Abstract
Corrosion inhibitors loaded in coatings promote the protection performance of coatings, avoid the local corrosion of metal substrates, and endow the self-healing properties of the coatings. The stimuli-responsive release of corrosion inhibitors, which is generally achieved by loading corrosion inhibitors in containers, is key to the self-healing and long-term protection of the coatings. The loading and release methods of corrosion inhibitors are discussed in the article. First, two kinds of loading methods for corrosion inhibitors are reviewed, which are one-step synthetic methods and multistep synthetic methods. Then the released methods of corrosion inhibitors, which can be achieved by intrinsic properties and surface modification of containers, are summarized.
Introduction
Organic coatings on metal surfaces physically isolate the metal substrate from the external corrosion environment, which is one of the most widely used measures in metal corrosion prevention (; ). However, traditional organic coatings are susceptible to defects and cracks during use, and it is easy to be infiltrated by corrosive media during service. If not repaired in time, the shielding effect of coatings will be significantly reduced, resulting in metal corrosion. Therefore, in order to prolong the service time of coatings and avoid the local corrosion of the metal substrate caused by coating defects, it is necessary to endow coatings with self-healing protection performance when coatings are damaged or corroded. Self-healing coating is an intelligent protective material, which can self-repair the damage generated in the process of use and has become a research hotspot in the coating field in recent years (). Some articles (; ), patents (; ), and books (; et al., ) on self-healing coatings have been published. According to the recent view (), self-healing coatings are classified into autonomous and non-autonomous healing coatings. The self-repair process can be realized by adding corrosion inhibitors to the coatings shown in Figure 1, which is efficient, economical, and convenient, and have become one of the most widely used corrosion protection methods in recent years ().
FIGURE 1
Adding corrosion inhibitors can obviously inhibit the corrosion electrochemical reaction on the metal surface. However, if corrosion inhibitors are directly added to the coating, they will react with the metal substrate or the material in the coating in advance, so as to prematurely lose the self-healing protection performance and cause adverse effects to coatings (
The method to overcome this disadvantage is to encapsulate corrosion inhibitors into micro-/nanocontainers, such as mesoporous silica containers (
Stimuli-responsive self-healing coatings can avoid corrosion inhibitor failure in advance (
FIGURE 2

Overview of main loading and release methods of corrosion inhibitors in this review.
Loading Methods of Corrosion Inhibitors
The loading methods of corrosion inhibitors are generally divided into two types: one-step method and multistep method. The one-step method refers to the completion of container preparation and corrosion inhibitor loading in one step, usually through oil-in-water, the template method, and in situ polymerization. The multistep method refers to the prior preparation of the container and then loading of the corrosion inhibitor (
FIGURE 3

Schematic illustration of common loading methods of corrosion inhibitors.
One-Step Synthetic
Container preparation and corrosion inhibitor loading are completed in one step. This refers to the direct loading of corrosion inhibitors while preparing containers. In recent years, one-step synthesis of nanocontainers loaded with corrosion inhibitors has attracted attention due to its simple process and economy. The widely used method is oil-in-water microemulsion polymerization. Yi et al. based on the oil-in-water Pickering solution template stabilized by lignin nanoparticles, prepared multilayer composite microcapsules loaded with healing agents and controlled the particle size of microcapsules by changing the lignin content and oil-to-water volume ratio in the Pickering emulsion. When the microcapsules were doped into the epoxy coating, the immersion test showed that the self-healing epoxy coating loaded with microcapsules had good dispersion and a good anticorrosion effect (
In various micro-/nanocontainers, mesoporous silica nanoparticles (MSN) have many advantages, such as high stability, large specific surface area, adjustable pore size, and easy surface functionalization, so they are often used as corrosion inhibitors loaded containers in the field of metal corrosion protection. However, traditional methods of loading corrosion inhibitors on MSN include the synthesis of silica template composites, removal of the template by calcination or acid extraction, functionalization of silica nanoparticles, and loading of corrosion inhibitors, which are time-consuming and inefficient. Therefore, it is necessary to develop a simple and effective loading inhibitor method to improve industrial application value. Based on high solubility of organic inhibitors in the template micelle hydrophobic core, Xu et al. prepared the mesoporous silica nanocontainers loaded with corrosion inhibitors by a simple one-step synthetic method, as shown in Figure 4 (
FIGURE 4

