Zehao, Wu Yi, Guo Hongran, Zhang Xiaoli, Yang Yuxin, Mu Haibo, Duan Jinyou

机构信息

College of Chemistry & Pharmacy, Northwest A&F University, Yangling, Shaanxi 712100, China.

College of Plant Protection, Northwest A&F University, Yangling, Shaanxi 712100, PR China.

出版信息

ACS Appl Mater Interfaces. 2021 Mar 10;13(9):10902-10915. doi: 10.1021/acsami.0c21690. Epub 2021 Feb 25.

Abstract

It is well known that the photothermal conversion performance of solar-driven interfacial water evaporation systems is known to have a stronger photothermal conversion performance than suspended water evaporation systems due to their relatively strong ability to suppress overall heat loss. Natural polymer chitosan and gelatin can form a three-dimensional interpenetrating network (IPN) sponge to provide an interface for water evaporation due to strong hydrogen bonding and electrostatic attraction interaction. However, the lack of effective light absorption, the intrinsic short lifetime, and the poor photothermal conversion greatly compromise their steam generation performance. Here, we fabricated a chitosan/gelatin-based IPN sponge incorporated with melanin-coated titania hollow nanospheres (CG@MPT-h) as a solar thermal converter, which is designed to exhibit a unique cavity structure and vertical channels. The cavity structure of melanin-coated titania acts as a solar thermal transducer, while the chitosan/gelatin-based IPN sponge acts as a single-pass water pump. A water hyacinth-inspired evaporation system shows outstanding steam generation performance, and the highest steam generation rate was 3.17 kg m h under a 2.5 sun illumination because of the cavity enhancement effect, far above TiO particles and reported photo-thermal conversion materials. More importantly, the embedding of MPT-h nanoparticles in the IPN sponge effectively inhibits the growth of bacteria in the vertical channels, resulting in an antibacterial solar-driven water evaporator. This advanced sponge provides a cost-effective and practical sustainable energy technique for solar-driven wastewater treatment.

摘要

众所周知,太阳能驱动的界面水蒸发系统的光热转换性能比悬浮水蒸发系统更强,因为它们抑制整体热损失的能力相对较强。天然聚合物壳聚糖和明胶可以形成三维互穿网络(IPN)海绵,由于强氢键和静电吸引相互作用,可为水蒸发提供界面。然而,缺乏有效的光吸收、固有的短寿命以及较差的光热转换极大地损害了它们的蒸汽产生性能。在此,我们制备了一种基于壳聚糖/明胶的IPN海绵,其中掺入了黑色素包覆的二氧化钛空心纳米球(CG@MPT-h)作为太阳能热转换器,其设计具有独特的腔结构和垂直通道。黑色素包覆的二氧化钛的腔结构充当太阳能热传感器,而基于壳聚糖/明胶的IPN海绵充当单通道水泵。一种受水葫芦启发的蒸发系统表现出出色的蒸汽产生性能,在2.5个太阳光照下,由于腔增强效应,最高蒸汽产生速率为3.17 kg m² h,远高于TiO颗粒和报道的光热转换材料。更重要的是,MPT-h纳米颗粒嵌入IPN海绵有效地抑制了垂直通道中细菌的生长,从而形成了一种抗菌的太阳能驱动水蒸发器。这种先进的海绵为太阳能驱动的废水处理提供了一种经济高效且实用的可持续能源技术。

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