Formation of organic electrografted coatings on conductive or semiconductive surfaces.

A method using a diazonium salt and chain-polymerizable monomer with a time-dependent electrode potential procedure addresses bonding and thickness control issues in organic coatings on conductive surfaces, achieving stable and reproducible polymeric coatings.

JP7769860B2Active Publication Date: 2025-11-14アルシメディク
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Patent Information

Application Number
JP2019060993
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2006-02-28
Filing Date
2019-03-27
Publication Date
2025-11-14
Estimated Expiration
2027-02-28

AI Technical Summary

Technical Problem

Existing methods for forming organic coatings on conductive or semiconductive surfaces face challenges in achieving effective bonding, thickness control, and reproducibility, particularly when using self-assembly and electrografting techniques, due to limitations in precursor-surface interactions and sensitivity to water content.

Method used

A method involving a time-dependent electrode potential procedure with a cathodic excursion, using an electrolytic bath containing a diazonium salt and a chain-polymerizable monomer, allows for the electrografting of organic coatings with controlled thickness and strong adhesion on conductive or semiconductive surfaces.

Benefits of technology

The method enables the formation of adherent polymeric coatings with thickness ranging from nanometers to microns, suitable for use as underlayers or interfacial layers, demonstrating strong adhesion and stability even in the presence of water.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a biocompatible article by grafting an organic coated film onto a conductive or semi-conductive surface.SOLUTION: There is provided a biocompatible article containing an organic coated film acceptable for ionic transportation with a conductive or semi-conductive surface or a part of the surface, electrically grafted to the surface or the part thereof, and electrically grafted to the surface or the part thereof by electric reduction of a solution containing at least one kind of diazonium salt, and a chain polymerizable functional group, and at least one kind of macro article which is a precursor material of the organic coated film.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to the field of organic surface coatings in the form of organic coatings on surfaces, and more particularly to the use of appropriately selected solutions that allow the simple and reproducible formation of organic coatings on conductive or semiconductive surfaces or on parts or portions of surfaces by electrochemical or electrografting. [Background technology]

[0002] There are several prior art techniques for depositing thin organic coatings on substrates, each of which relies on a specific group or class of precursor molecules. The methods of forming coatings by centrifugation or "spin coating," immersion ("dipping"), or evaporation ("spraying") do not require that the deposited molecules have a particular affinity for the substrate in question. Indeed, the methods themselves merely form a coating on the surface, whose cohesion is primarily due to the cohesive energy of the coating, which can be reinforced by post-treatments, such as cross-linking, to improve the stability of the coating.

[0003] It is possible to increase the interfacial stability of these processes by using special molecules that can self-assemble on the surface. In the prior art, these molecules are referred to as molecules that give self-assembled monolayers or SAMs (Ulman A., "A Year Introduction to Ultrathin Organic Films from Langmuir-Blodgett Films to Coil-Assembly," 1991, Boston, Academic Press). Self-assembly, which essentially describes the lateral interactions between adjacent molecules in a more or less close-packed arrangement, is usually not directly related to the overall "close-packed" layer having an affinity for the underlying surface. In many instances, such close-packed monolayers have also been obtained with mono- or bifunctional molecules whose one end has a strong affinity for the surface; i.e., the lateral interactions of these molecules are limited, resulting in a monolayer brush with a high density of molecules on the surface, even though they are not considered self-assembling. Although the underlying mechanisms explaining monolayer formation differ in these two cases, there seems to be a tendency to refer to ultrathin layers (sometimes monolayers) that actually form due to the strong bonding on the surface as SAMs, even though they are densely bonded on the surface. While "true" SAMs, which have only lateral interactions, offer little (if any) improvement in adhesion at the interface, mono- or bifunctional molecules added to dip or spray formulations can have a definite effect by strengthening the interface via anchoring points. Because the bonding of the mono- or bifunctional molecules is crucial for this strengthening, it may be necessary to consider the precursor-surface bond as a whole. For example, it is known that sulfur-containing molecules have strong affinities for gold, silver, or copper; trihalogenosilanes for oxides such as silica or alumina; and polyaromatic molecules for graphite or carbon nanotubes. In all cases, film formation relies on specific physicochemical interactions that result in a chemical reaction between a portion of the molecular precursor (e.g., the sulfur atom in the case of thiols) and specific "receptor" sites on the surface. If preferred, ultrathin layers (<10 nm) can be obtained at room temperature by spraying or dipping.

[0004] However, because the formation of interfacial bonds is highly dependent on both the precursor and the surface, favorable bonds are practically limited to almost "ideal" situations. Silanes provide interfacial Si-O-Si bonds, which are perhaps the strongest of all chemical reactions, but these bonds are easily hydrolyzed in water at room temperature. Thiols provide fairly strong bonds on gold surfaces, but they are easily desorbed at 60°C, or in good solvents at room temperature, or upon contact with liquid media containing oxidized thiol groups. Overall, the possibilities for achieving good adhesion on metal and / or semiconducting surfaces using self-assembly and / or mono- or bifunctional molecules are very limited. This is especially true when the surfaces are obtained by certain specialized techniques, such as sputtering or physical or chemical vapor deposition, because the resulting surfaces are usually nonstoichiometric and of nonstandard composition.

[0005] Nevertheless, given favorable conditions, these spray and immersion techniques are very versatile, applicable to most types of surfaces, and highly reproducible. However, these techniques do not promote effective bonding between the coating and the substrate (apart from simple physical absorption), and the thickness of the coating is poorly controllable, especially when ultrathin layers (<20 nanometers) are targeted. Furthermore, spin-coating techniques can only deposit uniformly if the surface to be coated is primarily flat (see French Patent Application No. FR2843757). The quality of the coating obtained by spray coating (in terms of homogeneity and conformality) is related to the wetting of the substrate by the sprayed liquid, since the deposit becomes substantially filmogenic only if the droplets coalesce on the surface. Therefore, for a specific polymer, there are generally only a few organic solvents that can provide satisfactory results in terms of controlling both the coating homogeneity and conformality.

[0006] Other techniques for forming organic coatings on the surface of a substrate, such as those described in Konuma M's article "Film deposition by plasma techniques," (1992) Springer Verlag, Berlin, and Biederman H. and Osada Y.'s article "Plasma polymerization process," 1992, Elsevier, Amsterdam, are based on a similar principle: plasma deposition, or photochemical activation, generates unstable derivatives of precursor molecules near the surface, ultimately forming a film on the surface. Plasma deposition does not usually require the precursor to have special chemical properties, whereas photoactivation requires the use of photosensitive precursors, the structure of which is modified under irradiation.

[0007] These techniques typically produce an adherent coating on the treated surface, but it is generally difficult, if at all possible, to distinguish whether this adhesion is due to bridging of the coating structurally closed around the object or the formation of an actual bond at the interface between the coating and the surface.

[0008] Polymer electrografting is another technique based on forming a polymer layer on a surface in situ, i.e., from a bath of precursors, rather than from a pre-prepared polymer. The surface to be coated is electrically polarized, which acts as a polymerization initiator, causing surface polymerization by a propagation chain reaction (S. Palacin and Al, "Molecule-to-metal bonds: electrografting polymers on conducting surfaces," ChemPhysChem, 2004, 10, 1468).

[0009] Interestingly, the reaction of the polarized surface with the first monomer is a step that creates a chemical bond, which is then stabilized by polymerization propagation. Thus, the presence of a coating at the end of this process is direct evidence or trace of the chemical bond that exists between the coating and the surface. According to this reaction mechanism, without charge transfer and bond formation with the first monomer, no polymer coating can exist on the surface.

[0010] Electron-poor "vinyl-based" molecules, i.e., molecules with electron-withdrawing functional groups (e.g., acrylonitrile, acrylates, vinylpyridines), are particularly suited to this process, which proceeds via an anionic propagation mechanism.

[0011] The reaction mechanism of electrografting is described in particular in C. Bureau et al., Macromolecules, 1997, 30, 333, C. Bureau and J. Delhalle, Journal of Surface Analysis, 1999, 6(2), 159, and C. Bureau et al., Journal of Adhesion, 1996, 58, 101.

[0012] The growth of the polymer layer proceeds via anionic propagation in cathodic electrografting. This growth is particularly terminated by protons, and it has even been shown that the proton content constitutes the main parameter controlling polymer formation in solution, information which is obtained during the synthesis, in particular in the shape and characteristics of the voltammograms recorded during the synthesis (see in particular the article by C. Bureau, Journal of Electroanalytical Chemistry, 1999, 479, 43).

[0013] Traces of water, and more generally the sensitive protons of protic solvents, constitute a source of protons that are detrimental to the anionic growth of polymer chains both in solution and on the surface. However, as described in patent FR2860523, it is preferable to optimize the thickness of the electrografted coating and carry out the electrografting of vinyl monomers in a bath containing at least 50 ppm of water, ideally about 1000 ppm of water, i.e., an electrolytic bath containing approximately as much water as the electrolyte support. This unexpected result follows from the fact that two types of polymerization are competing in electrografting: (i) chain growth starting from the initiator on the surface, i.e., growth associated with the grafting process itself, and (ii) chain growth resulting from the dimerization of desorbed radical anions (C. Bureau, Journal of Electroanalytical Chemistry, 1999, 479, 43). This growth occurs in solution, independent of the surface, and can form a film if the local concentration of the polymer formed in the solution exceeds the local solubility threshold near the surface. This film is generally not adherent and can be removed from the surface by simple washing with a good solvent for the polymer (if electrografting is performed in a good solvent for the polymer, the solvent is not even visible on the final surface, which simply supports the electrografted layer). The competition between these two polymerization reactions generally favors the homogeneous solution reaction over the heterogeneous surface reaction. Near the surface, there is a shortage of monomer in the medium, which "suffocates" the polymerization, particularly the grafting reaction. It is believed that protons added to the reaction medium by adding water can limit this imbalance by "killing" the primary reaction, i.e., the solution polymerization, and thus favoring the surface reaction by maintaining a higher local concentration of monomer near the surface than would be the case in the complete absence of water. This "more water is better" mechanism, while quite counterintuitive for anion-driven polymerization, can explain all the observations, including the very strange voltammograms obtained with these "aprotic" modes of electrografting.

[0014] However, this process is only observed for proton concentrations not exceeding several hundred or several thousand ppm in water, above which the surface-initiated growth is killed and no electrografted coating forms on the surface at all. In practice, it is more difficult to maintain a solution at a specific water content than to maintain a very low water content, as, for example, would be the case if the solution were kept in contact with freshly prepared molecular sieves.

[0015] Overall, even if chemical bonding can be achieved on conductive or semiconducting substrates by electrografting of various precursors starting from organic solutions, these reactions make it difficult to produce such coatings starting from easily prepared and controllable solutions, since the underlying reaction mechanism (anionic polymerization) makes it impossible to work with solutions having any water content.

[0016] So far, only aryldiazonium salts offer a solution to this problem. For example, as described in French Patent Application No. FR2804973, electrografting of a precursor such as a positively charged aryldiazonium salt is carried out by a cation reduction followed by a cleavage reaction, resulting in a chemically absorbed radical on the surface. Just as in the case of polymer electrografting, the electrografting reaction of aryldiazonium salts is electrically initiated, resulting in the formation of interfacial chemical bonds. Unlike the electrografting of vinyl monomers, the electrografting of aryldiazonium salts does not require a chemical reaction coupled with charge transfer to stabilize the chemically absorbed species, since the species is electrically neutral. Therefore, the electrografting of aryldiazonium salts directly forms a stable surface / aryl bond. In particular, in French Patent Application No. FR2829046, aryldiazonium salts form very thin, electrically conductive, and therefore self-sustaining organic coatings. That is, if the initial aryl coating grafting occurs by electrocleavage + chemisorption on the initial surface, the coating has been shown to grow by an electrosustained reaction, i.e., more polymer coating is formed as more current flows through the electrode. As a result, such coatings are usually more difficult to control, especially with regard to their thickness.

