The present invention is in the field of surface functionalization of a surface with nano- or microparticles. In particular, the invention concerns a process for functionalizing a surface of a solid support with nano- or microparticles, polymers comprising polymerized amine-functionalized monomer units, their use to functionalize a solid support with nano- or microparticles, and the resulting nano- or microparticles functionalized polymers comprising polymerized amine-functionalized monomer units.
The properties of nanoparticles and microparticles, such as metal nanoparticles, metal oxide nanoparticles, quantum dots and nanodiamonds, often differ from the corresponding bulk material. For example, metal (e.g., Ag, Au and Cu) nanoparticles can exhibit a strong optical absorption and reflectance in the UV-visible range of the electromagnetic spectrum that is not present in the spectrum of the bulk metal. Metal nanoparticles also exhibit interesting electronic, magnetic and catalytic properties that are not present in the bulk metal. In particular, metallic nanoparticles attract much attention due to their optical properties, mainly their localized surface plasmon resonance LSPR that has a well-established application in sensing by Surface Enhanced Raman Spectroscopy (SERS).
Hence, nanostructured metal surfaces, and more generally nanostructured surfaces, with their unique properties and enhanced surface area, offer exciting opportunities for the development of novel sensors and detectors, catalysts, and absorbing and adsorbing media.
This is even truer with discrete NPs or microparticles precisely organized in multiple dimensions and on continuous length scales. Indeed, this organization leads to the formation of collective properties that differ from those of individual particles, providing great potential to many applications especially in plasmonics, photonics, catalysis, electronics and biotechnology.
Patterning of these NPs is thus highly desirable but challenging. Considerable efforts have been put forth to obtain precise and controllable 1D, 2D and 3D positioning of NPs on a substrate surface.
This positioning depends on a variety of alternative methods of top-down and bottom-up techniques including confined space-mediated fluid drying and capillary assembly of nanoparticles onto topographical traps strategies to form NP linear assemblies. This technique requires a complex sandwich-shaped patterning system, which needs many physical parameters to be adjusted in order to manipulate the microfluid morphology just along the arc of the microfluid path.
Also, convective assisted capillary force assembly method (CA-CFA) was proposed to obtain 3D superstructures. Focused electron beam irradiation has also been used for the immobilization of two-dimensional arrangement of gold nanoparticles (GNPs) that are attached on substrates by chemical methods. However, these chemical methods make it difficult to eliminate the unfixed NPs and thus random positioning on the substrate surface will occur.
To improve the assembly of NPs into 3D architectures, microfluid engineering has been developed.
However, the above-mentioned methods lack of versatility. They are indeed not universal, and are generally not suitable to obtain NPs or microparticles assembly within complex 1D, 2D, and 3D micro- or nanostructures.
Therefore, the development of a new general method involving possibly complex 1D, 2D, and 3D arrangement that overcomes the above-mentioned drawbacks is strongly needed.
Accordingly, it is an object of the present invention to provide a process that enables highly selective arrangement of NPs and microparticles of different sizes and nature within 1D, 2D, and complex 3D microstructures, in particular in the form of monolayers, while avoiding the aggregations and unclean substrate surfaces.
Inventors have for the first time demonstrated that polymers comprising polymerized amine-functionalized monomer units, in particular by radiation induced (or activated) polymerization, more particularly by photochemical or electron beam-induced (or activated) polymerization, or thermally induced (or activated) polymerization, enable the easy and precise positioning of NPs and microparticles on 1D, 2D, and 3D microstructures, in particular complex microstructures.
Thus, in one aspect, the present invention relates to a process for functionalizing a surface of a solid support with nano- or microparticles, said process comprising the stages of:
i) Reacting at least one monomer with at least one amine, to obtain an amine-functionalized monomer,
said at least one monomer being a mono, bi-, tri- or tetrafunctional monomer wherein said functions are chosen from acrylate, methacrylate, epoxy and vinyl groups, said vinyl groups not being acrylate or methacrylate groups, at least one of said functions being an acrylate, methacrylate or epoxy group,
said at least one amine being chosen from:
ii) bringing at least said surface into contact with a composition consisting of or comprising:
iii) polymerization of the composition of step ii) in contact with the surface to functionalize, to obtain a surface coated with an amine-functionalized polymer; and
iv) contacting at least the surface coated with an amine-functionalized polymer obtained in step iii) with nano- or microparticles functionalized with negatively charged ligands, at a pH equal or less than (pKa of the amine, in particular of formula (I), +1), to obtain a solid support with a surface functionalized with nano- or microparticles.