Schematic illustration of MSN loaded with corrosion inhibitors synthesized by traditional multistep method and current one-step methods in this work (
In addition, in situ polymerization is also one of the common methods for one-step preparation of micro-/nanocontainers loaded with healing agents, which has the advantages of economy and easy operation. White et al. prepared the urea–formaldehyde resin microcapsules loaded with a polymer-based self-healing material dicyclopentadiene by in situ polymerization (
Multistep Synthetic
Container preparation and corrosion inhibitor loading are completed by using the multistep synthetic method, which is the most common way to load corrosion inhibitors. After the preparation of micro-/nanocontainers, appropriate methods can be selected according to the properties of containers and corrosion inhibitors. The common corrosion inhibitor loading methods include the vacuum adsorption method, ion exchange method, and layer-by-layer self-assembly technology.
Vacuum Adsorption
The vacuum adsorption method uses decompression (vacuum) to load corrosion inhibitors. Many corrosion inhibitors loaded into containers, such as mesoporous silica, use this method to load corrosion inhibitors.
MSN can be dispersed in the corrosion inhibitor solution and placed in a low-pressure environment to adsorb corrosion inhibitors. Borisova et al. adsorbed BTA as a corrosion inhibitor after the synthesis of MSN and incorporated into a sol-gel coating to protect aluminum alloy (
Ion Exchange
Some micro-/nanocontainers have ion exchange properties, and some corrosion inhibitors are loaded into containers by exchanging with the original ions in the containers. The large specific surface area and porosity of layered silicate materials make it possible to load corrosion inhibitors. Researchers have found that cations (such as Na+) contained in zeolites have cation exchange properties, which can be exchanged with some cation corrosion inhibitors to incorporate corrosion inhibitors into zeolites.
Rassouli et al. embedded Zn2+ into NaX zeolite for corrosion inhibition by ion exchange reaction and doped it into an epoxy coating (
Layer-by-Layer Self-Assembly
Layer-by-layer self-assembly (LBL) technology, which emerged in the 1990s, is a simple, fast, and green multifunctional surface modification method. The most classical principle is the alternate deposition of polyelectrolyte self-assembly multilayers in polyelectrolyte solutions with opposite charges. Common polyelectrolyte multilayers include negatively charged polystyrene sulfonic acid (PSS) and positively charged polyetherimide (PEI). Due to the electrostatic interaction between layers, the polyelectrolyte layer is sensitive to external stimuli such as pH and light, and the active substance encapsulated between layers can be released slowly. Therefore, the controllable release of corrosion inhibitors can be realized when the corrosion environment changes. In this context, layer-by-layer self-assembly technology is often used in the coating field for corrosion inhibitor loading.
Falcón et al. studied the self-repairing and anti-corrosion effects of nanocontainers coated with dodecylamine on carbon steel (
Chen et al. developed a SnO2 nanocontainer and deposited polypyrrole (PPy), molybdate corrosion inhibitors, and PDA layers using the LBL assembly technology, as shown in Figure 5 (
FIGURE 5

Schematic illustration of SnO2-ppy-Inh-PDA (
Release Methods of Corrosion Inhibitors
Natural Release
Loaded in Microcontainers
A large number of studies have shown that compared with the direct doping of healing agents in the coating, whether healing agents are encapsulated into microcapsules or hollow fibers, they can have a better effect. This is because the packaging of healing agents can avoid the adverse reaction with coatings. When coating microcracks form and begin to propagate, microcapsules or hollow fibers at the crack are then ruptured, and healing agents flow out to refill the crack area. This method has high packaging efficiency, strong core material protection ability, and fast response to environmental hazards. Figure 6 shows its mechanism.
FIGURE 6