[0017] It has been observed that the electroreduction of a solution containing an aryldiazonium salt and a vinyl monomer can form a polymeric coating of the monomer on a surface, but the polymer is insoluble in the solvent used for electrosynthesis (see X. Zhang and J.P. Bell, Journal of Applied Polymer Science, 73, 2265, 1999). One advantage of a mixture of aryldiazonium and vinyl monomers, as claimed in this document, is that the polymer can be obtained by electrosynthesis without the need to apply the high cathode voltage required to achieve electroreduction of the vinyl monomer, i.e., sufficient to reduce the aryldiazonium salt, which is then used as an initiator for radical polymerization. Zhang et al. (supra) indeed reported that the aryldiazonium salt was dissolved in about 10 -2By polarizing aqueous solutions of acrylamide at a concentration of about 5.10 mol / L at a constant potential (-0.8 V / SCE), they observed that no coating formed on the surface of steel coupons, but a large amount of polymer formed in the solution. They interpreted this data by considering that polyacrylamide is water-soluble. In contrast, they observed that aryldiazonium salts at a concentration of about 5.10 mol / L -3 The formation of a very thick, whitish coating on the surface of similar steel coupons was observed by polarization at a constant potential (-1.0 V / SCE) of an aqueous solution containing acrylonitrile and methyl methacrylate at concentrations of 0.24 and 0.36 mol / L, respectively. After 30 minutes of electrolysis, the coating thickness was estimated to be 1 micrometer, which is significantly greater than can be achieved by simple electrografting of vinyl monomers. They interpreted this result as indicating that the formed copolymer (the structure of which was confirmed by variable-angle reflection-absorption infrared spectroscopy) was completely insoluble in water and precipitated on the surface.

[0018] These results are of interest to those skilled in the art of forming polymeric coatings on metal substrates. However, the grafting or strong bond-forming reaction, which constitutes one of the prominent features of electrografting reactions, is lost under the operating conditions chosen by Zhang et al. to form coatings by deposition on surfaces. Summary of the Invention

[0019] The present invention starts from precursor solutions that are easy to prepare and control, in particular (i) the application of an electrode potential to force the grafting reaction; (ii) the use of an electrolytic medium which is at least a good swelling agent for the polymer formed or a good solvent for the polymer; This provides a method of operation that allows the actual electrografting of polymers to be easily performed.

[0020] The object of the present invention is to propose a method by which organic coatings, in particular polymeric coatings, can be electrografted onto any conductive or semiconductive substrate or onto any such portion of the surface of a composite material, with a thickness of nanometers to several microns, preferably from about 10 nanometers to 1 micron.

[0021] Such organic coatings are useful for their inherent properties or, if desired, as underlayers or interfacial layers to anchor other materials by other means such as dipping, spray coating or spin coating.

[0022] As described in French Patent No. FR 2 843 757, the adhesion of functional, for example organic, functional layers is effectively reinforced by grafted organic, in particular polymeric, underlayers if the thickness of the underlayer is at least several tens or several hundreds of nanometers; this length is of the order of the radius of gyration of most known polymers, so that an underlayer having a thickness of at least this length is theoretically sufficient to incorporate the polymer of the functional layer into the grafted underlayer, i.e., to form at least one loop of the polymer of the functional layer within the grafted underlayer. In other words, it is believed that a better adhesion can be obtained by thin or ultrathin underlayers grafted onto the surface, compared to the relatively thick layers described in the prior art.

[0023] As described in French Patent No. FR 2 837 842, it is also important to obtain non-vinyl electrografted polymers (polyethylene glycol PEG, poly(dimethylsiloxane) PDMS, etc.) of non-polymeric macromolecules (dextrans, proteins, ADN, etc.) or of non-macromolecular macroobjects (carbon nanotubes, fullerenes, inorganic aggregates, etc.). The same vinyl precursors as those described in French Patent No. FR 2 837 842 can be used in the present invention, and all precursors that comply with the requirements of monomers or vinyl monomers will be used without any further strictness, although it goes without saying that said monomers can be selected from the entire range of precursors already mentioned in French Patent No. FR 2 837 842.

[0024] The present invention is based on the fact that when a time-dependent electrode potential procedure is applied, which procedure includes a cathodic excursion at a potential above a certain threshold, immersion of the electrode in an electrolytic bath comprising at least one diazonium salt and at least one chain-polymerizable group can result in the formation, after washing, of a polymeric coating containing said group.

[0025] The first object of the present invention is a method for grafting organic coatings onto conductive or semiconductive surfaces by electroreduction of a solution, comprising: a) preparing a solution containing at least one diazonium salt and one monomer having at least one chain-polymerizable functional group, which is a precursor of the organic coating; b) forming a grafted coating of an organic film on the surface by applying at least one procedure consisting of electrolyzing said solution in an electrolytic cell using the conductive or semiconductive surface to be coated as the working electrode and at least one counter electrode, and electrically polarizing the surface by applying a variable potential over at least a range of values ​​that are more cathodic than the reduction or peak potential of all diazonium salts present in said solution; The method comprises:

[0026] Advantageously, at least one procedure is carried out in cyclic voltammetric scanning (CVS) mode.

[0027] In at least one procedure, it is advantageous to apply a variable working current to the surface.

[0028] In the present invention, a monomer is a compound having at least one chain-polymerizable functional group. The polymerizable group can include various polymerizable moieties, such as a double bond, a ring (polymerization by ring-opening), or a functional group. In a preferred embodiment, the monomer is a vinyl monomer. In another preferred embodiment, the monomer is a polymerizable cyclic compound, such as a lactone.

[0029] The threshold value of interest in the present invention is the reduction potential of the aryldiazonium in solution.

[0030] As detailed in the examples below, adhesion coatings of poly-hydroxyethyl methacrylate (poly-HEMA) were prepared by 10% 4-nitrobenzenediazonium tetrafluoroborate. -2 The surface was voltammetrically scanned at a scan rate of 100 mV / s over the potential range of -0.1 V / CES to -1.2 V / CES in a solution containing 2 mol / L of HEMA (solvent = DMF / water). Although p-HEMA is a highly hydrophilic polymer with high water solubility, electrochemical impedance spectroscopy (EIS) data indicate that the poly-HEMA layer obtained by the method of the present invention remains completely swollen in water and is ionically conductive. This is one evidence that the coating exhibits little, if any, crosslinking, and that its surface adhesion is the result of bond formation with the underlying metal. For this reason, hereafter, the term "polymer electrografting" will be used, even though it currently refers to grafting obtained by electroreduction of a solution containing both a monomer capable of undergoing chain propagation and a diazonium salt, preferably present in low concentration.

[0031] It is a major achievement of the present invention that the same method can also be applied to monomers that normally undergo almost exclusively anionic propagation, such as monomers that can undergo ring opening (e.g., lactones such as ε-caprolactone, or lactides, e.g., lactic acid or glycolic acid). These monomers, like vinyl systems, undergo chain propagation reactions and can therefore be described as "chain polymerizable" monomers, but unlike vinyl systems, they have been found to be susceptible to anionic propagation as well, if not exclusively.

[0032] Nevertheless, 316L stainless steel coupons were treated with 4-nitrophenyldiazonium tetrafluoroborate for 10 min. -2 By voltammetric scanning polarization at a scan rate of 100 mV / s over the potential range of -0.2 V / ECS to -2.8 V / ECS in an aqueous solution containing 0.5 mol / L L-dilactide, a coating of polylactic acid (PLA) nearly 1.1 μm thick was observed to form on the surface of stainless steel specimens. The coating withstood washing in water and ultrasonic treatment, indicating strong adhesion through grafting. Because PLA is a biodegradable coating, this type of coating is of great importance in biomedicine.

[0033] It can thus be seen that the present invention is based on the fact that the application of a time-dependent electrode potential procedure, which procedure includes a cathodic excursion at a potential above a certain threshold, enables the formation, after rinsing, of an adherent polymeric coating based on a monomer, if the electrode is immersed in an electrolytic bath comprising at least a diazonium salt and at least one monomeric compound, i.e., a molecular compound having at least one chain-polymerizable functional group.

[0034] The following examples illustrate the main advantages obtained by using the method of the present invention. (i) The method of the present invention is applicable to any conductive or semi-conductive surface, such as 316L stainless steel, cobalt chromium alloys, titanium surfaces, titanium nitride, etc. (ii) The process of the present invention allows the production of a wide variety of homopolymer layers with the required properties, i.e., hydrophilic layers containing HEMA (hydroxyethyl methacrylate) as a monomer, hydrophobic layers containing BUMA (butyl methacrylate) as a monomer, etc. (iii) The method of the present invention allows the preparation of a wide variety of copolymer layers with the required properties, such as hydrophilic or hydrophobic layers containing copolymers of BUMA and MPC (2-methacryloyloxyethyl phosphorylcholine) as monomers in various ratios. (iv) The method of the present invention allows the preparation of a wide variety of organic layers made from non-vinyl polymers, i.e., PEG (polyethylene glycol) or PDMS (poly(dimethylsiloxane)) made from the methacrylate telechelic monomers of PEG and PDMS. (v) The method of the present invention enables the production of a wide variety of polymers obtained from ring-opening polymerization of cyclic monomers such as lactic acid, glycolic acid, ε-caprolactone, and the like. (vi) Although the method involves the actual grafting of a polymer layer onto the surface, this is demonstrated by the fact that the poly-HEMA layer obtained according to the present invention is completely swollen by water and therefore insoluble on the surface, rather than simply being crosslinked; electrochemical impedance spectroscopy (EIS) measurements show that the electrochemical impedance of the TiN surface in NaCl medium is only slightly changed by a 100 nm poly-HEMA layer obtained by electrografting, indicating that ionic currents through the coating are still active and that the polymer layer is permeable and does not constitute a water-insoluble barrier layer. (vii) The method of the present invention allows the formation of thin grafted polymer layers that can be used as an adhesion primer for much thicker layers sprayed on top of them. This was demonstrated with a 150 nm poly-BUMA layer electrografted onto a 316L stainless steel coupon, which did not delaminate a 5 μm PLA layer sprayed on top of it when the steel coupon was pulled apart. (viii) The method of the present invention allows the formation of grafted layers composed essentially of the desired polymer. Contrary to expectations, the electroreduction of the diazonium and its propagation on the nitrophenylene does not itself inhibit the initiation of polymerization of the monomer.