When the pKa of the amine is for example of 10.0, by “pKa of the amine+1” is meant the value of 11.0.
By “negatively charged ligands” is preferably meant ligands bearing at least one negative charge.
Hence, said pH is such as said ligands are negatively charged, and preferably such as said nano- or microparticles functionalized with said ligands are stable.
In a particular embodiment, the contacting of step iv) is a contacting between at least the surface coated with an amine-functionalized polymer obtained in step iii) with a suspension of nano- or microparticles functionalized with negatively charged ligands, at a pH equal or less than (pKa of the amine, in particular of formula (I), +1).
Hence, said pH is such as said ligands are negatively charged, and preferably such as said nano- or microparticles functionalized with said ligands do not aggregate.
The determination of a pH for which nano- or microparticles do not aggregate can be down by methods well known from those skilled in the art, for example by dynamic light scattering.
In a particular embodiment, the nano- or microparticles are functionalized with ligands bearing at least one carboxylic acid group, at a pH ranging from (pKa of said ligand −1), or if more than one, the lowest pKa of said ligand −1, to (pKa of the amine, in particular of formula (I), +1).
In another particular embodiment, the nano- or microparticles are functionalized with ligands bearing at least one sulfate group.
In a particular embodiment, the nano- or microparticles have a size ranging from 1 nm to 100 μm, in particular from 1 nm to 10 μm, more particularly from 1 nm to 1 μm.
In a particular embodiment, the nano- or microparticles are constituted of or comprise a material chosen from metals, in particular gold, silver, platinum or aluminum metal oxides, in particular iron oxides and graphene oxide, diamonds, polymers, in particular polystyrenes, and semiconductors, in particular quantum dots.
In a particular embodiment, the solid support, in particular a flexible solid support, is chosen from the group consisting of conducting, semiconducting or insulating materials, in particular among metals, metal oxides, polymers, glasses, silicon, papers and carbon materials.
In a particular embodiment, the solid support is chosen materials that do not substantially bear at their surface chemical groups that are protonable at the pH defined above, in particular amines.
In a particular embodiment, the at least one monomer is:
In a particular embodiment, the at least one monomer is:
In a more particular embodiment, the at least one monomer is chosen from pentaerythriol triacrylate, trimethylolpropane triacrylate, pentaerythritol tetraacrylate, di(trimethylolpropane) tetraacrylate, triethylene glycol dimethacrylate, 1,6-hexanediol diacrylate (HDODA), aromatic urethane triacrylate, for example EBECRYL® 204, bisphenol A epoxy diacrylate, for example Ebecryl® 3708 or EBECRYL® 605, bisphenol A diglycidyl ether.
In a particular embodiment, step i) alternatively consists in the use of a commercially available amine modified monomer being a mono, bi-, tri- or tetrafunctional monomer wherein said functions are chosen from acrylate, methacrylate, epoxy and vinyl groups, said vinyl groups not being acrylate or methacrylate groups, at least one of said functions being an acrylate, methacrylate or epoxy group.
In a more particular embodiment, step i) consists in the use of an amine modified multifunctional acrylated polyethers, preferably commercially available, for example EBECRYL® 80.
In a particular embodiment, the at least one amine is of formula (I) as defined above.
In a more particular embodiment, the at least one amine of formula (I) is such as at least one of R1, R2 and R3 is different from H.
In another more particular embodiment, the at least one amine of formula (I) is such as R1, R2 and R3 are each independently chosen from C1-C8 linear or branched alkyl groups, at least one of these groups, in particular two of these groups, being substituted by one —OH group.
In another more particular embodiment, the at least one amine of formula (I) is such as R1, R2 and R3 are each independently chosen from C1-C8 linear or branched alkyl groups being substituted by one —OH group.