Schematic diagram of natural release method of microcontainers loaded healing agents.
Inspired by the use of capsule-coated drugs for directional delivery in the medical field, White et al. reported the first generation of self-healing systems based on polymer-based self-healing materials, dicyclopentadiene (DCPD), in 2001 (
FIGURE 7

Schematic diagram of autonomic healing concept. (A) cracks appeared in the substrate; (B) release of the healing agent loaded in microcapsules ruptured by cracks; and (C) polymerization reaction between the healing agent and the catalyst (
In order to optimize the defect that the repair process cannot continue due to the depletion of healing agents in the microcapsule model, researchers inspired by the biological vascular system propose the method of encapsulating healing agents and catalysts with hollow fibers, which opens up a new way for the continuous transportation of healing agents and other active substances to the coating defects. Toohey et al. encapsulated DCPD into a three-dimensional capillary network system and embedded it into the coating (
FIGURE 8

Structure diagram of self-healing materials with 3D microvascular networks. (A) Dermal capillary network with a cut in the epidermis layer and (B) self-healing structure consisting of a microvascular substrate and an epoxy coating embedded with a catalyst in a four-point bending configuration monitored with an acoustic emission sensor (
Since then, based on the packaging technology of healing agents, researchers have continued to study the packaging of different types of healing agents, and explore healing agents that can cross-link and cure without additional catalyst or curing agent. For example, the hydrophobic structure is formed by the combination of methylsilyl ester and water in the corrosive environment. Isocyanates can react with water. Some healing agents that polymerize under the stimulation of visible light can also be loaded into microcapsules or hollow fibers, which was developed inspired by human vascular system, which simplifies the process.
Loaded in Nanocontainers
A large number of studies have shown that adding a certain amount of nanocontainers to the coating can fill the original defects in the coating and enhance the physical shielding effect of the coating. At the same time, the corrosion inhibitor loaded in the nanocontainer will slowly release into the coating, enhancing the integrity of the coating and protecting the metal substrate. Figure 9 shows its mechanism.
FIGURE 9

Schematic diagram of natural release method of nanocontainer loaded corrosion inhibitors.
Since the microcapsule size is usually between tens and hundreds of microns, it cannot be used for thin coating. And part of the cavity formed after the rupture of microcapsules will affect the coating stability. In addition to the natural release methods of corrosion inhibitors flowing out of microcapsules or hollow fibers caused by crack propagation, researchers can also realize the slow release of corrosion inhibitors by directly loading the corrosion inhibitor into nanocontainers and adding it into coatings.
Chen et al. loaded molybdate corrosion inhibitors into TiO2 nanotubes, which can slowly release inhibitors into the natural environment (
Khramov et al. loaded inhibitors of mercaptobenzimidazole (MBI) and mercaptobenzothiazole (MBT) in the hydrophobic cavity of β-cyclodextrin, as shown in Figure 10 (
FIGURE 10

Chemical structures of studied organic corrosion inhibitors MBT and MBI, and schematic of the inclusion complexes formation with b-cyclodextrin (
Stimuli-Responsive Release
Problems such as premature failure of corrosion inhibitors can be avoided by loading healing agents with microcapsules or hollow fibers or loading corrosion inhibitors in nanocontainers and then adding coatings. The corrosion inhibition effect is enhanced compared with directly doping corrosion inhibitors in coatings. However, these release methods of corrosion inhibitors are natural releases, with low corrosion inhibition efficiency and short service life, which cannot meet the growing demand of industry. Therefore, the study on the controlled release methods of corrosion inhibitors has become a hot issue. The main stimuli-responsive release methods are described in detail in this article.
A large number of studies have shown that when nanocontainers loaded with corrosion inhibitors are doped in coatings, the self-performance or surface modification of nanocontainers can be used to perceive the changes in external conditions (such as light, heat, pressure, potential, pH, and other common variables) when corrosion occurs, and finally, the controllable release of corrosion inhibitors is realized. The controlled release of corrosion inhibitors can greatly improve the corrosion inhibition efficiency and prolong the service time of coatings, which plays an important role in the field of corrosion protection. Figure 11 shows the mechanism of the process.
FIGURE 11

