An antibacterial and anti-adhesive coating, an antibacterial and anti-adhesive coating layer and a preparation method and application thereof
The antibacterial and anti-adhesion coating prepared by zwitterionic copolymer and polypyrrole/barium titanate composite particles solves the problems of poor antifouling effect and environmental pollution of existing antifouling coatings under static conditions, achieves long-lasting antifouling and antibacterial effects, and is suitable for marine structures.
Patent Information
- Application Number
- CN202510235924.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2045-02-28
AI Technical Summary
Existing antifouling coatings have poor antifouling effects under static conditions and may cause secondary pollution to the environment. Traditional SPC coatings require the addition of antifouling agents.
An antibacterial and anti-adhesion coating is prepared using zwitterionic copolymers and polypyrrole/barium titanate composite particles. Through the synergistic effect of the two, a self-renewing surface is formed to improve the antifouling effect.
It has obtained long-lasting antifouling ability and excellent antibacterial and anti-adhesion properties, and is suitable for marine structures to extend their service life.
Smart Images

Figure BDA0005292737510000061 
Figure BDA0005292737510000071 
Figure HDA0005292737520000011
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of coatings, and in particular relates to an antibacterial and anti-adhesion coating, an antibacterial and anti-adhesion coating, and a preparation method and application thereof. Background Art
[0002] Marine biofouling refers to the process by which marine microorganisms, algae, shellfish, and other organisms attach and reproduce on the surfaces of underwater structures such as ship hulls, platforms, and submarine cables. This process not only increases ship resistance and fuel consumption but can also corrode underwater structures, shortening their service life. Therefore, preventing biofouling has become a critical issue in marine engineering.
[0003] Antifouling coatings are currently the most commonly used means to prevent biofouling, and their main mechanisms of action include antifouling release, antifouling, and fouling release. Antifouling release coatings actively prevent marine organisms from attaching by releasing antifouling agents, antifouling coatings make it difficult for fouling organisms to attach by forming a low-adhesion surface, and fouling release coatings make it easy for attached organisms to be removed by fluid shear forces through the self-cleaning properties of the surface. Among them, antifouling release coatings based on self-polishing copolymers (SPCs) are the most common type, usually composed of acrylate copolymers with hydrolyzable side chain groups. Although the early tributyltin-based (TBT) SPC has excellent antifouling effects, it has been banned due to its serious harm to the environment.
[0004] At present, Wuxi self-polishing antifouling coatings, which are mainly silicon-based, copper-based and zinc-based acrylate copolymers, dominate the market. Silicon-based acrylate copolymers not only have excellent antifouling properties, but also exhibit self-smoothing properties and drag reduction effects, which can reduce the energy consumption of ship operation. However, these SPC coatings have poor antifouling effects under static conditions (such as moored state) because their antifouling properties rely on surface hydrolysis caused by strong water flow shear force. In addition, traditional SPC coatings usually require the addition of antifouling agents, which may cause secondary pollution to the ecological environment. On the other hand, polyethylene glycol and zwitterionic polymers have been considered to have potential prospects for marine antifouling applications in recent years due to their anti-protein properties. Summary of the Invention
[0005] The purpose of the present invention is to overcome the shortcomings of the above-mentioned prior art and provide an antibacterial and anti-adhesion coating, an antibacterial and anti-adhesion coating, and a preparation method and application thereof, which have excellent antibacterial and anti-adhesion effects as well as self-renewal ability and long-lasting antifouling ability.
[0006] To achieve the above objectives, in a first aspect of the present invention, the present invention provides an antibacterial anti-adhesion coating, wherein the antibacterial anti-adhesion coating comprises the following raw materials in parts by weight:
[0007] Zwitterionic copolymer 1 part, polyvinylpyrrolidone 1-3 parts, poly-pyrrole / barium titanate composite particles 0.01-0.1 parts, dimethyl sulfoxide 10-25 parts;
[0008] The monomers of the zwitterionic copolymer include tertiary carboxyl betaine triisopropyl silyl ester ethyl acrylate (TCBSA), methyl methacrylate (MMA), and 2-methylene-1,3-dioxepane (MDO).
[0009] The antibacterial and anti-adhesion coating provided by the application has a good synergistic effect between the antibacterial and anti-adhesion property of the zwitterionic copolymer and the antibacterial property of the poly-pyrrole / barium titanate composite particles, and the antibacterial and anti-adhesion coating prepared by using the antibacterial and anti-adhesion coating has a long-lasting antifouling effect.