In another more particular embodiment, the at least one amine of formula (I) is such as R1 is H, R2 and R3 are each independently chosen from C1-C8 linear or branched alkyl groups, at least one of these groups, in particular both of these groups, being optionally substituted by one —OH group.
In another more particular embodiment, the at least one amine of formula (I) is such as R1 and R2 are H, and R3 is chosen from C1-C8 linear or branched alkyl groups optionally substituted by one —OH group.
In another more particular embodiment, the at least one amine of formula (I) is ammonia (NH3).
In a particular embodiment, the at least one amine of formula (I) is chosen from methyl diethanolamine, ethyldiethanolamine, 2-amino-2-méthyl-1-propanol, diethanolamine, diethyl amine, n-propylamine, n-butylamine, n-pentylamine, methanol amine, ethanolamine, n-propanol amine, n-butanol amine, n-pentanol amine, diethyl amine, dipropyl amine, dibutyl amine, dipentyl amine, dimethnaol amine, diethanol amine, dipropanol amine, dibutanol amine, dipentanol amine, triethanolamine, and their derivatives.
In another particular embodiment, the at least one amine is hexamethylenetetramine.
The temperature of the reaction of step i) may be chosen from those skilled in the art, depending on the miscibility of the amine in the monomer, the reactivity of the amine and the viscosity of the monomer. For example, for some amines, it may not be necessary to heat, in particular because the reaction may be too fast and the mixture may become solid.
In addition, the one skilled in the art may select the reaction temperature (and, accordingly, the reaction duration) in order to not degrade the amine and/or the monomer.
In a particular embodiment, the reaction of step i) is performed at a temperature ranging from 20 to 70° C. and/or for 1 second to 2 weeks, in particular from 1 second to 1 hour.
In a particular embodiment, the ratio of the at least one amine over the at least one monomer is from 0.5 to 50 wt %, in particular from 0.5 to 40 wt %, more particularly from 0.5 to 30 wt %, for example of about 10 wt %.
In another particular embodiment, the molar ratio of the at least one amine over the total number of functions of the monomer is below 1, in particular above 0.005 and below 1.
In a particular embodiment, the composition is brought into contact with the surface during step ii) by dipping, spincoating, sprinkling, projection, transfer, in particular with a syringe, drawdown application coating or spraying.
In a particular embodiment, the polymerization mentioned in step ii) and iii) is a radiation induced polymerization, more particularly a photochemical polymerization (photopolymerization) or an electron beam-induced polymerization, or a thermally induced polymerization.
In a particular embodiment, the polymerization of step ii) is a radical and/or cationic polymerization, in particular a radical and/or cationic photopolymerization.
Polymerization initiators are well known from those skilled in the art, in particular chosen from radiation induced polymerization initiators, more particularly photopolymerization initiators, or thermal polymerization initiators.
In a particular embodiment, the photopolymerization initiator is selected from radical polymerization initiators chosen from benzoin ketals, hydroxyketones, amino ketones, thioxanthones, acylphosphine oxides, and any combinations thereof, and/or from cationic polymerization initiators chosen from aromatic diazonium salts, aromatic sulfonium salts, aromatic iodonium salts, alkyl sulfonium salts, (6-cumene)(5-cyclopentadienyl)iron hexafluorophosphate, titanocenes, sulfonyloxy ketones and triaryl-siloxyethers, and any combinations thereof, wherein the alkyl group has 1 to 30 carbon atoms, and the aryl group has 7 to 30 carbon atoms.
In another particular embodiment, the thermal polymerization initiator is selected from azo compounds such as 2,2′-azobis(isobutyronitrile) (AIBN) and organic peroxides such as benzoyl peroxide (BPO).
In a particular embodiment, the polymerization initiator is included in an amount of about 0.01 wt % to about 7.5 wt %, more particularly of about 0.01 wt % to about 2 wt %, based on a total solid amount of the composition.
Polymerization inhibitors are well known from those skilled in the art.
In a particular embodiment, the polymerization inhibitor is selected from phenol-based compounds, or a combination thereof.
In a particular embodiment, the photopolymerization is a two photon polymerization or a one photon polymerization.
In a particular embodiment, the radiation induced polymerization is performed using a source chosen from pulsed or continuous laser, visible and UV laser, UV-Visible lamp or LED, electron and ion beam.
