原位合成用于太阳能驱动界面蒸发的自浮式 Janus Fe3O4@IF 蒸发器

IF 3.6 4区 工程技术 Q3 ENERGY & FUELS Energy technology Pub Date : 2024-06-28 DOI:10.1002/ente.202400746
Lingxue Kong, Ye Jia, Ke Zeng, Yuping Wang, Tengdi Zhang, Anmin Liu, Liguo Gao, Tingli Ma
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引用次数: 0

摘要

太阳能驱动的界面蒸发是解决全球淡水短缺问题最有前景的技术之一。与集成结构相比,具有非对称润湿性的单片系统可以单独使用,从而在不牺牲热量局部管理的前提下降低结构的复杂性。本文通过简单的原位水热法制造出了具有非对称润湿性的Janus Fe3O4@IF蒸发器单片结构。这种低成本的Janus Fe3O4@IF蒸发器可以自浮,具有相当大的比表面积、高孔隙率和低密度,在200-2500 nm的宽带波长范围内具有98.1%的优异光吸收特性。由于具有很强的毛细作用和 Janus 润湿性,即使在处理 20 wt%的高浓度盐水时,蒸发也很高效(1.64 kg m-2 h-1)和稳定。这项工作展示了实现高性能太阳能驱动界面蒸发和卓越盐排斥能力的有效策略,可用于海水淡化。
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In Situ Synthesis of Self-Floating Janus Fe3O4@IF Evaporator for Solar-Driven Interfacial Evaporation

Solar-driven interfacial evaporation is one of the most promising technologies to address global freshwater shortages. Compared with the integrated structure, monolithic system with asymmetric wettability can be used alone to reduce the structural complexity without sacrificing the localized management of heat. Herein, a monolithic structure of Janus Fe3O4@IF evaporator with asymmetric wettability has been fabricated via a simple in situ hydrothermal method. The low-cost Janus Fe3O4@IF evaporator can be self-floating with a sizable surface area, high porosity, and low density, which presents excellent light absorption features of 98.1% within a broadband wavelength range of 200–2500 nm. Due to the strong capillarity action and Janus wettability, the evaporation is efficient (1.64 kg m−2 h−1) and stable even treating with highly concentrated brine of 20 wt%. This work demonstrates an effective strategy for achieving high-performance solar-driven interfacial evaporation and superior salt rejection capability, which can be potentially utilized in seawater desalination.

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来源期刊
Energy technology
Energy technology ENERGY & FUELS-
CiteScore
7.00
自引率
5.30%
发文量
0
审稿时长
1.3 months
期刊介绍: Energy Technology provides a forum for researchers and engineers from all relevant disciplines concerned with the generation, conversion, storage, and distribution of energy. This new journal shall publish articles covering all technical aspects of energy process engineering from different perspectives, e.g., new concepts of energy generation and conversion; design, operation, control, and optimization of processes for energy generation (e.g., carbon capture) and conversion of energy carriers; improvement of existing processes; combination of single components to systems for energy generation; design of systems for energy storage; production processes of fuels, e.g., hydrogen, electricity, petroleum, biobased fuels; concepts and design of devices for energy distribution.
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