[0010] Specifically, the barium titanate in the poly-pyrrole / barium titanate composite particles (BTO@PPy composite particles) is a strong dielectric material with high dielectric constant and low dielectric loss; the symmetry of the barium titanate is reduced when it is in a tetragonal phase structure, and this property enables the barium titanate to generate electric charges when subjected to external stress, i.e., to generate a piezoelectric effect; under the action of ultrasonic waves, the tetragonal phase barium titanate is polarized and generates an electric field, which separates electrons and holes; the holes combine with water molecules to generate hydroxyl radicals, and the electrons have strong reducing property and combine with oxygen molecules to generate superoxide radicals, both of which can induce apoptosis, so that the tetragonal phase barium titanate has an antifouling effect. At the same time, the introduced poly-pyrrole has conductivity; therefore, the composite particles formed have more excellent antifouling effect. The zwitterionic copolymer including the monomers described in the application can quickly generate a zwitterionic surface under water conditions, realizing surface self-renewal of the zwitterionic copolymer. When the poly-pyrrole / barium titanate composite particles and the zwitterionic copolymer are used together, the antibacterial and anti-adhesion coating obtained has stronger antifouling ability.
[0011] As a preferred embodiment of the antibacterial and anti-adhesion coating described in the application, the antibacterial and anti-adhesion coating includes the following mass parts of raw materials:
[0012] Zwitterionic copolymer 1 part, polyvinylpyrrolidone 1.5-2.0 parts, poly-pyrrole / barium titanate composite particles 0.03-0.08 parts, dimethyl sulfoxide 15-20 parts.
[0013] The application researches and finds that the mass parts of the raw materials in the antibacterial and anti-adhesion coating will affect the comprehensive performance of the product, and when the mass parts of the raw materials are further selected within the above range, the antibacterial and anti-adhesion effect of the product obtained is better.
[0014] As a preferred embodiment of the antibacterial and anti-adhesive coating of the present invention, the mass percentage of the polypyrrole / barium titanate composite particles is 0.08-0.35% based on the total mass of the raw materials of the antibacterial and anti-adhesive coating.
[0015] For example, based on the total mass of the raw materials of the antibacterial and anti-adhesive coating, the mass percentage of the polypyrrole / barium titanate composite particles can be any point value between 0.08-0.35% or any two point range values, such as 0.08%, 0.1%, 0.15%, 0.2%, 0.25%, 0.3%, 0.35%, etc.
[0016] Preferably, based on the total mass of the raw materials of the antibacterial and anti-adhesion coating, the mass percentage of the polypyrrole / barium titanate composite particles is 0.1-0.35%.
[0017] The present invention has found that the mass percentage of polypyrrole / barium titanate composite particles in the total mass of the raw materials affects the comprehensive performance of the antibacterial and anti-adhesion coating. When the mass percentage of the polypyrrole / barium titanate composite particles is further selected to be within the above range, the antibacterial and anti-adhesion properties of the obtained antibacterial and anti-adhesion coating are better.
[0018] As a preferred embodiment of the antibacterial and anti-adhesive coating of the present invention, the preparation method of the zwitterionic copolymer includes the following steps: adding tert-carboxy betaine triisopropylsilyl ethyl acrylate, methyl methacrylate and 2-methylene-1,3-dioxepane to dioxane for dissolution to obtain a solution; then degassing the solution, performing a polymerization reaction under an inert gas environment after the degassing, adding the reaction system to hexane after the polymerization reaction to precipitate, and finally collecting and drying the precipitate to obtain a zwitterionic copolymer.
[0019] Preferably, the degassing is performed by subjecting the solution to 2-3 freeze-vacuum-thaw cycles.
[0020] Preferably, the polymerization reaction temperature is 65-75° C., and the polymerization reaction time is 20-28 h.
[0021] Preferably, the drying is carried out under vacuum conditions at 70±5° C. for 10-16 hours.
[0022] Preferably, the mass ratio of tert-carboxybetaine triisopropylsilyl ethyl acrylate, methyl methacrylate and 2-methylene-1,3-dioxepane is 1:(1.1-1.5):(0.7-1).
[0023] More preferably, the mass ratio of tert-carboxybetaine triisopropylsilyl ethyl acrylate, methyl methacrylate and 2-methylene-1,3-dioxepane is 1:1.3:0.85.
