外援型自修复智能技术在涂料中的应用

姜立萍, 牛腾, 魏惠荣, 张兴辉, 李玉新

化工新型材料 ›› 2022, Vol. 50 ›› Issue (6) : 25 -31.

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化工新型材料 ›› 2022, Vol. 50 ›› Issue (6) : 25-31. DOI: 10.19817/j.cnki.issn1006-3536.2022.06.005
综述与专论

外援型自修复智能技术在涂料中的应用

    姜立萍, 牛腾, 魏惠荣, 张兴辉, 李玉新
作者信息 +

Application of extrinsic self-healing smart technology in coating

  • Jiang Liping, Niu Teng, Wei Huirong, Zhang Xinghui, Li Yuxin
Author information +
文章历史 +
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摘要

随着科技的发展,涂料的应用领域不断拓展,新型功能性涂料层出不穷,其中,智能涂料成为近年来涂料行业的研发热点之一,尤其是外援型自修复智能涂料的研究日益广泛。探讨了转化膜缓蚀、微胶囊等外援型自修复智能技术在涂料中应用的最新进展,包括各自的自修复机理、性能特点、发展前景等。提出在涂料中协同应用多重自修复智能保护技术,以解决不同自修复智能涂料开发中存在的瓶颈问题。

Abstract

With the development of science and technology,the application of coatings is persistently expanding,and new functional coatings thrive.Among them,the research and development of smart coatings has become one of the hotspots in the coating industry in recent years,especially the research of extrinsic self-healing smart coatings.The latest progress in the application of extrinsic self-healing smart technologies such as corrosion inhibition technology of conversion film and microcapsule technology in coatings was discussed in detail,including their self-healing mechanism,performance characteristics and development prospects and etc..The collaborative application of multiple self-healing smart protection technologies in coatings was proposed to solve the bottleneck problems in the development of different self-healing smart coatings.

关键词

自修复技术 / 智能涂料 / 外援型自修复涂料 / 转化膜缓蚀技术 / 微胶囊

Key words

self-healing technology / smart coating / extrinsic self-healing coating / conversion film corrosion inhibition technology / microcapsule

引用本文

引用格式 ▾
外援型自修复智能技术在涂料中的应用[J]. 化工新型材料, 2022, 50(6): 25-31 DOI:10.19817/j.cnki.issn1006-3536.2022.06.005