It has been found that the functionalization by the NPs or the microparticles does generally not depend on the thickness of the coating of the amine-functionalized polymer, providing said coating exists.
In a particular embodiment, the thickness of the coating of the amine-functionalized polymer is of 1 nm or more.
The upper thickness limit may for example be defined by the viscosity of the formulation and the possibility of light curing in the depth of the coating. The upper thickness limit may be of about 1 μm, 10 μm, 100 μm, or 1 mm.
In a particular embodiment, the contacting of step iv) is performed at a pH such as:
In a particular embodiment, the contacting of step iv) is performed at a pH such as:
In a particular embodiment, the nano- or microparticles are constituted of or comprise a material chosen from metals, in particular gold, silver, platinum or aluminum, metal oxides, in particular iron oxides and graphene oxide, diamonds, polymers, in particular polystyrenes, and the contacting of step iv) is performed at a pH such as:
In a particular embodiment, the nano- or microparticles are constituted of or comprise a material chosen from semiconductors, being in particular quantum dots, and the contacting of step iv) is performed at a pH such as:
The functionalized nano- or microparticles of step iv) are commercially available or obtainable with procedures well known from the skilled person in the art.
For example:
In addition, nanodiamonds functionalized with carboxylate ligands can be purchased from Sigma Aldrich (70 nm, fluorescent nanodiamond), and polystyrene nanoparticles functionalized with carboxylate ligands from ThermoFisher Scientific.
In a particular embodiment, the functionalized nano- or microparticles of step iv) are in the form of a colloidal suspension, in particular in the form of a colloidal suspension in water or in the form of a colloidal suspension in an aqueous solution.
In a particular embodiment, the ligands bearing at least one carboxylic acid group have a pKa comprised from 3.0 and 5.0, and are more particularly:
In a particular embodiment, the process additionally comprises stages iii1) and iii2), subsequent to stage iii) of:
In a particular embodiment, the process additionally comprises stages iv1) and iv2), subsequent to stage iv) of:
In another aspect, the present invention relates to a nano- or microparticles functionalized polymer comprising polymerized amine-functionalized monomer units, said monomer units being mono, bi-, tri- or tetrafunctional monomer units wherein said functions are chosen from acrylate, methacrylate, epoxy and vinyl groups, said vinyl groups not being acrylate or methacrylate groups, at least one of said functions being an acrylate, methacrylate or epoxy group,
said monomer units being functionalized by at least one amine,
said at least one amine being:
All the embodiments described above for the process of the invention apply here as well, alone or in combination.
In a particular embodiment, said nano- or microparticles are present only on the surface of said polymer comprising polymerized amine-functionalized monomer units.
By “only” is in particularly meant that more than 90%, notably more than 95 or 99% of the total amount of the nano- or microparticles of the polymer are present on the surface of said polymer.
Said nano- or microparticles are thus a accessible and can interact with their environment.
In a particular embodiment, said nano- or microparticles form a layer, in particular a monolayer, on the surface of said polymer.
In a particular embodiment, the nano- or microparticles have a surface density of 10, 50, 100, 200, 300 or 400 of said nano- or microparticles per μm2 of polymer surface, or more, notably for nanoparticles of about 50 nm of diameter.
In another aspect, the present invention relates to a kit with one or more containers containing under an inert atmosphere or noble gas a polymer comprising polymerized amine-functionalized monomer units,
said monomer units being mono, bi-, tri- or tetrafunctional monomer units wherein said functions are chosen from acrylate, methacrylate, epoxy and vinyl groups, said vinyl groups not being acrylate or methacrylate groups, at least one of said functions being an acrylate, methacrylate or epoxy group,
said monomer units being functionalized by at least one amine,
said at least one amine being:
All the embodiments described above for the process of the invention apply here as well, alone or in combination.
In a particular embodiment, said inert atmosphere or noble gases is selected from the group consisting of Helium (He), Neon (Ne), Argon (Ar), Krypton (Kr), Xenon (Xe), Radon (Rn), and their mixtures.
In a particular embodiment, said containers are gas impermeable.
In a particular embodiment, the at least one amine is not methyl diethanolamine.
