Method of producing fabric having hydro- and oleophobic characteristics
Patent Information
- Application Number
- JP2025042488
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-09
- Filing Date
- 2025-03-17
- Publication Date
- 2025-10-22
AI Technical Summary
Existing methods for producing water- and oil-repellent textiles often rely on perfluoroalkyl and polyfluoroalkyl compounds (PFAS), which are environmentally persistent and pose health risks, necessitating a shift to halogen-free alternatives that provide comparable repellency.
A method involving plasma-enhanced chemical vapor deposition (PECVD) of halogen-free precursor monomers, such as organosilanes and siloxanes, on fabrics with specific geometry to achieve water- and oil-repellent coatings, enhanced by additional steps like DLC and APL to improve adhesion and durability.
The method produces textiles with excellent water and oil repellency, adhering to environmental safety standards, maintaining air permeability, and durability through thin coatings that withstand multiple wash cycles.
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Figure 2025160115000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for producing a water- and oil-repellent textile with a halogen-free plasma coating, in particular one that is free of perfluoroalkyl and polyfluoroalkyl compounds (PFAS) and conforms to the IEC 62321-3-2:2020, EN 14582:2016 and / or ASTM D7359:2018 standards. These properties can be evaluated in terms of water, diiodomethane and hexadecane contact angles according to DIN 55660-2:2011-12 and oil grade according to DIN EN ISO 14419:2010.
[0002] Furthermore, the present invention also relates to a water- and oil-repellent fabric having formed thereon a halogen-free, in particular perfluoroalkyl and polyfluoroalkyl compounds (PFAS)-free plasma coating in accordance with IEC 62321-3-2:2020, EN 14582:2016 and / or ASTM D7359:2018 standards. [Background technology]
[0003] Anthropogenic organic compounds, such as perfluoroalkyl and polyfluoroalkyl compounds, are substances of very high concern (SVHCs) and represent a broad group of substances used in various industries. Literature has documented the use of these compounds as process additives and surfactants since the 1940s. These compounds possess special properties, such as flame retardancy, oil resistance, stain resistance, and water repellency, and have been used in the production of nonstick cookware, specialty clothing and textiles, stain repellents, metal plating, and firefighting foam. They are classified into two groups of PFAS: perfluoroalkyl sulfonates (PFSAs) and perfluorocarboxylic acids (PFCAs). While not naturally occurring in the environment, PFASs, including these synthetic substances and their associated salts, have already been detected at varying concentrations in various types of aquatic environments. This is not entirely surprising, as certain PFASs are highly persistent and bioaccumulative.
[0004] PFASs are increasingly being detected as environmental pollutants, and some have been associated with adverse human health effects. Furthermore, the strength of the C-F bond makes them resistant to degradation once generated. Furthermore, most PFASs have also been documented to disperse widely into the environment, far from their release source. C8-based PFASs are already listed as restricted substances in the EU, and perfluorooctanesulfonic acid (PFOS) was classified as a persistent organic pollutant (POP) in 2009.
[0005] Since 2015, some countries have even banned the production of products containing PFOS and large amounts of PFOA. Even the use of C6 fluorocarbons (FCs) causes global environmental pollution because they contain large amounts of PFAS and trace amounts of perfluorooctanoic acid (PFOA) along with their salts. This has raised concerns about the persistence and potential bioaccumulation of these substances. As a result, the REACH Regulation (EU / 784 / 2020), which came into effect on December 3, 2020, limited the PFOA threshold to less than 25 ppb (parts per billion).
[0006] This has led to a shift from long-chain FCs (C8, C6) to ultra-short-chain C3-C1 fluorocarbons such as per- and polyfluoroalkyl compounds (PFAS). While these compounds in principle offer water- and oil-repellency, it has been found that these short-chain monomers and polymers still contain significant amounts of fluorine to achieve comparable water- and oil-repellency compared to long-chain FCs. While the long-term human and environmental effects of PFAS-containing materials are not fully understood, health risks still exist with short-chain-based coatings.
[0007] Unless necessary measures are taken to limit these highly persistent compounds, people, plants, and animals could be increasingly at risk. If no measures are taken, it is estimated that there will be approximately 4.4 million tonnes of PFAS in the environment over the next 30 years.