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参考文献

[1] Brooma E W.Modifying organic coatings to provide corrosion resistance:part Ⅱ-inorganic additives and inhibitors[J].Metal Finishing,2002,100:42-53.
[2] Dong Qiangsheng,Zhou Xingxing,Feng Yuanjia,et al.Insights into self-healing behavior and mechanism of dicalcium phosphate dihydrate coating on biomedical Mg[J].Bioactive Materials,2021(6):158-168.
[3] Montemor M F.Functional and smart coatings for corrosion protection:a review of recent advances[J].Surface and Coatings Technology,2014,258:17-37.
[4] Raps D,Hack T,Wehr J,et al.Electrochemical study of inhibitor-containing organic-inorganic hybrid coatings on AA2024[J].Corrosion Science,2009,51:1012-1021.
[5] NamN D,Ha P T N,Anh H T,et al.Role of hydroxyl group in cerium hydroxycinnamate on corrosion inhibition of mild steel in 0.6M NaCl solution[J].Journal of Saudi Chemical Society,2018,23(1):30-42.
[6] Javidparvar Ali Asghar,Naderi Reza,Ramezanzadehh Bahram.Epoxy-polyamide nanocomposite coating with graphene oxide as cerium nanocontainer generating effective dual active/barrier corrosion protection[J].Composites Part B:Engineering,2019,172:363-375.
[7] Castro Yolanda,Özmen Eren,Durán Alicia.Integrated self-healing coating system for outstanding corrosion protection of AA2024[J].Surface & Coatings Technology,2020,387:125521.
[8] Calado Lénia M,Taryba Maryna G,Morozov Yegor,et al.Novel smart and self-healing cerium phosphate-based corrosion inhibitor for AZ31 magnesium alloy[J].Corrosion Science,2020,170:108648.
[9] Guo Jingjing,Liu Xianfeng,Du Keqin,et al.An anti-stripping and self-healing micro-arc oxidation/acrylamide gel composite coating on magnesium alloy AZ31[J].Materials Letters,2020,260:126912.
[10] Shi C,Shao Y,Wang Y.Influence of submicron-sheet zinc phosphate synthesised by sol-gel method on anticorrosion of epoxy coating[J].Progress in Organic Coatings,2018,117:102-117.
[11] Huang Qian,Liu Liangliang,Wu Zhongzhen,et al.Corrosion-resistant plasma electrolytic oxidation coating modified by Zinc phosphate and self-healing mechanism in the salt-spray environment[J].Surface & Coatings Technology,2020,384:125321.
[12] White S R,Sottos N R,Geubelle P H,et al.Autonomic healing of polymer composites[J].Nature,2001,409:794-797.
[13] Fix D,Andreeva D V,Shchukin D G,et al.Application of inhibitor-loaded halloysite nanotubes in active anti-corrosive coatings[J].Advanced Functional Materials,2009,19(11):1720-1727.
[14] Borisova Dimitriya,Möhwald Helmuth,Shchukin Dmitry G.Influence of embedded nanocontainers on the efficiency of active anticorrosive coatings for aluminum alloys part I:influence of nanocontainer concentration[J].ACS Applied Materials & Interfaces,2012,4(6):2931-2939.
[15] Sharma Nikhil,Sharma Shruti,Sharma Sandeep K,et al.Evaluation of corrosion inhibition and self healing capabilities of nanoclay and tung oil microencapsulated epoxy coatings on rebars in concrete[J].Construction and Building Materials,2020,259:120278.
[16] Tedim J,Zheludkevich M L,Bastos A C,Aet al.Influence of preparation conditions of layered double hydroxide conversion films on corrosion protection[J].Electrochimica Acta,2014,117:164-171.
[17] Williams G,Geary S,McMurray H N.Smart release corrosion inhibitor pigments based on organic ion-exchange resin[J].Corrosion Science,2012,57:139-147.
[18] Li Jun,Hughes Andrew D,Kalantar Tom H.Pickering-emulsion-templated encapsulation of a hydrophilic amine and its enhanced stability using poly (allyl amine)[J].ACS Macro Letters,2014,3(10):976-980.
[19] Wang Haoran,Zhou Qixin.Evaluation and failure analysis of linseed oil encapsulated self-healing anticorrosive coating[J].Progress in Organic Coatings,2018,118:108-115.
[20] Latnikova A,Grigoriev D O,Hartmann J.Polyfunctional active coatings with damage-triggered water-repelling effect[J].Soft Matter,2011,7(2):369-372.
[21] Haghayegh M,Mirabedini S M,Yeganeh H.Microcapsules containing multi-functional reactive isocyanate-terminated polyurethane prepolymer as a healing agent.part 1:synthesis and optimization of reaction conditions[J].Journal of Materials Science,2016,51(6):3056-3068.
[22] Kardar P.Preparation of polyurethane microcapsules with different polyols component for encapsulation of isophorone diisocyanate healing agent[J].Progress in Organic Coatings,2015,89:271-276,
