结合石墨烯改性云母和导电镍颗粒,增强环氧富锌涂料的耐腐蚀性。

IF 3.8 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Frontiers in Chemistry Pub Date : 2025-04-30 eCollection Date: 2025-01-01 DOI:10.3389/fchem.2025.1544762
Yong Jiang, Haiping Zhang, Hui Zhang, Yuanyuan Shao, Jesse Zhu, Xuliang Jin
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引用次数: 0

摘要

环氧富锌涂料通常要求含锌量高,以保证其防腐性能。但是,过量的锌粉含量会降低涂层的力学性能,增加经济成本,危害环境等。因此,本文旨在通过引入导电石墨烯云母粉和导电镍两种导电颗粒材料,减少锌粉的用量,提高环氧富锌涂料的防腐性能。首先将导电石墨烯负载在云母粉上,将得到的导电石墨烯-云母粉和导电镍引入到环氧富锌涂料中,部分取代锌组分。采用EIS和盐雾试验对涂层的防腐性能进行了系统评价。由此制备的含镍粉或导电石墨烯-云母的环氧富锌涂层具有出色的耐盐雾性能,持续时间长达2000 h,与含70%纯锌粉的传统涂层相比,锌含量降低60%或45%时具有更好的防腐性能。本研究引入了一种新型导电云母材料,研究了导电金属镍添加剂,有效降低环氧富锌涂料中的锌含量,为开发高性能防腐涂料提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Incorporating graphene-modified mica and conductive nickel particles for enhanced corrosion resistance in epoxy zinc-rich coatings.

Epoxy zinc-rich coatings usually require high zinc content to ensure its anti-corrosion performance. However, excessive zinc powder content will reduce the mechanical properties of the coating, increase the economic cost, harm the environment, etc. Therefore, this paper aims to reduce the amount of zinc powder and improve the corrosion performance of epoxy zinc-rich coatings by introducing two kinds of conductive particle materials, conductive graphene-mica powder and conductive nickel. Conductive graphene was first loaded on mica powder and the obtained conductive graphene-mica powder and the conductive nickel were introduced to the epoxy zinc-rich coatings to partially replace zinc component. The anti-corrosion properties of the coating were systematically evaluated by EIS and salt spray test. The resulting epoxy zinc-rich coating with nickel powder or conductive graphene-mica demonstrates outstanding salt spray resistance, lasting up to 2,000 h, exhibiting superior anti-corrosion performance at reduced zinc content of 60% or 45% compared to conventional coatings with 70% pure zinc powder. This study introduces a novel conductive mica material and investigates conductive metal nickel additive, effectively reducing zinc content in epoxy zinc-rich coatings, which offers valuable insights for developing high-performance anti-corrosion coatings.

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来源期刊
Frontiers in Chemistry
Frontiers in Chemistry Chemistry-General Chemistry
CiteScore
8.50
自引率
3.60%
发文量
1540
审稿时长
12 weeks
期刊介绍: Frontiers in Chemistry is a high visiblity and quality journal, publishing rigorously peer-reviewed research across the chemical sciences. Field Chief Editor Steve Suib at the University of Connecticut is supported by an outstanding Editorial Board of international researchers. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to academics, industry leaders and the public worldwide. Chemistry is a branch of science that is linked to all other main fields of research. The omnipresence of Chemistry is apparent in our everyday lives from the electronic devices that we all use to communicate, to foods we eat, to our health and well-being, to the different forms of energy that we use. While there are many subtopics and specialties of Chemistry, the fundamental link in all these areas is how atoms, ions, and molecules come together and come apart in what some have come to call the “dance of life”. All specialty sections of Frontiers in Chemistry are open-access with the goal of publishing outstanding research publications, review articles, commentaries, and ideas about various aspects of Chemistry. The past forms of publication often have specific subdisciplines, most commonly of analytical, inorganic, organic and physical chemistries, but these days those lines and boxes are quite blurry and the silos of those disciplines appear to be eroding. Chemistry is important to both fundamental and applied areas of research and manufacturing, and indeed the outlines of academic versus industrial research are also often artificial. Collaborative research across all specialty areas of Chemistry is highly encouraged and supported as we move forward. These are exciting times and the field of Chemistry is an important and significant contributor to our collective knowledge.
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