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用于新能源系统腐蚀防护的新兴二维MXene:设计与机理

Emerging two dimensional MXene for corrosion protection in new energy systems: Design and mechanisms.

作者信息

Gong Baolong, Ma Xiaoqing, Wang Tiange, Hou Jiale, Ji Shuxian, Xu Qunjie, Cao Huaijie

机构信息

Shanghai Key Laboratory of Materials Protection and Advanced Materials in Electric Power, Shanghai Engineering Research Center of Energy-Saving in Heat Exchange Systems, College of Environmental and Chemical Engineering, Shanghai University of Electric Power, Shanghai 200090, China.

Shanghai Key Laboratory of Materials Protection and Advanced Materials in Electric Power, Shanghai Engineering Research Center of Energy-Saving in Heat Exchange Systems, College of Environmental and Chemical Engineering, Shanghai University of Electric Power, Shanghai 200090, China.

出版信息

Adv Colloid Interface Sci. 2025 Feb;336:103373. doi: 10.1016/j.cis.2024.103373. Epub 2024 Dec 5.

Abstract

With the development of new and clean energy (offshore wind power, fuel cells, aqueous zinc ion batteries, lithium-ion batteries, etc.), the corrosion and security problems in special environments of the new energy system have attracted much attention. Corrosion protection on the metals applied in new energy system can reduce the economic loss, security risk, and energy consumption, as well as guarantee the efficiency of energy system. Traditional coatings face challenges in agglomeration of nano fillers, structural control, environmental issues, and poor conductivity, which limits the applications. With features in controllable surface chemistry and composition, rich surface terminations, better conductivity than graphene oxide, high aspect-ratio, strong impermeability, and low friction coefficient, the two-dimensional (2D) MXene presents potential for applications in corrosion protection in new energy systems. Despite progress has been made in the MXene for corrosion protection, there is still a lack of comprehensive review regarding the design and mechanisms of anti-corrosive MXene-based materials for corrosion protection in new energy system. In this review, a brief induction of MXene and the specially four corrosive environments (offshore wind power at deep sea, bipolar plates in PEMFC environments, zinc anode in AZIBs, and current collectors in Li-ion battery) are presented. Importantly, the design strategies and mechanisms of the MXene-based anti-corrosive coatings on metals used in the special environments are discussed in detail. Finally, the challenges and research trends in the MXene-based coatings for new energy systems are prospected. This review provides further understanding of corrosion in new energy and would expand the application prospects of MXene.

摘要

随着新能源(海上风电、燃料电池、水系锌离子电池、锂离子电池等)的发展,新能源系统特殊环境中的腐蚀与安全问题备受关注。对新能源系统中使用的金属进行腐蚀防护可减少经济损失、安全风险和能源消耗,并保证能源系统的效率。传统涂层在纳米填料团聚、结构控制、环境问题和导电性差等方面面临挑战,这限制了其应用。二维(2D)MXene具有可控的表面化学和组成、丰富的表面端基、比氧化石墨烯更好的导电性、高长径比、强抗渗性和低摩擦系数等特点,在新能源系统的腐蚀防护中具有应用潜力。尽管MXene在腐蚀防护方面已取得进展,但对于用于新能源系统腐蚀防护的基于MXene的防腐材料的设计和机理仍缺乏全面综述。在本综述中,简要介绍了MXene以及四种特殊腐蚀环境(深海海上风电、质子交换膜燃料电池环境中的双极板、水系锌离子电池中的锌负极和锂离子电池中的集流体)。重要的是,详细讨论了用于特殊环境中金属的基于MXene的防腐涂层的设计策略和机理。最后,展望了基于MXene的新能源系统涂层的挑战和研究趋势。本综述有助于进一步了解新能源中的腐蚀问题,并将拓展MXene的应用前景。

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