[23] Wang Wei,Xu Likun,Li Xiangbo,et al.Self-healing properties of protective coatings containing isophorone diisocyanate microcapsules on carbon steel surfaces[J].Corrosion Science,2014,80:528-535.
[24] Li Chunmei,Tan Jiaojun,Gu Junwei,et al.Rapid and efficient synthesis of isocyanate microcapsules via thiol-ene photopolymerization in Pickering emulsion and its application in self-healing coating[J].Composites Science and Technology,2016,123:250-258.
[25] Wei H,Wang Y,Guo J,et al.Advanced micro/nanocapsules for self-healing smart anticorrosion coatings[J].Journal of Materials Chemistry A,2015,3:469-480.
[26] Zheludkevich M L,Tedim J,SFerreira M G.Smart coatings for active corrosion protection based on multi-functional micro and nanocontainers[J].Electrochimica Acta,2012,82:314-323.
[27] Shchukina E,Shchukin D,Grigoriev D.Effect of inhibitor-loaded halloysites and mesoporous silica nanocontainers on corrosion protection of powder coatings[J].Progress in Organic Coatings,2017,102:60-65.
[28] Fix Dmitri,Andreeva Daria V,Lvov Yuri M,et al.Application of inhibitor-loaded halloysite nanotubes in active anti-corrosive coatings[J].Advanced Functional Materials,2009,19(11):1720-1727.
[29] Lvov Yuri M,Shchukin Dmitry G,Möhwald Helmuth,et al.Halloysite clay nanotubes for controlled release of protective agents[J].ACS Nano,2008,2(5):814-820.
[30] Shchukin D G,Lamaka S V,Yasakau K A,et al.Active anticorrosion coatings with halloysite nanocontainers[J].The Journal of Physical Chemistry C,2008,112(4):958-964.
[31] Zea C,Barranco-García R,Chico B,et al.Smart mesoporous silica nanocapsules as environmentally friendly anticorrosive pigments[J].International Journal of Corrosion,2015(1):1-8.
[32] Borisova Dimitriya,Möhwald Helmuth,Shchukin Dmitry G.Mesoporous silica nanoparticles for active corrosion protection[J].ACS Nano,2011,5(3):1939-1946.
[33] Qian Bei,Song Zuwei,Hao Long,et al.Self-healing epoxy coatings based on nanocontainers for corrosion protection of mild steel[J].Journal of the Electrochemical Society C,2017,164(2):54-60.
[34] Wen Jiaxin,Lei Jinglei,Chen Jinlong,et al.Polyethylenimine wrapped mesoporous silica loaded benzotriazole with high pH-sensitivity for assembling self-healing anti-corrosive coatings[J].Materials Chemistry and Physics,2020,253:123425.
[35] Wang Jixing,Tang Junlei,Zhang Hailong,et al.A CO2-responsive anti-corrosion ethyl cellulose coating based on the pH-response mechanism[J].Corrosion Science,2021,180:109194.
[36] Li H Y,Li S,Li F B,et al.Fabrication of SiO2 wrapped polystryene microcapsules by pickering polymerization for self-lubricating coatings[J].Journal of Colloid Interface Science,2018,528:92-99.
[37] Li Haiyan,Ma Yingjie,Li Zhike,et al.Synthesis of novel multilayer composite microcapsules and their application in self-lubricating polymer composites[J].Composites Science and Technology,2018,164:120-128.
[38] Li K,Li H,Cui Y,et al.Dual-functional coatings with self-lubricating and self-healing properties by combining poly (urea-formaldehyde)/SiO2 hybrid microcapsules containing linseed oil[J].Industrial & Engineering Chemistry Research,2019,58:22032-22039.
[39] Wu Fang,Li Junfeng,Quan Heng,et al.Robust polyurea/poly(urea-formaldehyde) hybrid microcapsules decorated with Al2O3 nano-shell for improved self-healing performance[J].Applied Surface Science,2021,542:148561.
[40] Sun D,An J,Wu G,et al.Double-layered reactive microcapsules with excellent thermal and non-polar solvent resistance for self-healing coatings[J].Journal of Materials Chemistry A,2015,3(8):4435-4444.
[41] Ma Yanxuan,Zhang Yingrui,Liu Jiatong,et al.GO-modified double-walled polyurea microcapsules/epoxy composites for marine anticorrosive self-healing coating[J].Materials and Design,2020,189:108547.
[42] Yi H,Yang Y,Gu X,et al.Multilayer composite microcapsules synthesized by Pickering emulsion templates and their application in self-healing coating[J].Journal of Materials Chemistry A,2015,3(26):13749-13757.
[43] Sun Dawei,Zheng Yan,Lan Mingzhang,et al.Robust and impermeable metal shell microcapsules for one-component self-healing coatings[J].Applied Surface Science,2021,546:149114.
[44] Cui Gan,Bi Zhenxiao,Wang Shuaihua,et al.A comprehensive review on smart anti-corrosive coatings[J].Progress in Organic Coatings,2020,148:105821.