[0008] A new regulatory procedure was therefore initiated, with each authority preparing a proposed regulation and submitting it to ECHA in January 2023. The goal of this regulation is to reduce the release of PFAS into the environment and make products and processes safer for people. This innovative proposal covers all PFAS categories, rather than focusing on specific chemicals as in the past. The proposed regulation dossier (REACH Annex XV) specifically identified the TULAC (textiles, upholstery, leather, clothing, and carpets) sector as a key application area. The proposal imposes limits of 25 ppb for any PFAS, 250 ppb for the sum of PFASs, and 50 ppm for polymeric PFASs calculated as total fluorine.
[0009] While restrictions are moving forward and their implementation may be quicker, the demand for water- and oil-repellent coatings that do not contain PFASs is rapidly increasing. Silicon-based coatings, primarily containing silanes and siloxanes, are considered safer alternatives. Chemically, organosilicon compounds consist of silicon atoms bonded to organic hydrocarbon groups and include organosilanes (e.g., trimethylsilane) and siloxanes (e.g., hexamethyldisiloxane, tetramethylsilane). Plasma-deposited silicon-based films have been reported to be of interest for semiconductor manufacturing and also for flexible solar cells.
[0010] EP 3101170 A1 teaches the production of durable fluorine-free plasma nanocoatings on textile substrates by low-pressure plasma polymerization. The coating should provide an appropriate level of water repellency, or water repellency, for certain textile products. For durability, the coating applied to the textile substrate should be able to withstand repeated laundering, providing an appropriate level of water repellency after a reasonable number of washing cycles.
[0011] WO 2022 / 171581 discloses a hollow cathode plasma polymerization process applied to textile substrates to obtain durable halogen-free, especially fluorine-free, water-repellent polymer coatings.
[0012] However, for textiles, plasma polymerized organosilicon films have been deposited to ensure dielectric properties, thermal stability, scratch resistance, and to control wettability or water repellency, but oil repellency has not been reported to date.
[0013] Siloxanes are widely used in plasma processes as precursor monomers to obtain fluorine-free plasma coatings. Plasma polymers derived from such precursors exhibit excellent mechanical properties, such as low internal stress, good adhesion, and excellent water-repellent barrier performance. For example, the water resistance provided by plasma coatings of TMDSO is promising, but as disclosed in EP 4177050, it does not provide oil-repellent properties. Therefore, the general trend is to obtain coatings with good water- and oil-repellent properties due to PFAS restrictions. Furthermore, there is a further demand for next-generation superwater- and oil-repellent coatings with a high degree of water- and oil-repellent properties. Summary of the Invention [Problem to be solved by the invention]
[0014] It is therefore an object of the present invention to provide a method for producing a fabric having a water- and oil-repellent, halogen-free, particularly perfluoroalkyl and polyfluoroalkyl compound (PFAS)-free plasma coating, as well as a fabric having a water- and oil-repellent, halogen-free, particularly perfluoroalkyl and polyfluoroalkyl compound (PFAS)-free plasma coating formed thereon. [Means for solving the problem]
[0015] According to the invention, this object is achieved on the one hand by a method having the features of claim 1 and on the other hand by a fabric, for example by a fabric having the features of claim 14. Preferred embodiments of the invention are set out in the respective dependent claims.
[0016] According to the method of the present invention, in step DHF, a plasma coating is deposited on the fabric by plasma polymerization of halogen-free precursor monomers by plasma-enhanced chemical vapor deposition (PECVD). The halogen-free precursor monomers are organosilanes, siloxanes, and / or hydrocarbon precursors. Furthermore, the plasma-enhanced chemical vapor deposition is carried out as a low-pressure plasma process under a protective atmosphere. The fabric comprises a monofilament woven fabric of polymeric material having a filament diameter of 10 μm to 150 μm and a mesh opening of 5 μm to 200 μm.
[0017] The fundamental idea of this invention is to identify the influence of fabric geometry on achieving a textile surface with good oil repellency. The structure and composition of a fiber or textile depend on many factors, including the weave, fiber content type, fiber fineness, and mesh size (i.e., the number of threads per cm). Compared to flat surfaces (e.g., films, polymer solids), textiles actually have a complex structure consisting of two surfaces, one of which is the macroscopic surface visible to the naked eye. It has been found that the degree of oil repellency is closely related to the structure and weave composition of textiles. Thus, in addition to plasma process parameters and coating properties, capillary action is strongly influenced by mesh geometry, particularly the mesh opening (the spacing between two adjacent filaments) and the diameter of the yarns (filaments). Fabrics can contain regular openings in square or rectangular shapes. Surprisingly, in accordance with the present invention, it has been discovered that fabrics comprising woven monofilament polymeric materials having filament diameters of 10 μm to 150 μm and mesh openings of 5 μm to 200 μm also provide oil repellency with only plasma deposited coatings based on organosilanes, siloxanes and / or hydrocarbon precursors that are thought to provide only water repellency.