[0035] According to the method of the present invention, suitable monomers are preferably selected from activated vinyl monomers and cyclic molecules that can be cleaved by nucleophilic attack, having formulae (I) and (II), respectively. [ka] (In the formula, A, B, R1 and R2 may be the same or different and are each a hydrogen atom, a C1-C4 alkyl group, a nitrile group, a hydroxyl, an amine, i.e., -NH x (x=1 or 2), ammonium, thiol, carboxylic acid and their salts, esters, amides, i.e., C(=O)NH y (where y=1 or 2), imides, imide-esters, acid halides, i.e., C(=O)X (where X represents a halogen atom selected from fluorine, chlorine, bromine and iodine), acid anhydrides, i.e., C(=O)OC(=O), amino acids, phosphoric acids and their salts, phosphoric acids and their salts, phosphonylcholines and their derivatives, sulfonic acids and their salts, sulfuric acids and their salts, nitriles, succinimides, phthalimides, isocyanates, epoxies, siloxanes, i.e., -Si(OH) z(z is an integer from 1 to 3), benzoquinone, carbonyl-diimidazole, para-toluenesulfonyl, para-nitrophenylchloroformiate, ethylene and vinyl, aromatics, in particular toluene, benzene, halogeno-benzenes, pyridine, pyrimidine, styrene or halogeno-styrene and their substituted equivalents, functional groups capable of complexing with cations, in particular reducing cations of metals (for example copper, iron and nickel), molecular structures substituted and / or functionalized starting from these functional groups, thermally or photochemically cleavable groups (for example diazonium, and mixtures of monomers containing the above groups, such as ammonium salts, peroxides, nitrenes, azides, nitrosoanilides, alkoxyamines, in particular 2,2,6,6-tetramethyl-1-piperidinyloxy (TEMPO), benzophenone and its derivatives, dithioesters, dithiocarbamates, trithiocarbonates, electroactive groups and in particular conductive polymer precursors (e.g., aniline, thiophene, methylthiophene, bisthiophene, pyrrole, ethylenedioxothiophene (EDOT) and analogues, and electrocleavable groups (e.g., diazonium, sulfonium, phosphonium and iodonium salts), The straight line in formula (II) represents a C3-C10 alkyl group, n, m, and p may be the same or different and represent an integer of 0 to 20, provided that n, m, and p are not all 0 at the same time.

[0036] Other cyclic molecules that can be cleaved by nucleophilic attack can also be used. For example, the monomer can be an amine- and / or amide-containing cyclic compound, such as a lactam.

[0037] In the above symbols, R1 and R2 are unconditionally groups which differ by an index i not shown above, i being 0 to n. This means that the R1 and R2 groups may in fact be (C(R1)R2) different from the others in the structure of the cyclic molecule of formula (II), i.e. the notation (C(R1)R2) nrepresents a sequence of (C(R1)R2) type groups where R1 and R2 are included in the list above, rather than a repetition of the same element (C(R1)R2).

[0038] Among the functional groups of the activated vinyl monomers of formula (I) above that are capable of complexing with cations, mention may be made in particular of amides, ethers, carbonyls, carboxyls and carboxylates, phosphines, phosphine oxides, thioethers, disulfides, ureas, ether-crowns, aza-crowns, thio-crowns, cryptands, sepulcrats, podands, porphyrins, calixarenes, bipyridines and terpyridines, quinolines, orthophenanthroline compounds, naphthols, iso-naphthols, thioureas, siderophores, antibiotics, ethylene glycol and cyclodextrins.

[0039] Among the activated vinyl monomers of formula (I) mentioned above, mention may in particular be made of acrylonitrile, methacrylonitrile, methyl, ethyl, propyl and butyl methacrylate, hydroxyethyl hydroxypropyl glycidyl methacrylate, acrylamide and in particular amino-ethyl, propyl, butyl, pentyl and hexyl methacrylamide, cyanoacrylate, di- or di-methacrylate, tri- or tri-methacrylate, tetra- or tetra-methacrylate (for example pentaerythritol tetramethacrylate), acrylic acid and methacrylic acid, styrene and its derivatives, parachlorostyrene, pentafluorostyrene, N-vinylpyrrolidone, 2-vinylpyridine, vinylacryloyl, methacryloyl halides, divinylbenzene (DVB), and more generally vinyl reticulating or methacrylate-based agents, and their derivatives.

[0040] Among the cleavable cyclic molecules of formula (II) above, mention may be made in particular of epoxies, lactones and in particular butyrolactone, ε-caprolactone and its derivatives, lactic acid, glycolic acid, oxiranes, polyaspartates, mixtures thereof and derivatives thereof.

[0041] Another object of the present invention is a method for grafting an organic coating onto a conductive or semiconductive surface by electroreduction of a solution comprising at least one diazonium salt and one cyclic monomer of formula (II) that is polymerized by nucleophilic cleavage, the polymer being chosen in particular from the group consisting of lactic acid, glycolic acid and ε-caprolactone.

[0042] Another subject of the present invention is a method for attaching macroscopic entities to conductive or semiconductive surfaces by electrografting. For the purposes of the present invention, the term "macroscopic entity" means a polymeric or non-polymeric macrostructure functionalized with at least one group capable of participating in a chain propagation reaction, i.e., a group belonging to the group of vinylic or cleavable cyclic molecules, such as those described above. Such groups will hereinafter be called "chain-polymerizable" groups, similar to the chain-polymerizable monomers described above.

[0043] In this embodiment, the object of the present invention is a method for grafting an organic coating onto a conductive or semiconductive surface by electroreduction of a solution, comprising: a) preparing a solution containing at least one diazonium salt and one macro-object that is a precursor of the organic coating; b) forming a grafted coating of said organic film on said surface by applying at least one procedure consisting of electrolyzing said solution in an electric field layer, using a conductive or semiconductive surface coated as a working electrode and at least one counter electrode, and electrically polarizing said surface by applying a variable potential over at least a range of values ​​that are more cathodic than the reduction or peak potential of all diazonium salts in said solution; The method comprises:

[0044] The object may be, for example, a crosslinked or uncrosslinked polymer, functionalized at the end of the chain or along the chain, or at other crosslinked sections, or a fully or partially functionalized macromolecule, or an object of nanometer or micrometer size or larger, the surface of which may be functionalized with at least one chain-polymerizable group capable of undergoing or participating in a surface-initiated polymerization reaction according to the present invention.

[0045] The macroscopic objects of the present invention may be, for example, crosslinked or uncrosslinked polymers functionalized at the chain ends or along the chain or at other crosslinked sections, or fully or partially functionalized macromolecules, or objects of nanometer or micrometer size or larger, whose surfaces may be functionalized with electron-withdrawing groups such as methacrylates, acrylates, vinyl chloride, acrylonitrile, methacrylonitrile, 4-vinylpyridine, 2-vinylpyridine, N-vinylpyrrolidone, etc., or other cyclic groups such as epoxy groups or, more generally, vinyl groups activated with oxiranes or lactones, such as ε-caprolactone.

[0046] These macroscopic objects can be used to obtain electrografted coatings containing macrostructural moieties. Grafting occurs due to the presence of electron-withdrawing or nucleophilic groups on the macrostructural moieties. These groups are attached to the macrostructural moieties, thereby electrografting the moieties onto their surfaces.

[0047] Due to the presence of their chain-polymerizable functional groups, the macroscopic entities that can be used in the present invention can themselves act as monomers and be electrografted like "standard" monomers. In some cases, the molecular structures attached to the chain-polymerizable groups are so large that the chain-polymerizable groups become powerless, i.e., they do not have sufficient mobility to propagate and actually become the sole agents for electrografting the macroscopic entities onto surfaces. In that case, one may need to consider co-electrografting the macro-objects with certain small monomers, such as efficient vinyl monomers (e.g., butyl methacrylate or hydroxyethyl methacrylate), to achieve electrografting onto the surface and achieve chain propagation and film growth, possibly through chain-polymerizable groups on the macro-objects.

[0048] The macroscopic entities that can be used according to the method of the invention are preferably selected from compounds of the following formula: AP APB P(A)n M(A) n A-[M(B)] n A-[M(B)] n -C AP-[M(B)] n AP-[M(B)]-C (In the formula, (i) P is a macrostructure selected from organic or inorganic oligomers and polymers, polymers obtained by polycondensation of one or more reagents, polysiloxanes, poly(ortho-esters), polyphosphates, parylene and substituted parylene-based polymers, conductive polymers, oligopeptides and proteins, nucleic acid molecules, polysaccharides, substituted or unsubstituted porphyrins, substituted or unsubstituted phthalocyanines, polymers formed from substituted monomers or substituted macromolecules selected from the above list, prepolymers, macromers or telechelics based on monomers and / or macromolecules selected from the above list, substituted or unsubstituted copolymers and / or mixtures which may be formed from these polymers, from their constituent monomers or from the above macromolecules, macrostructures which are neither polymeric nor strictly macromolecular, for example structures obtained by crosslinking two- or three-dimensional networks, such as rubbers, mineral aggregates, liquid vesicles such as liposomes and niosomes, and living cells, objects comprising at least one surface which can be functionalized with at least one electroactive group, in particular an electrograftable group; (ii) n is an integer equal to or greater than 1; (iii) M is a constituent monomeric unit of type P as defined above when the structure is polymeric; (iv) A, B and C may be the same or different and are selected from chain polymerizable groups selected from vinylic groups or cleavable cyclic molecules such as lactones, lactides, oxiranes, and A, B and C are bonded to the macrostructural moiety P or the monomeric moiety M by covalent, ionic or coordinate bonds or by hydrogen bonds.

[0049] Among the polymers defined for P, mention may in particular be made of crosslinked or uncrosslinked vinyl polymers, such as polymers of acrylonitrile, methacrylonitrile, methyl methacrylate, ethyl methacrylate, propyl methacrylate, butyl methacrylate, hydroxyethyl methacrylate, hydroxypropyl methacrylate, cyanoacrylate, acrylic acid, methacrylic acid, styrene and its derivatives, N-vinylpyrrolidone, vinyl halides, and polyacrylamides, isoprene, ethylene, propylene, ethylene oxide, molecules containing a cleavable ring, such as lactones, in particular ε-caprolactone, lactide, glycolic acid, polymers of ethylene glycol, polyamides, polyurethanes, poly(orthoesters) and polyaspartates.

[0050] Among the conductive polymers, mention may in particular be made of polymers based on aniline, thiophene or ethylenedioxythiophene (EDOT), pyrrole, their analogues or their substituted derivatives.

[0051] Among proteins, mention may in particular be made of antigens, enzymes, growth factors, antibodies and collagen.

[0052] Among the nucleic acid molecules, mention may in particular be made of single- and double-stranded DNA, single- and double-stranded RNA.

[0053] Among the polysaccharides, mention may be made in particular of, for example, cellulose and substituted celluloses, chitosan and substituted or functionalized chitosans, dextran and substituted or functionalized dextran, amylose, pectin, starch and heparin.

[0054] Among the mineral aggregates, mention may in particular be made of beads of silica, and more generally of oxides, and of nano-objects of any nature (nano-beads, nano-tubes, fullerenes, etc.).

[0055] Among the objects having at least one surface that can be functionalized with at least one electroactive group, mention may be made of non-liquid and non-gaseous objects having at least one conductive, semi-conductive or insulating surface selected from metallic, organic or mineral surfaces, for example wood, glass, plastics, plant fibres, keratinous materials, organic or mineral gels, composites thereof or mixtures thereof.

[0056] The maximum number that can be specified for n is not critical to the present invention and will depend on the number of functional groups present on the macrostructural portion that can be functionalized with chain polymerizable groups.

[0057] This functionalization is carried out, for example, by reacting these hydroxyl groups with methacryloyl chloride (MAC) to form methacrylate esters, which introduce methacrylate-chain polymerizable groups into the macrostructure and allow electrografting by the method of the present invention.

[0058] The same type of reaction can be carried out with, for example, glycidyl methacrylate instead of methacryloyl chloride.

[0059] It is also conceivable to use molecules that can be used as spacer elements, such as diisocyanates, epichlorohydrin, and more generally all bifunctional molecules, to form covalent bonds between the vinyl monomers and the macrostructures. The concentration of electrophilic macro-entities in the electrolyte solution is preferably 10 -6 ~5 mol / l.

[0060] The concentration of chain-polymerizable groups or monomers in the electrolytic solution according to the method of the present invention may vary from monomer to monomer, but this concentration is preferably between 0.1 and 10 mol / l, more preferably between 0.1 and 5 mol / l.