In another aspect, the present invention relates to the use of a polymer comprising polymerized amine-functionalized monomer units as defined above, or a kit as defined above, to functionalize a solid support with nano- or microparticles.
In another aspect, the present invention relates to the use of a nano- or microparticles functionalized polymer comprising polymerized amine-functionalized monomer units as defined above:
The following terms and expressions contained herein are defined as follows:
As used herein, a range of values in the form “x-y” or “x to y”, or “x through y”, include integers x, y, and the integers therebetween. For example, the phrases “1-6”, or “1 to 6” or “1 through 6” are intended to include the integers 1, 2, 3, 4, 5, and 6. Preferred embodiments include each individual integer in the range, as well as any subcombination of integers. For example, preferred integers for “1-6” can include 1, 2, 3, 4, 5, 6, 1-2, 1-3, 1-4, 1-5, 2-3, 2-4, 2-5, 2-6, etc.
By “nanoparticles” is notably meant particles that are between 1 and 1000 nm, for example between 1 and 500 nm, or between 1 and 100 nm, in at least one of their dimensions, in particular in diameter.
By “microparticles” is notably meant particles that are between 1 and 1000 μm, for example between 1 and 500 μm, or between 1 and 100 μm, in at least one of their dimensions, in particular in diameter.
By “when R1, R2 and R3 are not H” is notably meant “when R1 is not H, and R2 is not H, and R3 is not H”.
All other terms used in the description of the present invention have their meanings as is well known in the art.
73.5% in weight of PETA monomer was functionalized by 15% in weight of methyldiethanol amine (MDEA), according to oxa-Michael addition reaction. This reaction is performed at a temperature ranging from 20 to 70° C. and/or for 1 second to 1 hour, for example at a temperature 40° C. and for 15 minutes.
1.5% of Irg-819 photoinitiator and 10% of MEHQ inhibitor were added to the amine-functionalized monomer as described above in order to initiate the polymerization process. One drop from the prepared mixture was deposited on a glass substrate (22×22 mm) to write the desired microstructure by two-photon polymerization (TPP or 2PP) using Nanoscribe.
The photopolymerization process was performed by Nanoscribe Photonic Professional system with a femtosecond laser at λ=780 nm focused by a 100×/1.3 NA oil immersion objective.
After the accomplishing of the photo-polymerization process, lift-off was done in acetone and isopropanol in order to remove the un-polymerized materials.
Functionalization with Gold Nanoparticles (GNP)
A colloidal suspension of citrate capped GNP (of about 40-50 nm of diameter) was prepared by the Turkevish's procedure as described by Frens et al. (Nature, vol. 241, no. 105, p. 20, 1973).
The amine-functionalized polymer obtained in the previous step was immersed for about 5 hours in said GNPs solution at a pH of 3.8.
The scanning electron microscopy (SEM) images in
Similar attachment of NP were obtained when the PETA monomer was functionalized with diethanol amine (DEA), ethanolamine (EA) or diethyl amine, in the conditions described above.
A uniqueness of the process of the invention is the ability to assemble NPs on multiple dimensions and on continuous length scales, notably through direct laser writing by TPL, which allows writing any 1D, 2D and 3D structure by introducing the numerical script of the desired design in the software (Passinger et al. Adv. Mater. 2007, 19, 1218; Klein et al. Adv. Mater. 2010, 22, 868). As seen in
Besides the ability of multiple dimension fabrications, also by direct laser writing it is possible to control the gap size of the 3D microstructures, and thus the fabrication of different woodpiles of different periods (
Besides the GNPs immobilization, commercial PS nanoparticles spheres, stabilized by carboxylate ligands, of an average diameter≈800 nm were successfully assembled following a procedure similar to the one of example 1, showing the capability of the process of the invention to assemble NPs that have large diameters.
Citrated silver nanoparticles (AgNPs) of an average diameter of 30-45 nm were successfully attached on the polymer structures and their extinction spectrum shows a plasmonic peak on the planar polymer template at 416 nm.
Quantum dots (Qds), both commercial and homemade, were successfully attached on functionalized polymer.
The commercial QDs are PEG-COOH coated CdSe/ZnS red Qds with emission peak at 620±10 nm, were purchased from Mesolight.
