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用于高效太阳能蒸汽产生的轻质、中孔、高吸收性全纳米纤维气凝胶。

Lightweight, Mesoporous, and Highly Absorptive All-Nanofiber Aerogel for Efficient Solar Steam Generation.

机构信息

School of Environment and Civil Engineering, Dongguan University of Technology , Guangdong 523808, China.

Department of Mechanical Engineering, University of Colorado , Boulder, Colorado 80309, United States.

出版信息

ACS Appl Mater Interfaces. 2018 Jan 10;10(1):1104-1112. doi: 10.1021/acsami.7b15125. Epub 2017 Dec 29.

Abstract

The global fresh water shortage has driven enormous endeavors in seawater desalination and wastewater purification; among these, solar steam generation is effective in extracting fresh water by efficient utilization of naturally abundant solar energy. For solar steam generation, the primary focus is to design new materials that are biodegradable, sustainable, of low cost, and have high solar steam generation efficiency. Here, we designed a bilayer aerogel structure employing naturally abundant cellulose nanofibrils (CNFs) as basic building blocks to achieve sustainability and biodegradability as well as employing a carbon nanotube (CNT) layer for efficient solar utilization with over 97.5% of light absorbance from 300 to 1200 nm wavelength. The ultralow density (0.0096 g/cm) of the aerogel ensures that minimal material is required, reducing the production cost while at the same time satisfying the water transport and thermal-insulation requirements due to its highly porous structure (99.4% porosity). Owing to its rationally designed structure and thermal-regulation performance, the bilayer CNF-CNT aerogel exhibits a high solar-energy conversion efficiency of 76.3% and 1.11 kg m h at 1 kW m (1 Sun) solar irradiation, comparable or even higher than most of the reported solar steam generation devices. Therefore, the all-nanofiber aerogel presents a new route for designing biodegradable, sustainable, and scalable solar steam generation devices with superb performance.

摘要

全球淡水资源短缺促使人们大力开展海水淡化和废水净化工作;在这些方法中,太阳能蒸汽发生技术通过有效利用丰富的太阳能来提取淡水是非常有效的。对于太阳能蒸汽发生技术,主要的重点是设计新的材料,这些材料必须是可生物降解、可持续、低成本且具有高效率的太阳能蒸汽发生效率。在这里,我们设计了一种双层气凝胶结构,采用丰富的天然纤维素纳米纤维(CNF)作为基本构建块,以实现可持续性和可生物降解性,并采用碳纳米管(CNT)层来高效利用太阳能,其在 300 至 1200nm 波长范围内的光吸收率超过 97.5%。气凝胶的超低密度(0.0096g/cm)确保了所需材料最少,从而降低了生产成本,同时由于其高度多孔的结构(99.4%的孔隙率)满足了水输送和隔热的要求。由于其合理的结构设计和热调节性能,双层 CNF-CNT 气凝胶在 1kW/m 的太阳能辐照下(1 个太阳)表现出 76.3%的高太阳能转换效率和 1.11kg·m-2·h-1,可与大多数报道的太阳能蒸汽发生装置相媲美,甚至更高。因此,全纳米纤维气凝胶为设计具有出色性能的可生物降解、可持续和可扩展的太阳能蒸汽发生装置提供了新途径。

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