[0061] The concentration of the diazonium salt in the electrolytic solution according to the method of the present invention is preferably 1 to 10 -4 mol / l, more preferably 10 -2 ~10-3 It is in moles / l.

[0062] In particular embodiments of the present invention, the electrolytic solution may contain at least one additional liquid (solvent) primarily as a bystander (i.e., not participating in the electropolymerization reaction) to solubilize and tailor chain-polymerizable monomers that are not or poorly water-soluble. However, it is important to note that the presence of such a liquid is not always necessary, since it is possible to imagine situations in which the monomers used are used in pure form, or in which some of the monomers in the monomer mixture are used as solvents, or in which all of the monomers in the monomer mixture are in miscible ratios. When these solvents are used, they are preferably selected from dimethylformamide, dimethyl sulfoxide, ethyl acetate, acetonitrile, tetrahydrofuran, propylene carbonate, and other solvents commonly used in electrochemistry, dichloroethane, and more generally, chlorinated solvents. The solvent may also be selected from the group consisting of water and alcohols. The process of the present invention has the advantage that these solvents can be used directly without prior distillation to remove the water contained therein or without strict control of the water content of the atmosphere above the reaction medium. Therefore, the process of the present invention can be easily carried out on an industrial scale.

[0063] In a preferred embodiment of the present invention, the electrolyte solution comprises dimethylformamide, alone or mixed with water or dimethylsulfoxide.

[0064] Similarly, in another embodiment of the method of the present invention, the electrolyte solution may also contain at least one supporting electrolyte to ensure and / or improve the passage of current through the electrolyte solution. However, the use of a supporting electrolyte is not absolutely necessary, for example, when the chain-polymerizable monomer used contains an ionic group (e.g., aminohexyl methacrylate ammonium chloride), in which case the ionic group ensures that the resistance drop of the electrical circuit remains at an acceptable value. If used, the supporting electrolyte is preferably selected from quaternary ammonium salts, such as perchlorates, tosylates, tetrafluoroborates, hexafluorophosphates, quaternary ammonium halides, sodium nitrate, and sodium chloride. Among these quaternary ammonium salts, particular mention may be made of tetraethylammonium perchlorate (TEAP), tetrabutylammonium perchlorate (TBAP), tetrapropylammonium perchlorate (TPAP), and benzyltrimethylammonium perchlorate (BTMAP).

[0065] The electrolyte solution may further comprise an agent (surfactant) that improves the homogeneity of the coating, such as glycerol.

[0066] According to the invention, the conductive or semiconductive surface is preferably a surface of stainless steel, cobalt and its alloys (e.g. Co-Cr-Mo, Co-Cr-W), titanium and its alloys (e.g. Nitinol, NiTi), materials particularly preferred according to the invention in biomedicine, iron, copper, nickel, niobium, aluminium (especially when freshly brushed), silver, silicon (doped or not), silicon carbide, titanium nitride, tungsten, tungsten nitride, tantalum, tantalum nitride or platinum-iridium or a noble metal selected from iridium, platinum, gold.

[0067] In the method of the present invention, electrolysis of the electrolytic solution can be carried out by polarization of the surface to be coated under voltammetric conditions and by a potential- or current-controlled procedure in which the potential (current) is time-dependent. The invention is based on the fact that, when a time-dependent electrode potential procedure is applied, if this procedure involves a cathodic excursion at a potential higher than a certain threshold, immersion of the electrode in an electrolytic bath comprising at least a diazonium salt and at least one monomer can result in the formation of an adherent polymeric coating of the monomer after rinsing. The threshold in question in the present invention is the reduction potential of at least the diazonium present in the solution, i.e., the potential of the surface must be higher than that of the highest diazonium salt present in the solution over at least part of the potential (or current) procedure applied to the substrate.

[0068] In a preferred embodiment, the threshold value of interest in this invention is at least the reduction potential of the aryldiazonium salt in solution, i.e., the potential of the surface must be higher than that of the highest aryldiazonium salt present in solution over at least part of the potential (or current) sequence applied to the substrate. Without wishing to be bound by theory, this effectively allows aryl groups to be grafted onto the surface, followed by attachment of polymers to the surface via the aryl groups by radical aromatic substitution. In such a scheme, polymers will be formed by some ungrafted or chemisorbed aryl groups that can act as initiators, or by some other radicals derived, for example, from the reduction of protons and / or from the solvent itself. Preferred experimental conditions include, for example, polarization from the resting potential of the substrate in solution under voltammetric conditions.

[0069] For Example 15, the best polymeric coatings (consisting essentially of polymer and low in diazonium salt content) are obtained with cathodic excursions approximately in the potential range for reducing the monomer.

[0070] These results demonstrate that the best polymer coatings are obtained at potentials higher than the reduction potential of the diazonium salt, and that although the diazonium salt is important in providing an operational method for electrografting the polymer layer, the best working potential is much more cathodic, closer to the reduction potential of the diazonium and / or substituents on the monomer itself.

[0071] In a preferred embodiment, the applied potential has an excursion within a potential range that is the most cathodic potential that can be reached within the solvent window before the so-called "solvent wall." This solvent wall is most easily identified in a voltammogram because it usually corresponds to the potential at which a very steep rise (in absolute value) in electrochemical current is observed, well above the maximum of the current peak resulting from the electroreduction of the diazonium salt. The nature of the electrochemical reaction accompanying this steep increase in cathodic current can vary from electrochemical medium to electrochemical medium, but usually corresponds to the reduction of the supporting electrolyte, or the solvent, or dissolved water (if water is not the solvent), or all of these. Typically, in accordance with this embodiment, the potential applied in the present invention is −2 to −3 V / ECS, ie, 1 to 2 V or more more cathodic than the reduction peak of the diazonium.

[0072] If the solvent is or contains water, one skilled in the art will understand that the applied potential must be less than the proton reduction potential.

[0073] The choice of potential value can be an important feature of the method (see Examples 12 and 13).

[0074] In a preferred embodiment of the present invention, the coating is obtained by sequentially applying several independently selected sequences of sequences of applying different work potentials and sequences of applying different work currents, each sequence being applied to the surface for a specific duration that may be the same as or different from the other sequences.

[0075] The present invention also aims to produce conductive or semiconductive areas of surfaces coated with the above-mentioned electrografted coatings, which generally have a thickness of 10 nm to 10 μm, preferably 10 nm to 1 μm.

[0076] Diazonium salts have the general formula R'-N 2+ ,X - wherein R' contains one or more aromatic rings and / or one or more unsaturated groups, and X- is a counterion.

[0077] R' preferably comprises an organic or mineral radical selected from the group consisting of nitro, fluoro, bromo, chloro, iodo, thiocyano, sulfate, sulfonate, sulfonium salt, phosphate, phosphonate, phosphonium salt, diazonium salt, amine, ammonium, alcohol, aldehyde, ketone, carboxylic acid, ester, amide, nitrile, acid anhydride, acid halide, alkyl, alkenyl, alkynyl, aryl, naphthyl, anthryl, pyrryl and higher polyaromatic groups, which in turn encompass groups selected from the group consisting of nitro, fluoro, bromo, chloro, iodo, thiocyano, sulfate, sulfonate, sulfonium salt, phosphate, phosphonate, phosphonium salt, diazonium salt, amine, ammonium, alcohol, aldehyde, ketone, carboxylic acid, ester, amide, nitrile, acid anhydride, acid halide, alkyl, alkenyl, alkynyl, aryl, naphthyl, anthryl, pyrryl and higher polyaromatic groups.

[0078] According to a preferred mode of accomplishment, the process of the invention is carried out in such a way that the diazonium salt is an aryl diazonium salt, preferably of formula ArN 2+ X - wherein Ar represents an aromatic group and X represents an anion selected from halogen, sulfate, phosphate, perchlorate, tetrafluoroborate, hexafluorophosphate, and carboxylate.

[0079] The anion can be a substituent of an aryl group, such as a sulfonate group, in which case an amphiphilic molecule comprising a diazonium salt is obtained.

[0080] The aromatic group may contain one or more aromatic groups, linked or fused together. The aromatic group may be a C6-C14 aromatic moiety, optionally substituted with one or more functional substituents, or a heteroaromatic moiety having 4 to 14 atoms, comprising one or more heteroatoms selected from oxygen, nitrogen, sulfur, or phosphorus, optionally substituted with one or more functional substituents. The aromatic group may further contain one or more linear or branched chain aliphatic groups having 1 to 20 carbon atoms, optionally containing one or more double or triple bonds, optionally substituted with a carboxyl group, NO2, protected, disubstituted and monosubstituted amino groups, cyano, diazonium, alkoxy containing 1 to 20 carbon atoms, alkoxycarbonyl containing 1 to 20 carbon atoms, alkylcarbonyloxy containing 1 to 20 carbon atoms, optionally fluorinated vinyl or allyl, halogen atom; optionally a carboxyl group, NO2, cyano, diazonium, an alkoxy group containing 1 to 20 carbon atoms, an alkoxycarbonyl group containing 1 to 20 carbon atoms, an alkylcarbonyloxy group containing 1 to 20 carbon atoms, an optionally fluorinated vinyl or allyl group, an aryl group substituted with a halogen atom; Carboxyl group, NO2, protected, disubstituted and monosubstituted amino groups, amido, cyano, diazonium, sulfonic, phosphonic, alkoxy containing 1 to 20 carbon atoms, alkoxycarbonyl containing 1 to 20 carbon atoms, alkylcarbonyloxy containing 1 to 20 carbon atoms, optionally fluorinated vinyl, halogen atoms, The alkyl group may comprise a substituent selected from the group consisting of:

[0081] In a preferred mode of implementation, the method of the invention is characterized in that the aromatic group comprises one or more substituents which are likely to react directly with an organic resin, a biological molecule, a chemical molecule or a complexing agent, or which comprise one or more precursor substituents which are likely to react after conversion with an organic resin, a biological molecule, a chemical molecule or a sequestering agent. The expression "substituents likely to react directly with a polymer, a chemical or biological molecule" means a substituent of the aromatic group which bears a reactive functional group which is likely to react with a chemical functional group carried by another molecule, immobilized on a surface. Examples of reactive functional groups carried by aromatic groups are allyl or vinyl or acetylenic functional groups, halogens, alcohols, e.g. -(CH2) n Alcohols of the type -CH2-OH, carboxylic acids, e.g., -(CH2) n Carboxylic acids of the -COOH type, acid anhydrides or acid halides, nitriles, isocyanates, amines, e.g., -(CH2) n The term "precursor substituents likely to react with a polymer, chemical or biological molecule after one or more transformations" refers to precursor substituents likely to react with a polymer, chemical or biological molecule after one or more transformations. Precursor substituents likely to react after transformation are, for example, NO, N 2+ , -(CH2) n -CN, -(CH2) n -CHO, -(CH2) n -COOPr (where Pr is a protecting group), -(CH n -NHP'R, -(CH2) n -N(P'r)2, -(CH2) n -N=P"R (wherein P'R and P"R are protecting groups, and n is an integer of 1 to 10). Examples of amine protecting groups include phenacylsulfonyl chloride or acetyl chloride.

[0082] The method may comprise the separate step of applying an outer coating, which may be applied by electrodeposition or other means such as dipping, spray coating or spin coating.

[0083] Another object is to provide conductive or semiconductive surfaces grafted with organic coatings, obtainable by the method of the present invention. The method of the present invention allows for thick coatings of organic coatings to be obtained. In the examples below, it can be seen that organic coatings of 300 nm can be obtained (see, for example, Examples 1 and 9). Example 3 shows that thicker coatings can be obtained using a crosslinker. The grafted coatings preferably have a thickness of 1 nm to 10 μm, more preferably 10 nm to 1 μm.