[0024] As a preferred embodiment of the antibacterial and anti-adhesive coating of the present invention, the preparation method of the polypyrrole / barium titanate composite particles includes the following steps: adding an aqueous solution of ferric chloride and an aqueous dispersion of barium titanate to an aqueous solution of polyvinyl alcohol and stirring, adding pyridine after stirring and continuing to stir the reaction, and drying after the reaction to obtain polypyrrole / barium titanate composite particles.
[0025] Preferably, the ferric chloride solution and the barium titanate dispersion are added and stirred at a temperature of 0±2° C. for 50-70 minutes.
[0026] Preferably, the time for adding pyridine and continuing stirring the reaction is 18-22 hours.
[0027] Preferably, the mass volume of polyvinyl alcohol in the polyvinyl alcohol aqueous solution is (0.8-1.2) g / 100 mL.
[0028] Preferably, the polyvinyl alcohol aqueous solution is prepared by adding polyvinyl alcohol to deionized water, heating the water to 90° C., and stirring the water to dissolve the water, thereby obtaining the polyvinyl alcohol aqueous solution.
[0029] Preferably, the mass concentration of ferric chloride in the ferric chloride aqueous solution is 18-22 mg / mL.
[0030] Preferably, the mass concentration of barium titanate in the barium titanate aqueous dispersion is 4-6 mg / mL.
[0031] Preferably, the volume ratio of the polyvinyl alcohol aqueous solution, the ferric chloride aqueous solution, and the barium titanate aqueous dispersion is 1:(0.10-0.16):(0.30-0.36).
[0032] Preferably, the mass volume ratio of the polyvinyl alcohol to pyridine is 1 g: (0.13-0.19) mL.
[0033] The present invention has found that when the above method and the preparation parameters of the corresponding method are within the above range, when the corresponding prepared zwitterionic copolymer and polypyrrole / barium titanate composite particles are applied to the antibacterial and anti-adhesion coating, the comprehensive performance of the obtained antibacterial and anti-adhesion coating is better.
[0034] In a second aspect of the present invention, the present invention provides a use of the antibacterial anti-adhesion coating in preparing an antibacterial anti-adhesion coating.
[0035] In a third aspect of the present invention, the present invention provides an antibacterial anti-adhesion coating, which comprises a primer coating and a topcoat coating, and the topcoat coating comprises the antibacterial anti-adhesion coating of the present invention.
[0036] As a preferred embodiment of the antibacterial and anti-adhesion coating of the present invention, the thickness of the primer coating is 15 μm-20 μm.
[0037] Preferably, the thickness of the primer coating is 16 μm-18 μm.
[0038] As a preferred embodiment of the antibacterial and anti-adhesion coating of the present invention, the thickness of the topcoat coating is 200 μm-1000 μm.
[0039] Preferably, the thickness of the topcoat layer is 250 μm-300 μm.
[0040] In the fourth aspect of the present invention, the present invention provides a method for preparing an antibacterial and anti-adhesion coating, which comprises the following steps: coating the antibacterial and anti-adhesion coating of the present invention on a primer coating and then soaking the coating in water to obtain an antibacterial and anti-adhesion surface layer.
[0041] As a preferred embodiment of the preparation method of the present invention, the primer is an epoxy resin primer.
[0042] For example, the epoxy resin primer may be an epoxy zinc-rich primer (model 725-H06-21) produced by Xiamen Shuangrui Marine Coatings Co., Ltd.
[0043] As a preferred embodiment of the preparation method of the present invention, the soaking time is 20-28 hours.
[0044] The present invention has found that when the immersion time is further selected within the above range, solvent exchange can be effectively carried out, promoting the formation of the hydrogel coating, that is, helping to form a stable coating structure and improving the antibacterial and anti-adhesion properties of the coating.
[0045] Preferably, the preparation method of the primer coating comprises the following steps: coating the primer on the surface of the pretreated metal substrate, and curing the substrate at 20-30° C. for 20-28 hours after coating.
[0046] Preferably, the application is by brushing.
[0047] Preferably, the pretreatment includes grinding and polishing with sandpaper of different mesh sizes (400#, 600#, 800#) and cleaning the material by ultrasonic method.
[0048] The present invention has found that the introduction of primer can improve the adhesion of the antibacterial and anti-adhesion coating, while providing preliminary anti-corrosion protection, ensuring the long-term stability of the antibacterial and anti-adhesion coating in a complex marine environment; and after curing within the above-mentioned temperature and time range, it can ensure that the primer is fully cross-linked and cured, thereby forming a uniform and dense primer layer.
