Multi-functional polyelectrolyte materials in photothermal interfacial evaporation for clean water production

IF 9.3 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Green Chemistry Pub Date : 2024-12-18 DOI:10.1039/D4GC05004E
Jinliang Zhang, Yanlei Wang, Wenjia Guo, Rongrong Wang, Hao Li and Hongyan He
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Abstract

Freshwater scarcity has become one of the major obstacles threatening human development, while renewable energy technologies represented by solar energy are emerging as promising green methods for producing freshwater. Solar-driven interfacial evaporation technology has garnered widespread attention due to its high water evaporation rate and low operational costs. Among numerous interfacial evaporation materials, polyelectrolyte materials (PEMs) exhibit excellent performance in saline water due to the abundant charged structure on their chains, enabling interactions with water and salt ions. This review highlights the unique ionic benefits of PEMs in interfacial evaporation processes. Firstly, the presence of ionic effects allows PEMs to no longer rely solely on capillary action, but instead leverage significant osmotic pressure advantages to enhance water transport. Secondly, in the long-term enhancement of salt tolerance, PEMs do not only depend on structural design but also utilize the Donnan effect, generated by unique ionic interactions, to slow down the crystallization and accumulation of salt ions during ion diffusion and migration. Moreover, due to the anti-polyelectrolyte effect involving salt ions, the ionic chain structure of PEMs generates more intermediate water with low evaporation enthalpy, significantly boosting the evaporation process. This mechanism plays a crucial role in evaporation operations in real water systems. Finally, the tunable ion types in PEMs further broaden their application prospects in interfacial evaporation processes. By adjusting different charged functional groups, PEMs exhibit excellent antibacterial and anti-fouling properties, along with outstanding mechanical performance. Overall, PEMs hold great potential for future applications in water purification via interfacial evaporation.

Abstract Image

多功能聚电解质材料在光热界面蒸发清洁水生产中的应用
淡水短缺已成为威胁人类发展的主要障碍之一,而以太阳能为代表的可再生能源技术正在成为生产淡水的有前途的绿色方法。太阳能驱动界面蒸发技术因其高蒸发速率和低运行成本而受到广泛关注。在众多的界面蒸发材料中,聚电解质材料(PEMs)由于其链上丰富的带电结构,能够与水离子和盐离子相互作用,在盐水中表现出优异的性能。这篇综述强调了PEMs在界面蒸发过程中独特的离子优势。首先,离子效应的存在使PEMs不再仅仅依赖于毛细管作用,而是利用显著的渗透压优势来增强水的输送。其次,在长期增强耐盐性方面,PEMs不仅依赖于结构设计,还利用独特的离子相互作用产生的Donnan效应,减缓离子扩散和迁移过程中盐离子的结晶和积累。此外,由于盐离子的抗多电解质作用,PEMs的离子链结构产生了更多低蒸发焓的中间水,显著促进了蒸发过程。这一机制在实际水系统的蒸发操作中起着至关重要的作用。最后,PEMs中可调离子类型进一步拓宽了其在界面蒸发过程中的应用前景。通过调整不同的带电官能团,PEMs具有优异的抗菌和防污性能,同时具有优异的机械性能。总的来说,PEMs在通过界面蒸发净化水方面具有很大的应用潜力。
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来源期刊
Green Chemistry
Green Chemistry 化学-化学综合
CiteScore
16.10
自引率
7.10%
发文量
677
审稿时长
1.4 months
期刊介绍: Green Chemistry is a journal that provides a unique forum for the publication of innovative research on the development of alternative green and sustainable technologies. The scope of Green Chemistry is based on the definition proposed by Anastas and Warner (Green Chemistry: Theory and Practice, P T Anastas and J C Warner, Oxford University Press, Oxford, 1998), which defines green chemistry as the utilisation of a set of principles that reduces or eliminates the use or generation of hazardous substances in the design, manufacture and application of chemical products. Green Chemistry aims to reduce the environmental impact of the chemical enterprise by developing a technology base that is inherently non-toxic to living things and the environment. The journal welcomes submissions on all aspects of research relating to this endeavor and publishes original and significant cutting-edge research that is likely to be of wide general appeal. For a work to be published, it must present a significant advance in green chemistry, including a comparison with existing methods and a demonstration of advantages over those methods.
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