[0018] Organosilicon films plasma processed in step DHF offer complex plasma-phase chemistry and tunability of film composition. In fact, depending on the number of organic moieties (CHx), a silicone-like coating can be obtained, which exhibits water-repellent properties when a large number of (CHx) are present in the film, or an inorganic coating like SiO2, which exhibits a hydrophilic surface when an oxidant (e.g., oxygen) is added to the feed gas.
[0019] Liquid precursors that can be used to deposit Si-based coatings include hexamethyldisiloxane (HMDSO), tetramethyldisiloxane (TMDSO), divinyltetramethyldisiloxane (DVTDMSO), and tetramethylsilane (TMS). These monomers have high vapor pressures, are nontoxic, and can be processed at low temperatures. Because these monomers retain -CH groups within the Si-O network, they can be used to deposit water-repellent coatings on fabrics and textiles. Carbon-rich plasma-polymerized TMDSO (pp-TMDSO), produced from pure TMDSO using a PECVD process, exhibits excellent mechanical properties, including low internal stress and good adhesion to substrates.
[0020] On the other hand, organic properties of plasma-polymerized TMDSO can be obtained by hollow cathode plasma polymerization using a TMDSO / N2 / Ar(He) gas mixture. To describe hollow cathode systems, the plasma is generated in a narrow interelectrode gap, usually in a coaxial geometry, and is sprayed outside this area by a gas flow directly onto the substrate: thus, plasma treatment or deposition occurs in downstream mode, as described in WO 2022 / 171581.
[0021] Both types of developed coatings of Step DHF showed excellent water repellency and good oil repellency barrier performance on monofilament fabric, but mesh opening and mesh diameter play an important role in obtaining oil repellency.
[0022] In one embodiment, the method may include an additional step DLC, in which the substrate is coated by sputtering a carbon target by a PVD process using argon plasma and / or a PECVD method using hydrocarbon gas, and the step DLC is performed before the step DHF. In the step DLC, an amorphous hydrogenated diamond-like carbon film is deposited on the substrate.
[0023] Amorphous hydrogenated diamond-like carbon films (aC:H or DLC) exhibit properties such as high hardness, high wear resistance, chemical inertness, oxidation resistance, thermal stability, a high degree of cross-linking, and a low coefficient of friction. Importantly, DLC coatings can be deposited even at low substrate temperatures, including on temperature-sensitive polymeric materials such as monofilament fabrics. DLC coatings, consisting of a highly cross-linked network of carbon and hydrogen atoms, generally have high compressive stress. Such high stress values can reduce adhesion to the substrate, limiting their practical application. Because DLC coatings have high adhesion to the substrate, they can be used as adhesion-promoting layers for DHF coatings.
[0024] Two different methods for depositing DLC coatings are proposed in accordance with the present invention. One is by PECVD, where a negative self-bias voltage is applied to the substrate and a hydrocarbon gas is emitted via RF glow discharge. The second method involves depositing DLC coatings by PVD sputtering. The target used is carbon or pure graphite, and the working gas during the sputtering process is argon.
[0025] The DHF step can be performed in the same reactor after the DLC step, which is particularly advantageous when a PECVD method is used to produce amorphous hydrogenated diamond-like carbon films. Alternatively, the DHF step can be performed in a separate reactor with a time delay between the DLC step and the DHF step.
[0026] The method may also include a step APL of creating an adhesion-promoting layer by plasma polymerization of hydrocarbon gases and / or mixtures of hydrocarbon, reactive and inert gases, where step APL is performed before step DLC or before step DHF if step DLC is not performed.