[0049] Preferably, the applying comprises brushing or spraying.
[0050] In a fifth aspect of the present invention, the present invention provides use of the antibacterial and anti-viscosity coating in the preparation of marine structures.
[0051] Exemplarily, the marine structures include ships, platforms, submarine cables, etc.
[0052] Compared with the prior art, the present invention has the following beneficial effects:
[0053] The antibacterial and anti-adhesion coating provided by the present invention has good antibacterial and anti-bacterial adhesion properties by selecting raw materials in appropriate parts by mass, and the raw materials cooperate with each other, especially the zwitterionic copolymer and the polypyrrole / barium titanate composite particles have good synergistic effect. The antibacterial and anti-adhesion coating prepared by using the antibacterial and anti-adhesion coating has a long-lasting antifouling effect and can be widely used in marine structures to extend the service life of marine structures. BRIEF DESCRIPTION OF THE DRAWINGS
[0054] Figure 1 is the SEM image of the prepared polypyrrole / barium titanate composite particles;
[0055] Figure 2 Fourier transform infrared spectra of barium titanate, polypyrrole, and polypyrrole / barium titanate composite particles;
[0056] Figure 3 The SEM image of the topcoat prepared in Example 1;
[0057] Figure 4 This is the material self-repair ability diagram before and after the experiment;
[0058] Figure 5 Colony images of different groups. DETAILED DESCRIPTION
[0059] In order to better illustrate the purpose, technical solutions and advantages of the present invention, the present invention will be further described below in conjunction with specific embodiments.
[0060] Unless otherwise specified, the reagents, methods, and equipment used in the present invention are all conventional reagents, methods, and equipment in the art; and unless otherwise specified, the raw materials used in parallel experiments are from the same batch of raw materials.
[0061] Zwitterionic copolymer: homemade, the preparation method comprises the following steps:
[0062] 4.56 g of 2-methylene-1,3-dioxepane (MDO), 7.00 g of methyl methacrylate (MMA) and 5.36 g of tert-carboxybetaine triisopropylsilyl ethyl acrylate (TCBSA) were weighed and dissolved in 20 mL of dioxane to obtain a solution. Subsequently, the solution was degassed by three cycles of freeze-vacuum-thaw to remove oxygen and other gases that may affect the polymerization reaction. After degassing, the solution was heated to 70°C under argon protection to carry out polymerization reaction. After the reaction time of 24 h, the reaction solution was poured into hexane to precipitate, and the precipitate was collected and dried under vacuum at 70°C for 12 h to obtain a zwitterionic copolymer.
[0063] Polypyrrole / barium titanate composite particles: homemade, the preparation method includes the following steps:
[0064] 6.0 g of polyvinyl alcohol (PVA) was weighed and dissolved in 600 mL of deionized water. The solution was stirred at 90°C until the solid dissolved to obtain a polyvinyl alcohol aqueous solution. Subsequently, 80 mL (20 mg / mL) of ferric chloride aqueous solution and 200 mL (5 mg / mL) of barium titanate aqueous dispersion were added to the polyvinyl alcohol aqueous solution in sequence. The working temperature was then adjusted to maintain at about 0°C and stirred for 1 hour. After that, 1 mL of pyridine was added. The mixture was reacted for 20 hours and then dried to obtain polypyrrole / barium titanate composite particles. The SEM image of the obtained polypyrrole / barium titanate composite particles is shown in FIG. Figure 1 As shown; the Fourier transform infrared spectra (FT-IR) of barium titanate (BTO), polypyrrole (PPy), and polypyrrole / barium titanate composite particles (BTO / PPy) are shown Figure 2 shown.
[0065] Examples 1-8 and Comparative Examples 1-4
[0066] The embodiment of the present invention provides an antibacterial anti-adhesion coating and an antibacterial anti-adhesion coating. The weight parts of the raw materials of the antibacterial anti-adhesion coating and the thickness of the primer coating and the thickness of the topcoat coating in the antibacterial anti-adhesion coating are shown in Table 1.