[0084] The surface is a conductive or semiconductive surface. This surface may in particular be stainless steel, steel or a cobalt-chromium alloy. The method therefore allows the coating of all conductive or semiconductive surfaces with organic coatings, in particular vinyl polymers.

[0085] The organic coating may be a vinyl polymer or copolymer, particularly poly-BUMA, poly-HEMA, poly-MPC / BUMA and poly-MPC / DMA / TMSPMA. In a preferred embodiment, the organic coating is a biodegradable polymer, particularly polycaprolactone or PLA.

[0086] In the examples below, the organic coating includes the chemical structure of a monomer (one type of monomer or a variety of monomers) and a diazonium salt moiety (when an aryl diazonium salt is used, the aryl moiety is present in the organic coating - see, for example, Example 1).

[0087] As shown in Example 16, the electrografted polymeric coatings are not homogeneous in the direction perpendicular to the surface; closer to the metal surface, the coating is enriched in diazonium and its electroreduction by-products, whereas farther from the surface, the film is more polymer-concentrated. This "dual" structure of the coatings is an interesting result for the following reasons: (i) Diazonium salts are more easily grafted than monomers on conductive or semiconductive surfaces. In the case of vinylic monomers, this is thought to be because vinylic monomers are reduced to radical anions during their electroreduction, and these anions, when formed, are primarily repelled by (negatively) polarized surfaces. Therefore, electrografting of vinylic monomers is a phenomenon with very low yields relative to the current. In fact, electrografting of monomers, i.e., vinylic monomers, is difficult on common surfaces, especially when a residual oxide layer is present. Furthermore, from a practical point of view, diazonium salts are very compliant and more easily electrografted on common surfaces. Thus, the present invention transfers the tractability observed with diazonium salts to monomers, primarily vinylic monomers. Furthermore, electrografting of diazonium salts, as observed in the present invention, is not very sensitive to water content, whereas direct electrografting of monomers, primarily vinylic monomers, is very sensitive to water content. (ii) The layers obtained by electrografting of diazonium salts are denser than those obtained with vinylic monomers, and even a thin oxide layer provides excellent covalent bonding as soon as the monomers become at least semiconductive. Therefore, good electrografting and adhesion of polymers are achieved even under conditions where vinylic monomers are not electrografted.

[0088] The organic coating obtained by this method is It can be made into a biocompatible coating, It can be made into an adhesive primer, It may be electrically conductive, It can have electrical insulating properties.

[0089] Another object of the present invention is an electrolytic composition comprising at least one diazonium salt, one monomer having at least one chain-polymerizable functional group, and one supporting electrolyte. The diazonium salt, the monomer, and the supporting electrolyte have the same definitions as above. In a particular embodiment, the monomer is selected from the group consisting of butyl methacrylate, hydroxyethyl methacrylate, lactic acid, glycolic acid, and ε-caprolactone. Advantageously, the composition further comprises a solvent (as described above) and / or a surfactant (glycerol). The electrolytic composition comprises the monomer in a concentration of 1.5 to 2 mol / l and the diazonium salt in a concentration of 5.10 mol / l. -4 ~10 -1 Supporting electrolyte concentration 10 in mol / l -3 ~5.10 -2 Advantageously, it is comprised in moles per liter.

[0090] The present invention provides a monomer selected from the group consisting of butyl methacrylate and hydroxyethyl methacrylate; at least one diazonium salt, Supportive electrolytes, and solvent The present invention also relates to an electrolytic composition comprising:

[0091] The electrolytic composition contains a monomer at a concentration of 1.5 to 2 mol / l and a diazonium salt at a concentration of 5.10 -4 ~10 -1 Supporting electrolyte concentration 10 in mol / l -3 ~5.10 -2 Advantageously, it is comprised in moles per liter.

[0092] In particular, the diazonium salt is an aryl diazonium salt. The supporting electrolyte is advantageously selected from the group consisting of NaNO3 and TEAP. For these polymers, the use of a solvent, in particular DMF, can be recommended.

[0093] Another object of the present invention is to provide Butyl methacrylate monomer at a concentration of 1.5 to 2 mol / l, Glycerol at a concentration of 0.01 to 1 mol / l Dimethylformamide was used as the solvent. 4-Nitrophenyldiazonium tetrafluoroborate at a concentration of 5.10 -4 ~10 -1 In moles / l, sodium nitrate (NaNO3) at a concentration of 10 -3 ~5.10 -2 The electrolytic composition comprises in moles / l:

[0094] The present invention provides a method for preparing an electrografting formulation, comprising: a) Butyl methacrylate monomer at a concentration of 1.5 to 2 mol / l; Glycerol (5% of the total volume) at a concentration of 0.01–1 mol / l; Dimethylformamide was used as the solvent. Sodium nitrate (NaNO3) at a concentration of 10 -3 ~5.10 -2 preparing a composition comprising in moles / liter b) Before use, the composition is diluted with 4-nitrophenyldiazonium tetrafluoroborate at a concentration of 5.10 -4 ~10 -1 Addition step in mol / l The present invention relates to a method comprising:

[0095] Another object of the present invention is to provide Hydroxyethyl methacrylate monomer at a concentration of 1.5 to 2 mol / l, Glycerol at a concentration of 0.01 to 1 mol / l Dimethylformamide was used as the solvent. 4-Nitrophenyldiazonium tetrafluoroborate at a concentration of 5.10 -4 ~10 -1 In moles / l, sodium nitrate (NaNO3) at a concentration of 10 -3 ~5.10 -2 The electrolytic composition comprises in moles / l:

[0096] The present invention provides a method for preparing an electrografting formulation, comprising: a) Hydroxyethyl methacrylate monomer at a concentration of 1.5 to 2 mol / l; Glycerol at a concentration of 0.01 to 1 mol / l Dimethylformamide was used as the solvent. Sodium nitrate (NaNO3) at a concentration of 10 -3 ~5.10 -2 preparing a composition comprising in moles / liter b) Before use, the composition is diluted with 4-nitrophenyldiazonium tetrafluoroborate at a concentration of 5.10 -4 ~10 -1 Addition step in mol / l The present invention relates to a method comprising:

[0097] The present invention further provides a method of coating a stent with an electrografted layer of polyhydroxyethyl methacrylate, comprising the steps of: Washing with detergent for 10-20 minutes at 90% ultrasonic output of 35 kHz; Wash with DI water for 10-90 minutes at 90% ultrasonic output (35 kHz). drying process, contacting the stent with the cathode of a power source; immersing the metal in the electrolytic solution of claim 25 for 5 to 20 minutes while bubbling with argon; Polarizing the stent by a cyclic voltammetry procedure from open circuit potential to -3 V / CE (CE = counter electrode = anode) at a scan rate of 100 mV / s with argon bubbling at 8 l / min for 5 to 75 scans; A first cleaning step is carried out in DMF with argon bubbling for 5 to 20 minutes. A second cleaning step is carried out for 5 to 20 minutes while bubbling with argon. Washing in DI water for 5 to 20 minutes; Drying in a vacuum oven at 40°C and 10 mbar for 30 to 180 minutes The present invention relates to a method comprising:

[0098] The present invention further provides a method of coating a stent with an electrografted layer of polybutylmethacrylate, comprising the steps of: Washing with detergent for 10-20 minutes at 90% ultrasonic output of 35 kHz; Wash with DI water for 10-90 minutes at 90% ultrasonic output (35 kHz). drying process, contacting the stent with the cathode of a power source; a step of immersing the metal in the electrolytic solution of claim 23 for 5 to 20 minutes while bubbling with argon; Polarizing the stent by a cyclic voltammetry procedure from open circuit potential to -3.2 V / CE (CE = counter electrode = anode) at a scan rate of 50 mV / s with argon bubbling at 8 l / min for 5 to 75 scans; A first cleaning step is carried out in DMF with argon bubbling for 5 to 20 minutes. A second cleaning step is carried out for 5 to 20 minutes while bubbling with argon. Washing in DI water for 5 to 20 minutes; Drying in a vacuum oven at 40°C and 10 mbar for 30 to 180 minutes The present invention relates to a method comprising: [Example]

[0099] experiment All chemicals were obtained from Aldrich Chemical Co. or Acros and used as received. TiN thin films were obtained on SiO2 / Si substrates by MOCVD.

[0100] Typical specimen size is 7 x 1 cm 2 Electropolished stainless steel (316L), cobalt chromium (MP35N), sandblasted and unsandblasted titanium substrates were ultrasonically cleaned in a 2% Dorex solution at 50 °C, followed by distilled water, and then dried in a furnace at 100 °C for 1 h before use. TiN / SiO2 / Si were used as removed from the MOCVD chamber.

[0101] The composition of the coatings was analyzed using a Brucker Tensor 27 Fourier transform infrared spectrometer (FT-IR) equipped with a SensIR (Durascope) attachment for ATR measurements at a resolution of 4 cm. The thickness of the coatings was confirmed by cutting a sharp groove through the coating with a cutter and measuring the groove with a Step IQ profilometer from KLA Tencor. Voltammetry and other time-dependent potential experiments were performed with a potentiostat / galvanostat (CH660A, CH Instruments, USA), where the potential of the working electrode (the substrate to be coated) was applied relative to a calomel reference electrode (ECS). Unless otherwise indicated, all potentials are reported in absolute terms relative to the ECS reference potential in all experiments. XPS spectra were obtained on an ESCALAB VG XL 220 instrument (Al source, energy 1486.6 eV). ToF-SIMS spectra were obtained on a ToF-SIMS IV (ION-TOF GmbH, Muenster, Germany). The acquisition time was 75 s and the spectrum was measured on a 150 × 150 μm 2 The spectra were acquired with a Au source (25 keV) operating in high mass resolution mode. Both positive and negative spectra were recorded.

[0102] Electrochemical impedance spectroscopy experiments were performed in a three-electrode electrochemical cell with a large platinum foil as the counter electrode and an Ag / AgCl reference electrode. EIS spectra were collected using a multichannel potentiostat VMPII / z computer-controlled with Eclab software. Measurements were performed in 0.9 g L NaCl solution. -1 At the open circuit potential in solution, 10 5 ~10 -2 Measurements were made over a frequency range of 10 Hz, with 5 measurements per 10 and a 10 mV peak-to-peak sinusoidal amplitude signal.

[0103] The present invention will be described in more detail below with reference to the following examples, but the present invention is not limited to these examples.

[0104] Example 1 Deposition of BUMA thin films on stainless steel in the presence of 4-nitrodiazonium tetrafluoroborate Poly-BUMA coatings are known to be important biocompatible coatings for deposition on biocompatible substrates used in prostheses, such as stainless steel, titanium (Example 4), and CoCr (Example 5). Such coatings can be obtained as follows: TEAP (tetraethylammonium perchlorate as supporting electrolyte, 2.5 10 -2 In 50 mL of undistilled DMF (dimethylformamide) containing 574 mg (3.5 M), butyl methacrylate 50 mL (3.5 M) and 236 mg (10 M) of 4-nitrobenzenediazonium tetrafluoroborate were added. -2 M) will be introduced. This solution was introduced into a cell with two electrodes: a polished stainless steel working electrode and a piece of carbon paper counter electrode. The potential of the stainless steel cathode was adjusted from -0.2 V to -3.0 V with argon bubbling (2 L min ) at a rate of 100 mV / s. -1 ) and scan 20 times.