[0027] In contrast to conventional polymerization, plasma polymerization can be carried out using any type of hydrocarbon gas. Mainly, methane (CH4), ethylene (C2H4), or acetylene (C2H2) are used. The amorphous nature of the resulting adhesion-promoting layer is related to the degree of crosslinking. Regardless of the monomer used, saturated and unsaturated monomers exhibit different deposition rates. As an example, it was found that acetylene-induced plasma polymers appear yellowish due to unsaturated bonds left in the film structure. Methane reduced the deposition rate. To obtain a nitrogenated hydrocarbon adhesion layer, reactive gases such as ammonia were mixed with ethane during the plasma process. Some other examples of reactive gases are N2, CO2, CO, and NO.
[0028] The benefit of the adhesion-promoting treatment to subsequent layers deposited on the fabric, such as in the DHF or DLC step, is that these layers and coatings will have better adhesion and therefore be more durable during use of the fabric.
[0029] The hydrocarbon layer acts as an adhesive bond, enhancing the adhesion of DHF or DLC. Furthermore, the addition of reactive gases to the hydrocarbon plasma incorporates functional groups, increasing the surface energy of the fabric. As a result, this functionalized surface layer acts as a chemical fixative (bonding agent) for subsequent coatings, such as DHF.
[0030] As an alternative to step APL, the method can include performing step APT, which creates an adhesion-promoting surface by using plasma etching, ion beam irradiation and / or UV imprinting, and step APT is performed before step DLC or before step DHF if step DLC is not performed.
[0031] Plasma etching processes can be used to produce patterns in the nanometer to micrometer range. To meet the very stringent requirements for plasma-etching processes, such as etching rate, selectivity, profile control, and surface damage, much research and development has been done on plasma diagnostics and surface analysis, as well as new etching devices. The key parameters of plasma-surface interaction vary for each material depending on the gas mixture and the degree of ion bombardment. In many cases, the dominant parameter is the ratio of neutral flux to ion energy flux.
[0032] In plasma etching (also known as reactive ion etching) of organic polymers such as fabrics, for example, a gas mixture of oxygen and tetrafluoromethane (CF4) is used to create oxyfluoride ions (OF-), which are highly reactive etchants for polymeric materials such as monofilaments, particularly for cleaving carbon-carbon bonds within the polymer backbone. It has been found that the applied pressure and bias voltage determine the etching effect on the surface morphology of the bulk polymer.
[0033] Another ion milling technique is ion beam bombardment, commonly referred to as ion beam milling or ion beam sputtering, which uses a precisely defined, focused ion beam composed of ions, usually from an inert gas such as argon, to remove material from a target surface. Ion beam bombardment differs from reactive ion etching in that it does not rely on chemically reactive gases; it is a completely physical sputtering process. These ion sources produce a dense, collimated ion beam with precisely controlled energy and direction. The ion beam is directed toward the target surface, where the energetic ions collide with surface atoms, sputtering them away. Ion beam etching offers several advantages, including high etch rates, excellent depth control, and the ability to create anisotropic etch profiles. Because the process does not involve chemically reactive species, the etching process is relatively clean and not prone to contamination.
[0034] UV imprinting is also a common method for fabricating nano- and micro-structured surfaces. Additionally or alternatively, prior to coating in DHF and / or DLC steps, a two-step pretreatment of the polymeric substrate can be performed: in the first step, the polymeric substrate is coated with a UV-curable imprinting resin using gravure and / or slot die coating methods, and in the second step, surface patterning is performed using UV imprinting and / or hot embossing methods.
[0035] The resulting etched or irradiated or imprinted surface provides good adhesion to subsequent coatings through mechanical interlocking and also promotes good water and oil roll-off when the modified surface is subsequently coated with step DHF.
[0036] Preferably, in step DHF, the halogen-free water- and oil-repellent coating is deposited on the substrate to a thickness of 30 nm to 300 nm, preferably 50 nm to 150 nm, which has already been shown to be sufficient to provide good oil- and water-repellency.
[0037] Advantageously, in step DLC, the water-repellent carbon coating is deposited on the substrate with a thickness of 5 nm to 200 nm, preferably 10 nm to 80 nm. Even such a thin coating greatly improves the adhesion and chemical resistance of the substrate. Advantageously, in step APL, the adhesion-promoting coating is deposited on the substrate with a thickness of 5 nm to 100 nm, preferably 10 nm to 60 nm, since the adhesion properties of the subsequent coating may already be greatly improved with such a thin layer.
[0038] The advantage of these thin layers is that the open mesh size of the fabric is not significantly affected by these coatings in the above steps, and as a result, the air permeability is barely impaired.