[0067] Table 1
[0068]
[0069]
[0070] The method for preparing the antibacterial anti-adhesion coating provided in Example 1 comprises the following steps:
[0071] (1) dissolving a zwitterionic copolymer and polyvinylpyrrolidone (PVP) in dimethyl sulfoxide (DMSO), then adding polypyrrole / barium titanate composite particles, and stirring and mixing to obtain an antibacterial and anti-adhesion coating;
[0072] (2) grinding, polishing, and cleaning the surface of the metal substrate to obtain a pretreated metal substrate surface, and then brushing an epoxy resin primer. After brushing, the epoxy resin primer is placed at 25° C. to cure for 24 hours to obtain a primer coating with a thickness of 16 μm;
[0073] (3) spraying the antibacterial and anti-adhesive coating prepared in step (1) onto the primer coating, and then soaking the primer coating in water for 24 hours to obtain an antibacterial and anti-adhesive surface layer with a thickness of 250 μm; thereby forming an antibacterial and anti-adhesive coating;
[0074] The SEM image of the topcoat prepared in Example 1 is as follows: Figure 3 shown.
[0075] The preparation methods of the antibacterial anti-adhesion coatings and antibacterial anti-adhesion coatings provided in Examples 2-8 and Comparative Examples 1-4 are consistent with those in Example 1, except that no relevant components are added.
[0076] Effect Examples
[0077] The present invention investigates the performance of the antibacterial and anti-adhesion coatings prepared in Examples 1-8 and Comparative Examples 1-4, including the following parts:
[0078] 1. Antibacterial properties
[0079] The antibacterial properties of the coatings were evaluated using marine bacteria Pseudomonas spp. The bacterial concentration was adjusted to 1 × 10 7 cells / mL. Each sample was immersed in the bacterial suspension for 5 hours, and the co-cultured bacterial solution was diluted 10,000 times. Subsequently, 100 μL of the bacterial solution was evenly spread on LB agar and incubated at 37°C for 24 hours. Finally, the antibacterial rate was calculated using the formula: Antibacterial rate (%) = (N control group - N experimental group) / N control group × 100%;
[0080] The control group is a metal substrate without coating, and the experimental group is the antibacterial and anti-adhesion coating prepared in Examples 1-8 and Comparative Examples 1-4.
[0081] 2. Anti-bacterial adhesion performance
[0082] First, the sample was placed in a 48-well plate, 1000 μL of the diluted bacterial suspension was added, and the cells were incubated at 37°C for 24 hours. The sample was then ultrasonically cleaned for 8 minutes to remove surface bacteria, and the collected bacterial suspension was diluted 500-fold. 100 μL of the bacterial suspension was then evenly spread on LB agar and incubated at 37°C for 24 hours. Finally, the antibacterial adhesion rate was calculated using the following formula: Adhesion rate (%) = (N control group - N experimental group) / N control group × 100%;
[0083] The control group is a metal substrate without coating, and the experimental group is the antibacterial and anti-adhesion coating prepared in Examples 1-8 and Comparative Examples 1-4.
[0084] 3. Self-update capability test
[0085] After the antibacterial and anti-adhesive coatings prepared in Examples 1-8 were immersed in seawater for 24 hours, the surface conditions of the coatings were regularly observed with the naked eye to check for scratches, wear, fading, discoloration, blistering, peeling, etc. If the coatings can automatically repair some minor appearance damage within 24 hours and restore a relatively flat, smooth and uniform surface state, it indicates that they have a certain self-renewal ability. The test found that the products prepared using the technical solution of the present invention all have good self-renewal ability, and the comparison of the coating prepared in Example 1 before and after the experiment is shown in the figure below. Figure 4 As shown, from Figure 4 It can be seen that the prepared coating can automatically repair itself during use and has excellent self-repairing ability.
[0086] The results are shown in Table 2;
[0087] Table 2
[0088] Antibacterial rate / % Adhesion rate / % Antibacterial rate / % Adhesion rate / % Example 1 86 14 Comparative Example 1 39 61 Example 2 67 33 Comparative Example 2 40 60 Example 3 71 29 Comparative Example 3 22 78 Example 4 60 40 Comparative Example 4 14 86 Example 5 50 50 Example 6 49 51 Example 7 66 34 Example 8 53 47
[0089] As can be seen from Table 2, when the technical solution of the present invention is adopted, the obtained product has excellent antibacterial and anti-adhesion properties, and has a high mechanical strength retention rate after immersion in seawater. Specifically, the antibacterial rate of the obtained product is above 49%, and the adhesion rate is below 51%. In particular, when the mass fractions of the components are further selected within the preferred range of the present invention, the antibacterial rate of the obtained product is above 67%, and the adhesion rate is below 33%.