CdSe/CdS/ZnS red Qds and CdSe/ZnS green Qds stabilized by oleic acid and TOP ligands were synthesized with emission peaks at 623 and 523±10 nm respectively following J. Kwak et al. (Nano Lett., vol. 12, no. 5, pp. 2362-2366, 2012).
For the synthesized Qds, a ligand exchange was performed by mercaptopropanoic acid (MPA) according to Dubois et al. (J. Am. Chem. Soc. 2007, 129, 3, 482-483), in order to attach them on the functionalized polymer.
The obtained material displays emission at 605 nm or 625 nm.
Raman spectra of trans-1,2-bis-(4-pyridyl)-ethylene molecule (BPE) of 10−1 M was performed on glass substrate, and the SERS measurement of BPE of 10−5 M were performed on 2D (flat square microstructures) and 3D (woodpile of period 1.5 μm according to example 2) assemblies of GNPs. The SERS signals show an analytical enhancement factor (AEF) of the ring vibration peak at 1195 cm−1 on 3D substrate 9.4 times stronger than on 2D substrate.
Unless mentioned otherwise, the used protocol was similar to the one described in example 1.
Tetrafunctional pentaerythritol tetraacrylate (PETRA) and di(trimethylolpropane tetraacrylate (DiTMPTA) monomers were functionalized by 10% in weight of methyldiethanol amine (MDEA), according to oxa-Michael addition reaction.
1% of ITX photoinitiator and 10% of inhibitor were added to the amine-functionalized monomers as described above in order to initiate the two photon polymerization process and then yield the two corresponding amine-functionalized polymers
Functionalization with Gold Nanoparticles (GNP)
The amine-functionalized polymers obtained in the previous step were functionalized with GNP accordingly to the invention.
The scanning electron microscopy (SEM) images show clearly the selective and high attachment of the GNPs on the above-mentioned functionalized polymers by MDEA.
Unless mentioned otherwise, the used protocol was similar to the one described in example 1.
PETA monomer was functionalized by 10% in weight of a tertiary amine, triethanol amine or N-ethyldiethanol amine, according to oxa-Michael addition reaction.
1% of ITX photoinitiator and 10% of MEHQ inhibitor were added to the amine-functionalized monomers as described above in order to initiate the two photon polymerization process and then yield the two corresponding amine-functionalized polymers.
Functionalization with Gold Nanoparticles (GNP)
The amine-functionalized polymers obtained in the previous step were functionalized with GNP accordingly to the invention.
The scanning electron microscopy (SEM) images show clearly the selective and high attachment of the GNPs on the above-mentioned functionalized polymers by triethanol amine and N-ethyldiethanol amine.
Unless mentioned otherwise, the used protocol was similar to the one described in example 1.
PETA monomer was functionalized by 10% in weight of ammonia, according to oxa-Michael addition reaction.
1% of ITX photoinitiator and 10% of MEHQ inhibitor were added to the amine-functionalized monomers as described above in order to initiate the two photon polymerization process and then yield the corresponding amine-functionalized polymer.
Functionalization with Sold Nanoparticles (GNP)
The amine-functionalized polymer obtained in the previous step was functionalized with GNP accordingly to the invention.
The scanning electron microscopy (SEM) images show clearly the selective and high attachment of the GNPs on the above-mentioned functionalized polymer by ammonia.
It has been shown that the gold nanoparticles immobilized on a 2D or 3D polymer layer of the invention can be used for the detection of organic molecules that adsorb to the surface of these nanoparticles.
The detection was performed by Raman micro-spectrometry using the SERS effect.
The signal 1 in
It is clear from these results that a very significant amplification of the signal was obtained in the presence of the gold nanoparticles immobilized on the polymer surface according to the invention.
On the contrary, the nanoparticles of a nanocomposite (NPs containing polymer obtained by mixing said NPs with the corresponding monomer prior to polymerization) are not on the surface of said nanocomposite, and thus not accessible. In consequence, no signal from the target molecule will be obtained for these NPs containing polymers.
Number | Date | Country | Kind |
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20305427.5 | May 2020 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/061622 | 5/4/2021 | WO |