Schematic diagram of the self-healing coating based on stimuli-responsive of corrosion inhibitors.
Intrinsic Properties of Containers
Some containers have ion exchange properties or are sensitive to some metal ions, such as LDH and MOF. The structure of layered double hydroxides (LDHs) (such as hydrotalcite) includes two parts, which are the layered main body with positive electric property and the interlayer ions with negative electric property and neutral electric property. The two parts are connected by hydrogen bonds, so interlayer ions can move freely so as to replace anions in the environment (
Tedim et al. studied the preparation of LDHs, the load and release of corrosion inhibitors, and their application in corrosion protection (
FIGURE 12

Mechanism diagram of LDHs in corrosion protection (
The cage-like pore structure of some layered silicates, such as montmorillonite, kaolinite, and zeolite, is formed by the periodic arrangement of tetrahedra such as SiO44−and AlO45-. The isomorphous replacement of Si4+ and Al3+ makes the main structure negatively charged, so the cation in the pore can be replaced with the cation in the environment.
Thai et al. proposed a new protective coating based on cerium ion corrosion inhibitors for AA2024 corrosion protection (
When LDHs and some layered silicate containers mentioned earlier have corrosive ions (such as Cl− or metal ions) in the external environment, the embedded corrosion inhibitor reacts with them by ion exchange, which not only absorbs Cl− or metal ions in the corrosive environment but also realizes the release of corrosion inhibitors. In addition, the two-dimensional structure of LDHs and chemical stability of layered silicate containers enhance the physical shielding effect of coatings as the carriers of corrosion inhibitors have been favored by industrial production.
In addition, the metal–organic framework (MOF) material is a new type of porous material with broad prospects. The zeolite imidazole ester framework material (ZIF) is a subclass of the MOF. The structure of ZIF-8 is a tetrahedral unit composed of a Zn2+ and four imidazole anions, and the large internal space can load corrosion inhibitors. The structure of ZIF-8 will decompose or collapse with the change of some external conditions. For example, ZIF-8 decomposes at pH 5.0–6.0 due to the coordination dissociation of Zn2+ and imidazole anions (
FIGURE 13

Schematic illustration of the procedure for the synthesis of ZBT nanomaterials (
Xiong et al. used ZIF-8 nanoparticles to load corrosion inhibitor salicylaldehyde (SA) and modified GO to obtain SGZ two-dimensional nanocomposites, as shown in Figure 14 (
FIGURE 14

Synthetic procedure illustration of SZG (
By Surface Modification of Containers
The surface modification of nanocontainers enables some inorganic nanocontainers to combine with some polymer molecular chains with stimulus response characteristics (such as pH, temperature, and light), which can realize the response of containers to external stimuli. At the same time, the grafted molecular chains are expected to enhance the dispersion of inorganic nanocontainers in organic coatings and improve the stability of coatings. Fu et al. used ferrocenyl acid–cucurbituril binary system to modify hollow mesoporous SiO2 microspheres as pH-responsive valves and loaded caffeine molecules, which realized the controlled release under acidic and alkaline conditions (
Wang et al. successfully synthesized hollow MSN modified by a functional polymer poly-(dimethylaminoethyl methacrylate) (PDMAEMA) to load corrosion inhibitors (
FIGURE 15

Illustration of the synthetic processes for fGS-BTA nanosheets (
In addition to surface grafting of containers, nanocontainers can also be encapsulated with pH-sensitive polyelectrolyte layers or polymer shells (such as polyphenyl acrylate) by LBL technology. The polyelectrolyte layer is coated outside with microcapsules, and corrosion inhibitors are loaded. When pH changes, the electrostatic adsorption between polyelectrolyte layers changes, thus releasing corrosion inhibitors and realizing the stimulation response to pH. Shchukin et al. loaded corrosion inhibitor 2–mercaptobenzothiazole inside halloysite nanotubes, and polypropylene amine, as shown in Figure 16 (
FIGURE 16