[0105] Figure 1 shows the initial (black line) and final (dashed line) cyclic voltammograms of the solution, demonstrating film formation.

[0106] The electrode was then carefully rinsed with DMF and water and air-dried, resulting in the formation of a uniform greenish coating 300 nm thick. The IR spectrum of this coating showed that the carbonyl vibration of polybutyl methacrylate was at 1728 cm -1 In addition, two symmetric and asymmetric vibrations of the nitrophenyl group occur at 1520 and 1350 cm -1 are observed in the following cases.

[0107] It can be seen that a poly-BUMA layer is obtained even though poly-BUMA is readily soluble in DMF, and the coating can withstand thorough rinsing in DMF under ultrasound for 2 minutes.

[0108] Example 2 Deposition of BUMA thin films on stainless steel in the presence of 4-nitrodiazonium tetrafluoroborate by pulsed potential trains A scanning potential can be used as in Example 1, or a pulse train potential as described in the Experimental Procedures below.

[0109] The same procedure as in Example 1 was used, except that a pulse train potential (Ei = -0.5 V for 0.6 s and Et = -3.0 V for 0.3 s) was used instead of the scanning potential. The number of scans was 2000. A homogeneous greenish coating with a thickness of 300 nm was formed on the electrode, which was then carefully rinsed with DMF, water, and air-dried.

[0110] In the IR spectrum of this film, the carbonyl vibration of polybutyl methacrylate was detected at 1728 cm -1 In addition, two symmetric and asymmetric vibrations of the nitrophenyl group occur at 1520 and 1350 cm -1 are observed in the following cases.

[0111] Example 3 The influence of crosslinking agent (pentaerythritol tetraacrylate) on the thickness of films obtained on stainless steel from methyl methacrylate and 4-nitrobenzenediazonium tetrafluoroborate.

[0112] Typically, the thickness of the coating obtained by vinyl / diazo copolymerization is about several hundred nanometers. Thicker coatings can be obtained by adding a crosslinking agent, such as pentaerythritol tetraacrylate, to the coating deposition bath as described in the procedure below.

[0113] NaNO3 210 mg (2.5 10 mg as supporting electrolyte) -2 In 50 mL of undistilled DMF containing 5 M, 50 mL of methyl methacrylate (5 M), 236 mg of 4-nitrobenzenediazonium tetrafluoroborate (10 -2 M) in 1 mL of pentaerythritol tetraacrylate (1.2 mL) -3 This solution is introduced into a two-electrode cell in which the working electrode is a polished stainless steel coupon and the counter electrode is a piece of carbon paper.

[0114] The potential of the stainless steel cathode was adjusted from −0.17 V to −2.8 V at a rate of 50 mV / s by argon bubbling (2 L min -1) while scanning.

[0115] The electrode was then carefully rinsed with DMF and water and air-dried, resulting in a uniform greenish coating. The thickness of the coating containing pentaerythritol was 1.0 μm. The thickness of the coating without pentaerythritol tetraacrylate was limited to 150 nm.

[0116] In separate experiments with pentaerythritol tetraacrylate, under the same conditions but with 20 and 40 potential scans, respectively, thinner films were obtained, the thickness of which was linear with the number of cycles imposed by voltammetry, as shown in Figure 2.

[0117] Figure 2 shows the relationship between the thickness increase of the coating obtained on a stainless steel coupon from MMA and 4-nitrobenzenediazonium tetrafluoroborate in the presence of pentaerythritol tetraacrylate and the number of electrochemical cycles. The horizontal axis represents the number of cycles, and the vertical axis represents the thickness of the coating (Å).

[0118] In the IR spectrum, the carbonyl vibration of polyester is at 1740 cm -1 In addition, two symmetric and asymmetric vibrations of the nitrophenyl group occur at 1520 and 1350 cm -1 are observed in the following cases.

[0119] Example 4 Deposition of poly-BUMA thin films on sandblasted and non-sandblasted titanium substrates in the presence of 4-nitrobenzenediazonium tetrafluoroborate The same procedure as in Example 1 was used, except that sandblasted and non-sandblasted titanium substrates were used instead of stainless steel.

[0120] The IR spectrum of a 300 nm thick coating on bulk Ti shows the carbonyl vibration of polybutyl methacrylate at 1728 cm -1 In addition, two symmetric and asymmetric vibrations of the nitrophenyl group occur at 1520 and 1350 cm -1 are observed in the following cases.

[0121] In the case of sandblasted Ti, a change in the hydrophilicity / hydrophobicity of the surface was observed after treatment, with the water droplet contact angle increasing from nearly 0° before treatment to almost 90° after coating deposition due to the highly hydrophobic poly-BUMA coating obtained by electrografting.

[0122] Example 5 Deposition of poly-BUMA thin films on CoCr (MP35N) substrates in the presence of 4-nitrobenzenediazonium tetrafluoroborate NaNO3 215 mg (2.5 10 mg as supporting electrolyte) -2 In 50 mL of undistilled DMF containing 50 mL of butyl methacrylate (3.5 M) and 236 mg (10 M) of 4-nitrobenzenediazonium tetrafluoroborate -2 This solution is introduced into a two-electrode cell in which the working electrode is an electropolished CoCr substrate (MP35N) and the counter electrode is a piece of carbon paper. The potential of the stainless steel cathode is adjusted from -0.3 V to -3.5 V at a rate of 100 mV / s by bubbling with argon (2 L min -1 ) while scanning.

[0123] The electrode was then carefully rinsed with DMF and water and air-dried, forming a uniform greenish coating 300 nm thick. The IR spectrum of the coating showed that the carbonyl vibration of polybutyl methacrylate was at 1728 cm -1 is observed.

[0124] Example 6 Deposition of poly-BUMA thin films on CoCr (L605) substrates in the presence of 4-nitrobenzenediazonium tetrafluoroborate The same device setup as in Example 5 is used, except that the substrate is an 18 mm L605 cobalt-chromium coronary stent. The composition of the electrolyte solution is as follows: butyl methacrylate (30 wt%), 4-nitrobenzenediazonium tetrafluoroborate (10 -3 M), NaNO3(2.5.10 -2 M), glycerol (5% by weight), DMF (65% by weight), the weight percentages being expressed relative to the total weight of the composition.

[0125] After electrografting, the stents are rinsed in DMF and dried at 40°C under 10 mbar vacuum for 60 minutes. Prior to electrografting, the stent surface is treated with a 40% solution of NHF for 1 minute. The thickness of the coating obtained using this method is approximately 150 nm. Electrografting parameters: argon bubbling (2 l.min -1 Cyclic voltammetry from open circuit potential to -3.5 V / CE while applying 1000 kJ / cm². Number of scans: 50 scans. Scan rate: 50 mV / s. TOF-SIMS analysis of the stent shows peaks characteristic of p-BUMA. The same spectrum also demonstrates the absence of peaks characteristic of glycerol.

[0126] Example 7 Deposition of poly-HEMA thin films on stainless steel in the presence of 4-nitrobenzenediazonium tetrafluoroborate Poly-HEMA is another example of a biocompatible polymer. Poly-HEMA is considered hydrophobic, whereas poly-HEMA is considered a more hydrophilic polymer due to its hydroxyl groups. Poly-HEMA coatings have been obtained on stainless steel, TiN thin films (Example 7), and Nitinol (Example 8) under the following conditions:

[0127] NaCl 145 mg (2.5.10 mg as supporting electrolyte) -2 To a mixture of 10 mL of undistilled DMF and 66 mL of deionized water containing 24 mL of hydroxyethyl methacrylate (HEMA, 2 M) and 236 mg of 4-nitrobenzenediazonium tetrafluoroborate (10 -2 M) will be introduced. This solution was introduced into a three-electrode cell in which the working electrode was a polished stainless steel coupon, the counter electrode was a piece of carbon paper, and the reference electrode was Ag / AgCl. The potential of the stainless steel cathode was varied from -0.1 V to -1.2 V at a rate of 100 mV / s with argon bubbling (2 L min). -1 ) and scan 100 times.

[0128] In the IR spectrum of the film, the carbonyl and C-OH vibrations of polyhydroxyethyl methacrylate were detected at 1728 and 1164 cm -1The two vibrations of the nitrophenyl group are barely detectable.

[0129] Example 8 Deposition of poly-HEMA thin films on TiN in the presence of 4-nitrobenzenediazonium tetrafluoroborate The same procedure as in Example 7 was used, except that a TiN / SiO2 / Si substrate was used instead of polished stainless steel. FT-IR of the resulting coating identified the carbonyl and C-OH vibrations of polyhydroxyethyl methacrylate at 1704 and 1152 cm -1 are shown in the table below.

[0130] Example 9 Deposition of poly-HEMA thin films on NiTi (Nitinol) in the presence of 4-nitrobenzenediazonium tetrafluoroborate To a mixture of 240 mL of deionized water containing 58.5 mg of NaCl (0.1 M as supporting electrolyte), 60 mL of hydroxyethyl methacrylate (HEMA, 20% by volume) and 144 mg of 4-nitrobenzenediazonium tetrafluoroborate (10 -2 This solution was introduced into a two-electrode cell with a Nitinol coupon as the working electrode and a carbon paper strip as the counter electrode. The potential of the Nitinol cathode was adjusted from -0.7 V to -2.5 V at a rate of 100 mV / s with argon bubbling (2 L min -1 ) and scan 100 times.

[0131] In the IR spectrum of the film, the carbonyl and C-OH vibrations of polyhydroxyethyl methacrylate were detected at 1728 and 1164 cm -1 The two vibrations of the nitrophenyl group are barely detectable. The surface of the electrografted substrate is hydrophilic, as can be seen from the water droplet shape.

[0132] Example 10 Deposition of poly-MPC / BUMA copolymer thin films on stainless steel in the presence of 4-nitrobenzenediazonium tetrafluoroborate We used various amounts of 2-methacryloyloxyethyl-2-trimethylammonium methylphosphate (or 2-methacryloyloxyethyl phosphorylcholine, MPC). [ka] Monomer mixtures in solution compositions containing:

[0133] This monomer was synthesized as described in Ishihara K, Ueda T, Nakabayashi N, Polym J 1990; 22: 355-360.

[0134] The composition consisted of 210 mL of undistilled DMF, 640 mg of NaNO3, a constant amount of butyl methacrylate (BUMA) approximately 30% and an increasing amount of MPC (see Table 9-1), and 72 mg (10 -2 The base is a mixture of 1000 M NaCl and 1000 M NaCl. The volume of this solution is maintained at 300 mL. This solution is introduced into a two-electrode cell in which the working electrode is a polished stainless steel coupon and the counter electrode is a piece of carbon paper. The potential of the stainless steel cathode is adjusted from -0.5 V to -3.2 V at a rate of 50 mV / s by bubbling with argon (2 L min -1 ) and scan 50 times.

[0135] [Table 1]

[0136] Contact angle measurements for the different layers (samples 1, 3 and 5) show an increase in hydrophobicity.

[0137] The key to this monomer mixture is the possibility to adjust the surface energy of the resulting coating by the monomer ratio.

[0138] Example 11 Deposition of poly-MPC / DMA / HPMA / TMSPMA copolymer thin films on stainless steel in the presence of 4-nitrobenzenediazonium tetrafluoroborate More complex copolymers can also be obtained, as shown by the following examples: -2In 10 mL of undistilled DMF containing 0.1 M, 2-methacryloyloxyethyl phosphorylcholine (MPC), dodecyl methacrylate (DMA), 0.1 M, hydroxypropyl methacrylate (HPMA), trimethylsilylpropyl methacrylate (TMSPMA), and 236 mg (10 mL) of 4-nitrobenzenediazonium tetrafluoroborate were added. -2 This solution is introduced into a three-electrode cell in which the working electrode is a polished stainless steel coupon, the counter electrode is a piece of carbon paper, and the reference electrode is Ag / AgCl. The potential of the stainless steel cathode is adjusted from -0.0 V to -2.5 V at a rate of 100 mV / s by bubbling with argon (2 L min -1 ) and scan 20 times.

