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用于高效太阳能驱动海水淡化和热电发电的多功能全生物质双层气凝胶

Multifunctional Fully Biomass-Derived Bilayer Aerogel for Efficient Solar-Driven Desalination and Thermoelectricity Generation.

作者信息

Chen Shilin, Yang Beibei, Yang Dongjie, Qiu Xueqing, Zheng Dafeng

机构信息

School of Chemistry and Chemical Engineering, Guangdong Engineering Research Center for Green Fine Chemicals, South China University of Technology, Guangzhou 510640, China.

State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, 381 Wushan Road Tianhe District, Guangzhou 510640, China.

出版信息

ACS Nano. 2025 Jun 3;19(21):19681-19696. doi: 10.1021/acsnano.5c01360. Epub 2025 May 22.

Abstract

Solar-powered interfacial evaporation is an emerging solar energy harvesting technology developed to address the global energy crisis and freshwater shortage. However, non-directionally flowing water inevitably acts as a medium for top-down heat transfer via thermal convection, resulting in a poor evaporation performance. Herein, a fully biomass-based bilayer multifunctional solar evaporator consists of an upper lignin-derived porous carbon (LPC)-embedded chitosan/lignin (CSL) composite aerogel layer featuring vertically small channels and an underlying hydrophilic CS aerogel. The photothermal and evaporation capabilities of the top layer, combined with enhanced capillary forces, drive efficient evaporation. The presence of lignin not only increases the hydrophilicity and saturated water content of the composite aerogel but also serves as a precursor for light-absorbing materials. The bottom large-sized CS aerogel channels inhibit excess water transfer to the upper layer and also reduce water vaporization enthalpy. This unique design allows it to maximize heat from sunlight and localize the generated heat while providing an adequate water supply. Thus, the optimized self-floatable LPC@CSL-5:5@CS bilayered aerogel evaporator achieved a desirable water evaporation rate of 1.717 kg m h and energy efficiency of 90.63% under one solar (1 kW m) irradiation. Furthermore, the designed evaporator also presented durable salt tolerance, excellent stability, and recyclability. Notably, the LPC-50 mg@CSL-5:5 aerogel generated a voltage output of 279 mV under 3 sun, which could power an electronic fan. The overall system is both all-biomass and cost-effective, and this multifunctional aerogel evaporator shows great potential for large-scale applications, including solar desalination, wastewater purification, and thermoelectric generation.

摘要

太阳能驱动的界面蒸发是一种新兴的太阳能收集技术,旨在解决全球能源危机和淡水短缺问题。然而,无定向流动的水不可避免地充当了通过热对流进行自上而下热传递的介质,导致蒸发性能不佳。在此,一种完全基于生物质的双层多功能太阳能蒸发器由上层嵌入木质素衍生多孔碳(LPC)的壳聚糖/木质素(CSL)复合气凝胶层和下层亲水性CS气凝胶组成。顶层的光热和蒸发能力,结合增强的毛细作用力,驱动高效蒸发。木质素的存在不仅增加了复合气凝胶的亲水性和饱和含水量,还作为光吸收材料的前体。底部大尺寸的CS气凝胶通道抑制了过多的水向上层转移,同时也降低了水汽化焓。这种独特的设计使其能够最大限度地吸收太阳光的热量并将产生的热量局部化,同时提供充足的水源。因此,优化后的可自漂浮的LPC@CSL-5:5@CS双层气凝胶蒸发器在一个太阳(1 kW m)辐射下实现了1.717 kg m h的理想水蒸发速率和90.63%的能量效率。此外,所设计的蒸发器还具有持久的耐盐性、出色的稳定性和可回收性。值得注意的是,LPC-50 mg@CSL-5:5气凝胶在3个太阳光照下产生了279 mV的电压输出,可为电子风扇供电。整个系统全是生物质且具有成本效益,这种多功能气凝胶蒸发器在大规模应用方面显示出巨大潜力,包括太阳能海水淡化、废水净化和热电发电。

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