Achieving high anti-wear and corrosion protection performance of phenoxy-resin coatings based on reinforcing with functional graphene oxide

被引:21
作者
Wu, Daiqiong [1 ,2 ]
Su, Qiong [2 ]
Chen, Lei [1 ,3 ]
Cui, Haixia [1 ]
Zhao, Zhicheng [1 ]
Wu, Yanping [1 ]
Zhou, Huidi [1 ,3 ]
Chen, Jianmin [1 ]
机构
[1] Chinese Acad Sci, Lanzhou Inst Chem Phys, Key Lab Sci & Technol Wear & Protect Mat, Lanzhou 730000, Peoples R China
[2] Northwest Minzu Univ, Sch Chem Engn, Lanzhou 730030, Peoples R China
[3] Univ Chinese Acad Sci, Ctr Mat Sci & Optoelect Engn, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
Graphene oxide; Aniline oligomer; Composite coating; Wear resistance; Corrosion protection; Transfer film; MECHANICAL-PROPERTIES; FABRICATION; ETHER; METHACRYLATE); POLYANILINE;
D O I
10.1016/j.apsusc.2022.154156
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Poor anti-wear of the organic coatings severely affected their applications in engineering and technology fields. In this work, aniline oligomer grafted graphene oxide (GO) was used to improve the wear and corrosion per-formance of phenoxy-resin coating (aniline oligomer: AO; GO grafted by aniline oligomer: AOFG; phenoxy-resin: PHE). The wear and corrosion protection performance of the composite coatings was significantly improved compared with pure PHE coating because of the enhanced dispersibility of GO in organic matrix, and hydrogen bonds were formed between the grafted aniline oligomer on the GO surface and PHE. As the result, the coating densities and mechanical properties were significantly improved under enhanced interfacial strength between AOFG and PHE. In addition, the wear rate of AOFG/PHE coating decreased by 81 %, and the impedance modulus increased by five orders of magnitude compared to the pure PHE coating after 120 h of immersing. The wear mechanism and corrosion protection mechanism of the AOFG/PHE coating were also discussed.
引用
收藏
页数:11
相关论文
共 60 条
[1]  
Alammar A, 2020, J MEMBRANE SCI, V603
[2]   Architecting neonicotinoid-scavenging nanocomposite hydrogels for environmental remediation [J].
Alammar, Abdulaziz ;
Park, Sang-Hee ;
Ibrahim, Izwaharyanie ;
Arun, Deepak ;
Holtzl, Tibor ;
Dumee, Ludovic F. ;
Lim, Hong Ngee ;
Szekely, Gyorgy .
APPLIED MATERIALS TODAY, 2020, 21
[3]   Nanoflakes to nanorods and nanospheres transition of selenious acid doped polyaniline [J].
Amarnath, Chellacharny Anbalagan ;
Kim, Jinwoo ;
Kim, Kyungbae ;
Choi, Jaeyoung ;
Sohn, Daewon .
POLYMER, 2008, 49 (02) :432-437
[4]   Preparation and Characterization of Polyamide 66/ Poly( hydroxyl ether of bisphenol A) Blends Without Compatibilizer [J].
An, Jingjing ;
Cao, Xinyu ;
Ma, Yongmei ;
Ke, Yucai ;
Yang, Huahao ;
Wang, Haiqiao ;
Wang, Fosong .
JOURNAL OF APPLIED POLYMER SCIENCE, 2014, 131 (13)
[5]  
Bai J, 2020, PREPARATION PROPERTI, DOI [10.27470/d.cnki.ghbgc.2020.000014, DOI 10.27470/D.CNKI.GHBGC.2020.000014]
[6]   Study on the thermal and dielectric properties of covalently modified GO/XNBR composites [J].
Cai, Fei ;
Luo, Yanlong ;
Yang, Wei ;
Ye, Xin ;
Zhang, Hao ;
Zhu, Jing ;
Wu, Sizhu .
MATERIALS & DESIGN, 2021, 198
[7]  
Cheng X, 2018, THERMOELECTRIC PROPE
[8]   Thermally Sensitive N-Type Thermoelectric Aniline Oligomer-Block-Polyethylene Glycol-Block-Aniline Oligomer ABA Triblock Copolymers [J].
Cheng, Xiang-Le ;
Zhang, Yun-Fei ;
Wu, Yan-Guang ;
Fu, Ping ;
Lin, Zhi-Dong ;
Du, Fei-Peng ;
Cheng, Chun .
MACROMOLECULAR CHEMISTRY AND PHYSICS, 2018, 219 (09)
[9]   Polydopamine coated graphene oxide for anticorrosive reinforcement of water-borne epoxy coating [J].
Cui, Mingjun ;
Ren, Siming ;
Zhao, Haichao ;
Xue, Qunji ;
Wang, Liping .
CHEMICAL ENGINEERING JOURNAL, 2018, 335 :255-266
[10]   Fabrication and corrosion resistance of a hydrophobic micro-arc oxidation coating on AZ31 Mg alloy [J].
Cui, Xue-jun ;
Lin, Xiu-zhou ;
Liu, Chun-hai ;
Yang, Rui-song ;
Zheng, Xing-wen ;
Gong, Min .
CORROSION SCIENCE, 2015, 90 :402-412