Enhancement of physico-mechanical and electrochemical properties of zinc-rich epoxy coatings by optimised interfacial behaviour of reduced graphene oxide

被引:1
作者
Wang, Peng [1 ]
Wei, Jian [1 ]
Lv, Enhao [1 ]
Miao, Zhuang [1 ]
Zhang, Yanbin [1 ]
Li, Yuerong [1 ]
机构
[1] Xian Univ Architecture & Technol, Coll Mat Sci & Engn, Xian, Peoples R China
基金
中国国家自然科学基金;
关键词
Reduced graphene oxide; Zinc rich epoxy coating; Mechanical properties; Cathodic protection; Interfacial effects; CORROSION PROTECTION PERFORMANCE; POWDER COATINGS; CARBON NANOTUBES; STEEL; NANOCOMPOSITE; RESISTANCE; WATER; CLAY; EIS;
D O I
10.1016/j.diamond.2024.111815
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
High porosity and low utilization of zinc powder are two major challenges for conventional zinc-rich epoxy (ZRE) coatings. Although these two challenges can be overcome by the addition of graphene material, it also brings new challenges due to the addition of more fillers leading to degradation of mechanical properties and galvanic coupling corrosion. In this work, the effect of the interfacial behaviour of reduced graphene oxide (RGO) in coatings on the mechanical properties, shielding properties and cathodic protection properties of RGO/ZRE composite coatings has been comprehensively evaluated. In terms of mechanical properties, RGO additions of 0.3 wt%, 0.75 wt% and 1.2 wt% exhibited RGO enhancement stage, RGO interfacial compatibility influence stage and RGO agglomeration influence stage. In terms of cathodic protection performance, RGO additions of 0.3 wt%, 0.75 wt% and 1.2 wt% exhibited a zinc powder utilization enhancement stage, an accelerated zinc powder consumption stage by galvanic coupling corrosion, and a significantly reduced initial shielding stage, respectively. The RGO/ZRE composite coating has the best comprehensive performance at 0.3 wt% RGO addition, and the composite coating did not crack or peel off in impact and bending tests, the coefficient of friction was 0.64465, the width of abrasion mark was 1.18 mm, and the coating adhesion was 5.81 MPa. The 0.3 wt%-RGO/ ZRE composite coating has insignificant galvanic coupling corrosion and has a cathodic protection time of 720 h, and significantly higher low-frequency impedance modulus than the ZRE coatings. The shielding, mechanical, and cathodic protection properties of ZRE coatings can be significantly improved with appropriate RGO additions, and the galvanic coupling corrosion and agglomeration induced by the high RGO content are the key factors limiting the application of RGO in the coatings.
引用
收藏
页数:12
相关论文
共 46 条
[1]   Synthesis and evaluating corrosion protection effects of emeraldine base PAni/clay nanocomposite as a barrier pigment in zinc-rich ethyl silicate primer [J].
Akbarinezhad, E. ;
Ebrahimi, M. ;
Sharif, F. ;
Attar, M. M. ;
Faridi, H. R. .
PROGRESS IN ORGANIC COATINGS, 2011, 70 (01) :39-44
[2]   The influence of graphene on the cathodic protection performance of zinc-rich epoxy coatings [J].
Bai, Weichen ;
Ma, Yuantai ;
Meng, Meijiang ;
Li, Ying .
PROGRESS IN ORGANIC COATINGS, 2021, 161
[3]   Preparation of graphene nanoplate added zinc-rich epoxy coatings for enhanced sacrificial anode-based corrosion protection [J].
Cao, Xiangkang ;
Huang, Feng ;
Huang, Chen ;
Liu, Jing ;
Cheng, Y. Frank .
CORROSION SCIENCE, 2019, 159
[4]   Achieving high performance corrosion and wear resistant epoxy coatings via incorporation of noncovalent functionalized graphene [J].
Chen, Cheng ;
Qiu, Shihui ;
Cui, Mingjun ;
Qin, Songlv ;
Yan, Guoping ;
Zhao, Haichao ;
Wang, Liping ;
Xue, Qunji .
CARBON, 2017, 114 :356-366
[5]   Electrically Conductive "Alkylated" Graphene Paper via Chemical Reduction of Amine-Functionalized Graphene Oxide Paper [J].
Compton, Owen C. ;
Dikin, Dmitriy A. ;
Putz, Karl W. ;
Brinson, L. Catherine ;
Nguyen, SonBinh T. .
ADVANCED MATERIALS, 2010, 22 (08) :892-+
[6]   Influence of Zinc Content and Chloride Concentration on the Corrosion Protection Performance of Zinc-Rich Epoxy Coatings Containing Carbon Nanotubes on Carbon Steel in Simulated Concrete Pore Environments [J].
Cubides, Yenny ;
Su, Shei Sia ;
Castaneda, Homero .
CORROSION, 2016, 72 (11) :1397-1423
[7]   Study of water permeation dynamics and anti-corrosion mechanism of graphene/zinc coatings [J].
Ding, Rui ;
Zheng, Yan ;
Yu, Haibin ;
Li, Weihua ;
Wang, Xiao ;
Gui, Taijiang .
JOURNAL OF ALLOYS AND COMPOUNDS, 2018, 748 :481-495
[8]   Facile chemical synthesis of nitrogen-doped graphene sheets and their electrochemical capacitance [J].
Du, Xusheng ;
Zhou, Cuifeng ;
Liu, Hong-Yuan ;
Mai, Yiu-Wing ;
Wang, Guoxiu .
JOURNAL OF POWER SOURCES, 2013, 241 :460-466
[9]   Humidity-sensitive macroscopic lubrication behavior of an as-sprayed graphene oxide coating [J].
Gao, Xue ;
Chen, Lei ;
Ji, Li ;
Liu, Xiaohong ;
Li, Hongxuan ;
Zhou, Huidi ;
Chen, Jianmin .
CARBON, 2018, 140 :124-130
[10]   Design alternate epoxy-reduced graphene oxide/epoxy-zinc multilayer coatings for achieving long-term corrosion resistance for Cu [J].
Ge, Tianhao ;
Zhao, Wenjie ;
Wu, Xuedong ;
Wu, Yangmin ;
Shen, Lu ;
Ci, Xiaojing ;
He, Yanlin .
MATERIALS & DESIGN, 2020, 186 (186)