[0139] Based on the infrared vibrational signature of each monomer and the mixture, the composition of the resulting coating is MPC=25%, DMA=10%, TMSPMA=21%, HPMA not estimated, 4-nitrophenylene not estimated.

[0140] [Table 2]

[0141] The complex nature of the structure of the coating is confirmed by the ToF-SIMS analysis, shown in Table 2. The ToF-SIMS spectrum indicates the presence of MPC, DMA, and TMSPMA moieties in the resulting coating copolymer. The HPMA moiety is more difficult to detect, as are the 4-nitrophenylene residues. This latter result is not specific to this copolymer.

[0142] Example 12 Electrografting of poly(butyl methacrylate) (poly-BUMA) films in the presence of 4-diazophenylcarboxylic acid (DCOOH) tetrafluoroborate Diazo / vinyl film formation is not limited to 4-nitrobenzenetetrafluoroborate. Other examples of diazo derivatives that have been tested and found to be effective are listed below.

[0143] A 100 mL solution was prepared from 50 mL of DMF (dimethylformamide), 50 mL of BUMA (butyl methacrylate, 0.31 M), 11 mg of NaNO3 (25 mM), and 23.6 mg of 4-diazophenylcarboxylic acid (DCOOH) tetrafluoroborate (1 mM). A stainless steel plate, polished and carefully cleaned as previously described, was introduced into the electrochemical cell along with a piece of carbon paper as the counter electrode and an SCE reference electrode. The potential of the stainless steel cathode was scanned 50 times at 100 mV / s between the open-circuit potential and -3 V. The specimen was rinsed with water and then acetone and dried.

[0144] A gray coating was readily observed on the specimen, which could not be rubbed off with a finger after drying, and the height of the coating was 87±5 nm as measured by a profilometer.

[0145] The IR spectra are summarized in Table 3. Assuming that the absorption of the C=O bands of BUMA and DCOOH have similar heights, it can be estimated that this film contains about 30% DCOOH and 70% BUMA.

[0146] [Table 3]

[0147] The ToF-SIMS spectra are summarized in Table 4.

[0148] [Table 4]

[0149] Thus, both spectra confirm the presence of polybutyl methacrylate and phenylcarboxyl groups on the coating surface.

[0150] Example 13 Electrografting of poly(butyl methacrylate) (poly-BUMA) films in the presence of 4-diazophenylcarboxylic acid (DCOOH) tetrafluoroborate with a potential limit of -1 V The same procedure as in Example 12 was used, except that the final potential was limited to −1 V. After rinsing with acetone, no film was observed on the surface and its height could not be measured (<10 nm).

[0151] Example 14 The relationship between coating thickness and cathodic potential of polybutyl methacrylate (BUMA) on 316L stainless steel. The same equipment settings as in Example 1 were used. The concentration of BUMA monomer was 3.5 mol / l, and the concentration of 4-nitrophenyldiazonium tetrafluoroborate was 10 -3 and 10 -2 The concentrations were adjusted to mol / L. These experiments were carried out in DMF as the solvent under a classical hood. All reagents were used as delivered without any purification or adjustment of water content. For each experiment, a new 316L stainless steel specimen was immersed in the electrolyte solution, and the electrode potential was scanned 50 times between the open-circuit potential and -0.8, -1, -1.5, -2, -2.5, and -3 V / SCE. The specimen was then rinsed in DMF under ultrasound for 10 minutes and dried. The thickness of the specimen was then measured with a profilometer. The results are shown in Tables 3 and 4.

[0152] Figure 3 shows the relationship between the thickness of the p-BUMA coating on 316L and the cathodic final potential (DNO2 concentration is 10 -2 mol / l).

[0153] Figure 4 shows the relationship between the thickness of the p-BUMA film on 316L and the cathodic final potential (DNO2 concentration is 10 -3 mol / l).

[0154] These results show that when the final potential of the cathode in the voltammetric experiment is (in absolute terms) lower than the reduction potential of the diazonium salt under the same conditions, i.e., about -0.4 V / SCE, which is much more cathodic, i.e., -1 V / SCE, practically no polymer coating is formed (i.e., the thickness of the coating is not detectable by profilometer; the sensitivity of the profilometer provided by the supplier is about 5 nm). -3 and 10 -2 mol / l, indicating the consistency of the observations.

[0155] In particular, it has been found that coatings of the order of several hundred nanometers associated with the top Velcro layer can only be obtained if the scanning procedure has an excursion at a potential more cathodic than -2 V / SCE.

[0156] Example 15 Relationship between quality of polybutyl methacrylate (Buma) coatings on 316L stainless steel and cathodic potential. The same instrument settings as in Example 14 were used. The polymer film was analyzed by IRRAS. The IR spectrum showed a C=O band at 1720 cm, which is attributed to the carbonyl group of the Buma polymer. -1 and a small NO2 band at approximately 1345 and 1520 cm -1 Shown below.

[0157] C=O peak and 1345 cm -1 NO in 2 By estimating the peak intensity ratio (C=O) / (NO2), the "quality parameter" of the coating can be defined. The higher the cathodic potential, the higher the electroreduction rate of the diazonium salt, which has a much lower cathodic reduction potential than any other species in the bath. Therefore, the content of nitro groups in the coating can be considered as a guide to the electroreduction of the diazonium and the growth of nitro-phenylene itself versus the initiation of polymerization of Buma monomers. This competition is estimated by the (C=O) / (NO2) ratio; when polymeric p-Buma coatings are desired, the higher this ratio, the better the coating.

[0158] This ratio is shown in relation to the cathodic final potential in Figures 5 and 6.

[0159] Figure 5 shows the relationship between (C=O) / (NO2)(IR) and the final cathode potential. -2 It is in moles / l.

[0160] Figure 6 shows the relationship between (C=O) / (NO2)(IR) and the final cathode potential. -3 It is in moles / l.

[0161] These figures show that the best polymeric coatings (in the sense described above) are obtained at cathodic displacements of about -2 V / SCE, which turns out to correspond to the potential range for reducing vinyl monomers themselves. The results also show that the quality of the coatings is poor at low cathodic potentials and very poor at higher cathodic potentials.

[0162] Example 16 Structure of polybutyl methacrylate (Buma) coatings on 316L stainless steel The same equipment settings as in Example 1 were used. The concentration of BUMA monomer was 3.5 mol / l, and the concentration of 4-nitrophenyldiazonium tetrafluoroborate was 10 -2 The concentrations were mol / l. These experiments were carried out in DMF as the solvent under a classical hood. All reagents were used as delivered without any purification or adjustment of water content. The substrate was a 316L stainless steel coupon. The coupon was immersed in the electrolyte solution, and the electrode potential was scanned three times between the open circuit potential and -3 V / SCE. The coupons were then rinsed in DMF under ultrasound for 10 minutes and dried. Ultrathin films on the order of 15 nm were obtained, allowing for a complete analysis of the surface versus bulk composition of the coating by angle-resolved XPS. N1s and C1s spectra were compared when electrons were collected at near normal (15°) and grazing angles (60°) to compare the bulk versus surface chemical structure of the polymer coating, respectively.

[0163] The N1s region of the XPS spectrum shows two main contributions at about 399.7 and 405.8 eV, due to the nitrogen atom of the hydroxylamine or amine group and to the nitrogen atom of the nitro group (the hydroxylamine or nitro group is believed to be the result of the reduction of the nitro group during the electrochemical process or under the electron beam during the XPS analysis). The C1s region shows a contribution at 286.2 eV, which is particularly attributable to the nitrophenyl group, which originates from the aromatic carbon bearing the NO2 or NH2 group and is therefore obtained by reduction of the diazonium salt.

[0164] Comparison of the XPS spectra at normal and elevation angles reveals that (i) aromatic carbons are mostly present at the interface, since their peaks are much weaker at the elevation angle (=surface), and (ii) the overall signal in the N1s region is always much weaker at the elevation angle than at the normal angle. The ratio between the 399.7 and 405.8 peaks, i.e., I(399.7) / I(405.8), is also smaller at the elevation angle, indicating relatively few nitro groups near the metal surface compared to the outer surface of the coating. This latter result indicates that the hydroxylamine and amine groups most likely originate from a highly electrochemical process, due to their displacement at very cathodic potentials, which causes the reduction of NO2 groups.

[0165] In summary, the results of this example demonstrate that the electrografted polymeric coating is not homogeneous perpendicular to the surface; that is, near the metal surface, the coating is enriched in nitrophenyldiazonium and its electroreduction by-products, whereas farther from the surface, the coating is enriched in poly-BUMA. This suggests that electrografting occurs primarily through electrografting of the diazonium, and that some of its electroreduction by-products actually initiates the polymerization reaction at very cathodic potentials.

[0166] Example 17 Deposition of PEG onto stainless steel in the presence of 4-nitrodiazonium tetrafluoroborate Cross-linkable polyethylene glycol dimethacrylate PEG(875) was used as an example for nano-object grafting.

[0167] The same procedure as in Example 1 was used, except that poly(ethylene glycol) dimethacrylate (PEG 875, 50 mL, 0.6 M) was used instead of butyl methacrylate.

[0168] Then, after careful rinsing with DMF, water and air drying, a homogeneous brownish coating with a thickness of 300 nm is present on the electrode.

[0169] In the IR spectrum of the coating, the carbonyl and CH2-O vibrations of PEG were detected at 1729 and 1146 cm -1The two vibrations of the nitrophenyl group are barely detectable.

[0170] Example 18 Deposition of poly(ε-caprolactone) onto stainless steel in the presence of 4-nitrobenzenediazonium tetrafluoroborate Another class of biopolymers are biodegradable polymers, many of which are of natural origin, although polylactones and polylactides (see Example 19) constitute an important class of synthetic biodegradable polymers. Coatings derived from ε-caprolactone and 4-nitrobenzenediazonium tetrafluoroborate can be prepared by the following procedure.

[0171] NaNO3 210 mg (2.5 10 mg as supporting electrolyte) -2 In 100 mL of undistilled DMF containing 55.4 mL (5 M) of ε-caprolactone and 236 mg (10 M) of 4-nitrobenzenediazonium tetrafluoroborate were added. -2 This solution is introduced into a two-electrode cell in which the working electrode is a polished stainless steel coupon and the counter electrode is a piece of carbon paper. The potential of the stainless steel cathode is adjusted from -0.15 to -2.8 V at a rate of 100 mV / s by bubbling with argon (2 L min -1 ) and scan 40 times.

[0172] The electrode is then carefully rinsed, leaving a thick, homogeneous bluish coating.

[0173] In a blank experiment in which no diazonium salt is present, no film is formed.

[0174] In the IR spectrum of the film, the carbonyl vibration of polyester is observed at 1725 cm -1 Two symmetric and asymmetric vibrations of the nitrophenyl group are observed at 1522 and 1346 cm -1 From the intensity of the bands, the amount of poly-ε-caprolactone present in the coating is estimated to be about 50%.

[0175] Example 19 Deposition of polylactide thin films on stainless steel in the presence of 4-nitrobenzenediazonium tetrafluoroborate A coating made from polylactide and 4-nitrobenzenediazonium tetrafluoroborate can be prepared by the following procedure.

