"Smart" coatings for active corrosion protection based on multi-functional micro and nanocontainers

被引:333
作者
Zheludkevich, M. L. [1 ]
Tedim, J. [1 ]
Ferreira, M. G. S. [1 ]
机构
[1] Univ Aveiro, CICECO, DEMaC, P-3870193 Aveiro, Portugal
关键词
Self-healing; Coating; Corrosion inhibitor; Microcontainer; Nanocontainer; SOL-GEL COATINGS; ELECTROACTIVE CONDUCTING POLYMERS; ANTICORROSION COATINGS; FILIFORM CORROSION; COATED AA2024-T3; ORGANIC COATINGS; CONVERSION FILM; MG ALLOY; MAGNESIUM; RESISTANCE;
D O I
10.1016/j.electacta.2012.04.095
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The application of organic coatings is the most common and cost effective method for corrosion protection and extension of service life of many metallic structures in corrosive environments. However, the degradation processes rapidly develop once the disruption of the protective barrier occurs. Therefore, an active protection based on the "self-healing" of defects in coatings is necessary to attain a long-term effect. The present paper brings a brief summary of recent works in the area of new multi-level protective systems, based on the controlled release of anticorrosion species from "smart" micro and nanocontainers incorporated into a polymer or hybrid coating matrix. Nanocontainer (or nanoreservoir) is a nanosized volume filled with an active substance confined in a porous core and/or a shell which precludes the direct contact between the active agent and the adjacent environment. Several types of nanoreservoirs of corrosion inhibitors, nanotraps and microcapsules with water displacers have been recently developed, incorporated into coating systems and assessed in terms of active corrosion protection. A multi-level self-healing approach combining several damage prevention and restoration mechanisms within the same system, including the entrapment of corrosive ions, corrosion inhibition and water displacement from active defects, is here reviewed. (c) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:314 / 323
页数:10
相关论文
共 51 条
[1]   Self-healing anticorrosion coatings based on pH-sensitive polyelectrolyte/inhibitor sandwichlike nanostructures [J].
Andreeva, Daria V. ;
Fix, Dmitri ;
Moehwald, Helmuth ;
Shchukin, Dmitry G. .
ADVANCED MATERIALS, 2008, 20 (14) :2789-+
[2]   Buffering polyelectrolyte multilayers for active corrosion protection [J].
Andreeva, Daria V. ;
Fix, Dmitri ;
Moehwald, Helmuth ;
Shchukin, Dmitry G. .
JOURNAL OF MATERIALS CHEMISTRY, 2008, 18 (15) :1738-1740
[3]  
Bohm S, 2001, MATER CORROS, V52, P896, DOI 10.1002/1521-4176(200112)52:12<896::AID-MACO896>3.0.CO
[4]  
2-8
[5]   Active corrosion protection and corrosion sensing in chromate-free organic coatings [J].
Buchheit, RG ;
Guan, H ;
Mahajanam, S ;
Wong, F .
PROGRESS IN ORGANIC COATINGS, 2003, 47 (3-4) :174-182
[6]   Chitosan-based self-healing protective coatings doped with cerium nitrate for corrosion protection of aluminum alloy 2024 [J].
Carneiro, J. ;
Tedim, J. ;
Fernandes, S. C. M. ;
Freire, C. S. R. ;
Silvestre, A. J. D. ;
Gandini, A. ;
Ferreira, M. G. S. ;
Zheludkevich, M. L. .
PROGRESS IN ORGANIC COATINGS, 2012, 75 (1-2) :8-13
[7]   An impedance model for the estimation of water absorption in organic coatings. Part I: A linear dielectric mixture equation [J].
Castela, AS ;
Simoes, AM .
CORROSION SCIENCE, 2003, 45 (08) :1631-1646
[8]   In situ microstructure control of oriented layered double hydroxide monolayer films with curved hexagonal crystals as superhydrophobic materials [J].
Chen, Hongyun ;
Zhang, Fazhi ;
Fu, Shanshan ;
Duan, Xue .
ADVANCED MATERIALS, 2006, 18 (23) :3089-+
[9]   Protective coatings on magnesium and its alloys - a critical review [J].
Gray, JE ;
Luan, B .
JOURNAL OF ALLOYS AND COMPOUNDS, 2002, 336 (1-2) :88-113
[10]   Corrosion of zinc-magnesium coatings: Mechanism of paint delamination [J].
Hausbrand, Rene ;
Stratmann, Martin ;
Rohwerder, Michael .
CORROSION SCIENCE, 2009, 51 (09) :2107-2114