Schematic illustration of the fabrication of 2-mercaptobenzothiazole-loaded halloysite/polyelectrolyte nanocontainers (
Leal et al. synthesized microcapsules loading flaxseed oil by in situ polymerization and used LBL technology to assemble BTA between polyelectrolyte layer polyetherimide (PEI) and polystyrene sulfonate (PSS) outside microcapsules (
FIGURE 17

Structure diagram of dual-stimulus responsive microcapsules (
Conclusion and Outlook
Stimuli-responsive self-healing coatings avoid the one-time release of corrosion inhibitors and the premature failure of self-healing performance, which is generally achieved by loading corrosion inhibitors in containers, and key is the loading and release of corrosion inhibitors.
The adverse reaction between corrosion inhibitors and coatings can also be avoided by loading corrosion inhibitors in micro-/nanocontainers. However, it is found that the micro-/nanocontainers loaded with corrosion inhibitors in coatings may affect the stability of the coating. Therefore, effective loading methods of corrosion inhibitors are important in surface engineering and corrosion protection. The preparation of containers and corrosion inhibitor loading can be completed by a one-step or step-by-step synthetic method. Among them, the loading methods of corrosion inhibitors in micro-/nanocontainers mainly include physical adsorption, ion exchange, and layer-by-layer self-assembly.
Compared with the natural release of corrosion inhibitors from micro-/nanocontainers, the stimuli-responsive release methods increase the inhibition efficiency and service time of coatings, which can be achieved by intrinsic properties or surface modification of containers. For the former, the stimuli-responsive release of corrosion inhibitors is achieved by an ion exchange reaction between corrosion ions and corrosion inhibitors loaded in the containers, or by the collapse of the container structures. For the latter, the stimuli-responsive release of corrosion inhibitors can be achieved by grafting nanocontainers to construct the “nanogate” or by using layer-by-layer self-assembly technology on modified containers.
Self-healing coatings based on the stimuli-responsive release of corrosion inhibitors have potentially broad applications in the future. Although significant progress in the area of self-healing coating has been obtained, many challenges still need to be addressed with a continuous improvement. For example, the efficient encapsulation of these healing agents is critical, since it prolongs the shelf life and endows the coatings with a long-term corrosion inhibition effect. In addition, the containers should be compatible with organic coatings, and their fabrication should be cost-effective for practical applications. Finally, next-generation self-healing coatings will be smarter and multifunctional, for example, the anticorrosion and corrosion sensing. We expect that all these efforts will make a progress in anticorrosion engineering.
Statements
Author contributions
YZ made the illustrations and the main analytic and writing work. CC collected the references. MY contributed to the idea and design of the study and participated in the revision of the manuscript with JL and SL. All authors contributed to the article and approved the submitted version.
Funding
This work was supported by the Beijing Natural Science Foundation (Grant No. 2172032).
Conflict of interest
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
Publisher’s note
All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors, and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.
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Summary
Keywords
self-healing coatings, corrosion inhibitors, containers, loading methods, stimuli-responsive release
Citation
Zhang Y, Yu M, Chen C, Li S and Liu J (2022) Self-Healing Coatings Based on Stimuli-Responsive Release of Corrosion Inhibitors: A Review. Front. Mater. 8:795397. doi: 10.3389/fmats.2021.795397
Received
15 October 2021
Accepted
15 December 2021
Published
12 January 2022
Volume
8 - 2021
Edited by
Jinglei Yang, Hong Kong University of Science and Technology, Hong Kong SAR, China
Reviewed by
Viswanathan S. Saji, King Fahd University of Petroleum and Minerals (KFUPM), Saudi Arabia
Wu Junsheng, University of Science and Technology Beijing, China
Sun Dawei, Beijing University of Technology, China
Ioannis A. Kartsonakis, National Technical University of Athens, Greece
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© 2022 Zhang, Yu, Chen, Li and Liu.
This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
*Correspondence: Mei Yu, yumei@buaa.edu.cn
This article was submitted to Smart Materials, a section of the journal Frontiers in Materials
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