[0090] It can be seen from Example 1 and Comparative Examples 1-2 that when neither the zwitterionic polymer nor the polypyrrole / barium titanate composite particles are added, the antibacterial rate of the obtained product is greatly reduced; it can be seen from Example 1 and Comparative Example 3 that when the mass fraction of the polypyrrole / barium titanate composite particles is not within the range given in the present invention, the antibacterial rate of the obtained product will decrease due to the large amount of agglomeration of the particles; it can be seen from Example 1 and Comparative Example 4 that when the primer is not introduced, the coating of the obtained product is easy to peel off and has basically no antibacterial rate; it can be seen from Example 1 and Comparative Examples 5-6 that when other similar substances are used to replace the zwitterionic copolymer or the polypyrrole / barium titanate composite particles in the present invention, the performance of the obtained product is not as good as that in Example 1.
[0091] It should be pointed out finally that the above embodiments are used to illustrate the technical solutions of the present application but not to limit the protection scope of the present application, and although the present application has been described in detail with reference to the preferred embodiments, it should be understood by those skilled in the art that the technical solutions of the present application can be modified or equivalently replaced without departing from the essence and scope of the technical solutions of the present application.
Claims
1. An antibacterial and anti-adhesion coating, characterized in that: The antibacterial and anti-adhesion coating comprises a primer coating and a topcoat coating, wherein the primer coating is prepared from an epoxy resin primer, and the topcoat coating is prepared from an antibacterial and anti-adhesion coating; The antibacterial anti-adhesion coating comprises the following raw materials in parts by mass: 1 part of zwitterionic copolymer, 1-3 parts of polyvinyl pyrrolidone, 0.01-0.1 parts of polypyrrole / barium titanate composite particles, and 10-25 parts of dimethyl sulfoxide; The zwitterionic copolymer is prepared by polymerization of tert-carboxy betaine triisopropylsilyl ester ethyl acrylate, methyl methacrylate and 2-methylene-1,3-dioxepane, wherein the mass ratio of the tert-carboxy betaine triisopropylsilyl ester ethyl acrylate, methyl methacrylate and 2-methylene-1,3-dioxepane is 1:(1.1-1.5):(0.7-1).
2. The antibacterial and anti-adhesion coating according to claim 1, characterized in that: The antibacterial anti-adhesion coating comprises the following raw materials in parts by mass: 1 part of zwitterionic copolymer, 1.5-2.0 parts of polyvinyl pyrrolidone, 0.03-0.08 parts of polypyrrole / barium titanate composite particles, and 15-20 parts of dimethyl sulfoxide.
3. The antibacterial and anti-adhesion coating according to claim 1, characterized in that: Based on the total mass of the raw materials of the antibacterial and anti-adhesion coating, the mass percentage of the polypyrrole / barium titanate composite particles is 0.08-0.35%.
4. The antibacterial and anti-adhesion coating according to claim 1, characterized in that: The preparation method of the zwitterionic copolymer comprises the following steps: adding tertiary carboxy betaine triisopropylsilyl ethyl acrylate, methyl methacrylate and 2-methylene-1,3-dioxepane into dioxane to dissolve to obtain a solution; then degassing the solution, performing a polymerization reaction under an inert gas environment after the degassing, adding the reaction system into hexane to precipitate after the polymerization reaction, and finally collecting and drying the precipitate to obtain the zwitterionic copolymer; And / or, the preparation method of the polypyrrole / barium titanate composite particles comprises the following steps: adding an aqueous ferric chloride solution and an aqueous barium titanate dispersion to an aqueous polyvinyl alcohol solution and stirring, adding pyrrole after stirring and continuing to stir and react, and drying after the reaction to obtain the polypyrrole / barium titanate composite particles.
5. The method for preparing the antibacterial and anti-adhesion coating according to claim 1, wherein: The preparation method comprises the following steps: coating the antibacterial and anti-adhesion coating on the primer coating and then soaking the coating in water to obtain the antibacterial and anti-adhesion coating.
6. The preparation method according to claim 5, characterized in that The soaking time is 20-28 hours.
7. Use of the antibacterial and anti-adhesion coating according to claim 1 in the preparation of marine structures.
Citation Information
Patent Citations
Polypyrrole / barium titanate composite nanoparticles as well as preparation method and application thereof
CN117442724A
Antibacterial composite coating as well as preparation method and application thereof
CN117644011A