[45] Montemor M F.Functional and smart coatings for corrosion protection:a review of recent advances[J].Surface and Coatings Technology,2014,258:17-37.
[46] Attaei Mahboobeh,Calado Lénia M,Taryba Maryna G,et al.Autonomous self-healing in epoxy coatings provided by high efficiency isophorone diisocyanate (IPDI) microcapsules for protection of carbon steel[J].Progress in Organic Coatings,2020,139:105445.
[47] Neto Alexandre Gonçalves Cordeiro,Pellanda Alana Cristine,Jorge Agne Roani de Carvalho,et al.Preparation and evaluation of corrosion resistance of a self-healing alkyd coating based on microcapsules containing Tung oil[J].Progress in Organic Coatings,2020,147:105874.
[48] Ouarga Ayoub,Noukrati Hassan,Iraola-Arregui Itziar,et al.Development of anti-corrosion coating based on phosphorylated ethyl cellulose microcapsules[J].Progress in Organic Coatings,2020,148:105885.
[49] Arukalam Innocent O,Madu Izuchukwu O,Ishidi Edith Y.High performance characteristics of Lupinus arboreus gum extract as self-healing and corrosion inhibition agent in epoxy-based coating[J].Progress in Organic Coatings,2021,151:106095.
[50] Qian Bei,Zheng Zhaoliang,Liu Chengbao,et al.Microcapsules prepared via pickering emulsion polymerization for multifunctional coatings[J].Progress in Organic Coatings,2020,147:105785.
[51] Li Kaka,Liu Zhanjian,Wang Chijia,et al.Preparation of smart coatings with self-healing and anti-wear properties by embedding PU-fly ash absorbing linseed oil microcapsules[J].Progress in Organic Coatings,2020,145:105668.
[52] Li Wen,Zhan Yanlong,Yu Sirong.Applications of superhydrophobic coatings in anti-icing:theory,mechanisms,impact factors,challenges and perspectives[J].Progress in Organic Coatings,2021,152:106117.
[53] Fu Kang,Lu Chuan,Liu Yibin,et al.Mechanically robust,self-healing superhydrophobic anti-icing coatings based on a novel fluorinated polyurethane synthesized by a two-step thiol click reaction[J].Chemical Engineering Journal,2021,404:127110.
[54] Qian Yong,Zhou Yijie,Li Lan,et al.Facile preparation of active lignin capsules for developing self-healing and UV-blocking polyurea coatings[J].Progress in Organic Coatings,2020,138:105354.
[55] Chen Kunlin,Zhou Jianlin,Che Xiaogang,et al.One-step synthesis of core shell cellulose-silica/n-octadecane microcapsules and their application in waterborne self-healing multiple protective fabric coatings[J].Journal of Colloid and Interface Science,2020,566:401-410.
[56] Li Wei,Zhang Xinhai,Yu Xufeng,et al.Near infrared light responsive self-healing superhydrophobic coating based on solid wastes[J].Journal of Colloid and Interface Science,2020,560:198-207.
[57] Jannatun Nahar,Taraqqi-A-Kamal A,Rehman Ratul,et al.A facile cross-linking approach to fabricate durable and self-healing superhydrophobic coatings of SiO2-PVA@PDMS on cotton textile[J].European Polymer Journal,2020,134:109836.
[58] Zheng Nan,Liu Jie,Wang Yuhang,et al.Preparation of chitosan-reduced graphene oxide (CS-RGO) microcapsules and its application in UV/moisture-induced self-healing coatings[J].Progress in Organic Coatings,2021,151:106055.
[59] Zhang Chen,Chen Li,He Yi,et al.Designing a high-performance waterborne epoxy coating with passive/active dual self-healing properties by synergistic effect of V2O5@polyaniline-tannic acid inhibitors[J].Progress in Organic Coatings,2021,151:106036.
[60] Attaei Mahboobeh,Calado Lénia M,Morozov Yegor,et al.Smart epoxy coating modified with isophorone diisocyanate microcapsules and cerium organophosphate for multilevel corrosion protection of carbon steel[J].Progress in Organic Coatings,2020,147:105864.
[61] Hu Minghan,Peil Stefan,Xing Yaowen,et al.Monitoring crack appearance and healing in coatings with damage self-reporting nanocapsules[J].Materials Horizons,2018,5(1):51-58.
[62] Song Young Kyu,Lee Tae Hee,Kim Jin Chul,et al.Dual monitoring of cracking and healing in self-healing coatings using microcapsules loaded with two fluorescent dyes[J].Molecules,2019,24(9):1679-1686.
[63] Song Young Kyu,Lee Tae Hee,Lee Kyu Cheol,et al.Coating that self-reports cracking and healing using microcapsules loaded with a single AIE fluorophore[J].Applied Surface Science,2020,511:145556.

基金资助

甘肃省自然科学基金项目(20JR5RA479);甘肃省教育厅高等学校创新基金项目(2020B-253);国家级大学生创新创业项目(202111562004)

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