[0176] Prepare a solution from 100 mL of DMSO, 50 g of L-lactide (L-lactide, (3S)cis-3,6-dimethyl 1,4-dioxane 2,5-dione, 3.47 M), 236 mg of 4-nitrobenzenediazonium tetrafluoroborate (0.01 M), and 210 mg of NaNO3 (0.025 M). Deoxygenate this solution and use a weak nitrogen bubble (2 L min) during electrolysis. -1 ) in the solution while scanning the stainless steel cathode from -0.2 to -2.8 V at 0.1 V / s.

[0177] A yellow, homogeneous, iridescent coating is observed that adheres well to finger rubbing, and the thickness of the coating is measured by profilometer to be 1.1±0.3 μm.

[0178] In the IR spectrum of the film, 1758 cm -1 The polylactide signature from the carbonyl band at 1519 and 1346 cm -1 Both symmetric and asymmetric bands in the spectrum indicate the signature of 4-nitropolyphenylene. From this spectrum, a polylactide content of 55% can be estimated in the coating.

[0179] The structures are confirmed by ToF-SIMS analysis as shown in Table 1.

[0180] [Table 5]

[0181] The ToF-SIMS spectrum shows both the presence of polylactide and the presence of 4-nitrophenylene.

[0182] Example 20 Electrochemical impedance spectroscopy (EIS) measurements of (water-soluble) poly-HEMA coatings electrografted onto TiN showing that the coatings are swollen by water. EIS spectra are interpreted using a simple model consisting of a double-layer capacitance in parallel with the polarization resistance in addition to the electrical resistance. This model can be represented by the equivalent electrical circuit shown in Figure 7, where Rs is the electrolyte resistance and Rp is the polarization resistance of the sample in the electrolyte. Q is a constant phase element, which is used in place of capacitance to account for non-ideal capacitive responses resulting from diffusion phenomena near the electrodes (see, e.g., C. Gabrielli, Technical Report. Intro Elect. Imp. Tech. CSB / AO1 (1990), Edt. Schlumberger Technologies Instrument Division, Farnborough, Hampshire, England).

[0183] Both the constant phase element and the polarization resistance characteristics give an indication of the extent to which diffusion, and hence ionic conduction, is modified near the surface when the surface is coated with an electrografted HEMA layer. We found it more expedient to pursue this quest by assessing the extent to which the polarization resistance is modified by grafting.

[0184] Typical spectra giving the modulus (Z) and phase angle versus sampling frequency are shown in Figures 8 and 9. Figure 8 shows a comparison of the impedance modulus of a bare TiN specimen with that of a specimen coated with a layer of HEMA / 4-nitrophenyldiazonium tetrafluoroborate, and of the same coated specimen after drying under vacuum at 30°C for 24 hours. The horizontal axis is frequency (Hertz) and the vertical axis is modules (Ohm.cm2). Figure 9 shows a comparison of the phase angle of a bare TiN coupon with that of a coupon coated with a layer of HEMA / 4-nitrophenyldiazonium tetrafluoroborate, and the phase angle of the same coated coupon after drying under vacuum at 30°C for 24 hours. The horizontal axis is frequency (Hertz) and the vertical axis is phase angle (degrees).

[0185] These clearly demonstrate the fact that coating the TiN surface with a HEMA / 4-nitrophenyldiazonium tetrafluoroborate polymer layer has only a small effect on the overall impedance of the electrode. The same spectra were recorded after the coated electrode was dried at 30°C under a vacuum of 700 mbar for 24 hours; Figures 8 and 9 show that the impedance remains comparable, providing evidence that the swelling of the HEMA / 4-nitrophenyldiazonium tetrafluoroborate coating on the electrode is reversible.

[0186] To quantify this comparison, we extracted the electrical parameters in Figure 8 by performing a mathematical nonlinear least-squares adjustment of the experimental data in Figure 9. Typical results of the spectral adjustment are shown in Table 6.

[0187] [Table 6]

[0188] The percentage variation of polarization resistance is

number

[0189] After coating the TiN electrode by electrografting with a HEMA / 4-nitrophenyldiazonium tetrafluoroborate film according to the present invention, the low polarization resistance is only slightly different from that of the bare TiN specimen. This observation indicates that the polymer is not an electrical insulator, i.e., it is permeable to ions and therefore completely swells with the electrolyte.

[0190] Although completely swollen by the electrolyte, the HEMA / 4-nitrophenyldiazonium tetrafluoroborate coating is insoluble in water, which is well-indicated to be due to the strong grafting of the coating onto the TiN surface.

[0191] Example 21 The grafted polymer layer can be used as an adhesion primer for much thicker layers sprayed on top of it. Electropolished dogbone-shaped 316L stainless steel coupons measuring 7 x 1 cm x 1 mm are homogeneously coated with a poly-BUMA electrografted layer by the procedure described in Example 1. The specific film thickness is 150 nm.

[0192] The central (narrow) part of the specimen is spray coated on one side with 5 μm of PLA (polylactide acid). This is achieved by covering the two wide ends of the dog-bone specimen and spraying a solution of PLA in chloroform (3% w / w). The specimen is dried under vacuum until it reaches a constant weight. Four dots are written on the PLA layer with an ink pen.

[0193] The specimen was then placed in an INSTRON (5 kN capacity, ε' = 10 -3 s -1 ) machine and pull apart at both ends. The deformation of a point on the surface is recorded with a video camera and it is verified that the deformation speed of the point is equal to the speed imposed by the INSTRON machine. If it is not, this means that some delamination has occurred in the sandwich layers.

[0194] Figure 10 shows and compares the corrected strain / stress response of coupons with and without a poly-BUMA electrografted underlayer in the INSTRON machine. The black curves are equivalent for all tests, with and without an electrografted underlayer, and show the elastic, inelastic, and fracture behavior of the metal coupon itself, which is largely unaffected by the 5 μm coating overall.

[0195] The numbered points on the curve indicate the information provided by the camera during the test, and more particularly, when the camera detected the onset of delamination.

[0196] The results of the tests showed that in the absence of an electrografted underlayer, the PLA layer delaminates at low stresses and strains on 316 L stainless steel (points #15 and #18 in Figure 10), whereas when an electrografted layer of BUMA is used as the underlayer, the sandwich structure never delaminates until metal fracture (points #11, #12, #13, #14, #16, and #17 in Figure 17-2).

[0197] This demonstrates the significant improvement achieved by the electrografted layer of the present invention, even though the layer is very thin compared to the overlying 5 μm layer. [Brief explanation of the drawings]

[0198] [Figure 1] Initial (black line) and final (dashed line) cyclic voltammograms of the solution demonstrating film formation. [Figure 2] The relationship between the increase in thickness of the coating obtained on a stainless steel coupon from MMA and 4-nitrobenzenediazonium tetrafluoroborate in the presence of pentaerythritol tetraacrylate and the number of electrochemical cycles is shown. The horizontal axis is the number of cycles, and the vertical axis is the thickness of the coating (Å). [Figure 3] The relationship between the thickness of the p-BUMA coating on 316L and the cathodic final potential is shown (DNO2 concentration is 10-2 mol / L). [Figure 4] The relationship between the thickness of the p-BUMA coating on 316L and the cathodic final potential is shown (DNO2 concentration is 10-3 mol / L). [Figure 5] The relationship between (C=O) / (NO2)(IR) and the final cathode potential is shown. The DNO2 concentration is 10-2 mol / L. [Figure 6] The relationship between (C=O) / (NO2)(IR) and the final cathode potential is shown. The DNO2 concentration is 10-3 mol / L. [Figure 7] The equivalent electrical circuit is shown. [Figure 8]A comparison of the impedance modulus of a bare TiN specimen with that of a specimen coated with a layer of HEMA / 4-nitrophenyldiazonium tetrafluoroborate and of the same coated specimen after drying under vacuum at 30°C for 24 hours is shown. The horizontal axis is frequency (Hertz) and the vertical axis is modules (Ohm.cm2). [Figure 9] A comparison is shown of the phase angle of a bare TiN coupon with that of a coupon coated with a layer of HEMA / 4-nitrophenyldiazonium tetrafluoroborate, and of the same coated coupon after drying under vacuum at 30°C for 24 hours. The horizontal axis represents frequency (Hertz) and the vertical axis represents phase angle (degrees). [Figure 10] Figure 1 shows the corrected strain / stress response of the specimen in the INSTRON machine, with and without the poly-BUMA electrografted sublayer. The horizontal axis is true deformation, and the horizontal axis is true strain / stress (MPa).

Claims

1. a conductive or semi-conductive surface or portion of a surface; an organic coating that allows ionic propagation, said organic coating being electrografted to said surface or a portion thereof, said surface or a portion thereof comprising: (i) at least one aryl diazonium salt at a concentration of 10 −2 mol / L to 10 −3 mol / L; (ii) at least one monomer having at least one chain polymerizable functional group at a concentration of 0.1 to 5 mol / L; (iii) glycerol at a concentration of 0.01 to 1 mol / L; (iv) a mixture of an organic solvent and water; an organic coating obtained by electrografting by electroreduction of a solution containing A biocompatible object comprising: the at least one aryl diazonium salt and the at least one monomer are precursors of the organic coating; the electrically grafted organic coating is selected from a polymer of methyl methacrylate, a polymer of ethyl methacrylate, a polymer of propyl methacrylate, a polymer of butyl methacrylate, a polymer of dodecyl methacrylate, a polymer of hydroxyethyl methacrylate, a polymer of hydroxypropyl methacrylate, a polymer of 2-methacryloyloxyethyl phosphorylcholine, a polymer of cyanoacrylate, a polymer of acrylic acid, a polymer of methacrylic acid, a polymer of isoprene, a polymer of ethylene, a polymer of propylene, a polymer of ethylene oxide, and a polymer of lactide; the electroreduction is carried out by applying a variable potential with a cathodic excursion at a potential more cathodic than the reduction or peak potential of all the diazonium salt in the solution; A biocompatible object, wherein the organic coating has a thickness of 10 nm to 10 μm and is covalently bonded to the surface.

2. 2. The biocompatible object of claim 1, wherein the surface is a surface of stainless steel, cobalt and its alloys, titanium and its alloys, iron, copper, nickel, niobium, aluminum, silver, silicon (doped or not), silicon carbide, titanium nitride, tungsten, tungsten nitride, tantalum, tantalum nitride or platinum-iridium or a precious metal selected from iridium, platinum and gold.

3. 3. The biocompatible object of claim 1, wherein the electrical reduction is carried out by applying at least one procedure consisting of electrically polarizing the surface by applying a variable potential across at least a range of values ​​that are more cathodic than the reduction or peak potential of all aryl diazonium salts in the solution to a conductive or semiconductive surface coated as a working electrode and at least one counter electrode, thereby forming a coating on the surface to which an organic film is grafted.

4. The biocompatible object according to any one of claims 1 to 3, wherein the biocompatible object is a stent.

5. The biocompatible object of any one of claims 1 to 4, wherein the solution comprises a supporting electrolyte.

6. 6. The biocompatible object of claim 5, wherein the supporting electrolyte is selected from the group consisting of quaternary ammonium salts of perchlorate, tosylate, tetrafluoroborate, hexafluorophosphate, quaternary ammonium halides, sodium nitrate, and sodium chloride.

7. 6. The biocompatible object of claim 5, wherein the supporting electrolyte is selected from the group consisting of tetraethylammonium perchlorate (TEAP), tetrabutylammonium perchlorate (TBAP), tetrapropylammonium perchlorate (TPAP), and benzyltrimethylammonium perchlorate (BTMAP).

8. The biocompatible object of any one of claims 1 to 7, further comprising an outer coating.

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