[0039] For fabrics fed via a roll-to-roll system with multiple rollers and / or expanders, plasma treatment can be performed in a plasma chamber. Depending on the electrode configuration, one or both sides of the fabric can be treated. For PECVD, particularly in the DHF, DLC, and / or APL processes, different types of electrodes can be used as plasma sources, such as hollow cathodes, parallel plates, or drums, and can be connected to one or more of alternating current (AC), direct current (DC), pulsed DC, continuous radio frequency (RF), or pulsed RF.
[0040] The degree of crosslinking of plasma polymer films is strongly dependent on the energy input. The power density also depends on the configuration of the plasma device, such as the electrode configuration. For plate or drum electrode configurations, the plasma power during step DHF and step APL is 1 / cm² of the electrode surface. 2 Less than 1 W per cm of electrode surface, preferably 2Less than 500 mW per cm of electrode surface, or more preferably 2 The plasma power density can be less than 200 mW per linear meter. In a hollow cathode electrode configuration, the plasma power density varies from 2.5 kW to 18 kW per linear meter of plasma. In addition to the electrode configuration used, the gas supply concept to the reactor also has a bearing on the preferred plasma power.
[0041] The plasma power during step DLC is 1 cm on the electrode surface for the PECVD process. 2 Less than 1 W per cm of electrode surface, preferably 2 less than 500 mW per cm of electrode surface, more preferably 2 can be less than 200mW / cm for PVD sputtering, and 2000-8000mW / cm for PVD sputtering. 2 is.
[0042] In a preferred embodiment, the fabric has a filament diameter of 10 μm to 100 μm, particularly preferably 19 μm to 50 μm. Alternatively or additionally, the fabric has a mesh opening size (the distance between two adjacent filaments) of 5 μm to 200 μm, particularly preferably 19 μm to 125 μm.
[0043] In particular, it is shown that the filament diameter should not be less than a lower limit, since otherwise the capillary effect increases and the oil repellency deteriorates significantly. Similar effects occur with various mesh sizes. Again, there is a preferred region where the capillary effect is lowest.
[0044] In a preferred embodiment, the fabrics plasma coated in step DHF have water repellency corresponding to a water contact angle of 110°-160° and oil repellency corresponding to a diiodomethane contact angle of 80°-140° and a hexadecane contact angle of 40°-120° according to DIN 55660-2:2011-12 and an oil grade of up to 4 according to DIN EN ISO 14419:2010 (or AATCC 118).
[0045] In a further preferred embodiment, the fabric coated with step DLC is chemically inert, resistant to acids, alkalis and organic solvents, and has water repellency corresponding to a water contact angle of 90° to 140° according to DIN 55660-2:2011-12.
[0046] In addition to the steps described above, the method may further include a step PT of pretreating the fabric with atmospheric or low-pressure plasma using a non-polymer-forming inert and / or reactive gas. Step PT is performed before step DLC or before step DHF if no DLC step is performed. If step APL is used, step PT is preferably also performed before it. Step APT may be performed without a preceding step PT.
[0047] To clean the substrate and improve adhesion with plasma coatings, polymeric substrates can be pretreated prior to the deposition of functional layers in step DHF or DLC by atmospheric and low-pressure plasma techniques using non-polymerizing gases such as argon, helium, nitrogen, oxygen, and tetrafluoromethane gas and / or their gas mixtures. Compared to atmospheric-pressure plasma, low-pressure plasma pretreatment offers several advantages. Gases at low pressure allow the acceleration of free electrons driven by an external source (e.g., an RF generator). As a result, highly reactive and active molecular species, such as chemical radicals, ions, and electrons, can be created through ionization, fragmentation (dissociation), excitation, UV radiation, etching reactions, and so on. These chemical species chemically and physically react with the polymer surface, thus altering the surface properties and morphology of the top layer. Surface activation varies from surface cleaning, radical formation, and atom injection to surface etching, depending on various process parameters, such as energy input. Oxygen-containing gas mixtures (Ar / He with O) have been found to be more efficient for removing organic contaminants by oxidizing the polymer surface and generating plasma decomposition products such as hydrogen, water vapor, carbon dioxide, etc. when compared to pure inert gases (Ar, He, etc.).
[0048] In principle, the above-mentioned steps PT, APL or APT, DLC and DHF can be performed in any desired order, and some steps can be performed more than once. In one preferred embodiment, the steps are performed in the following order: step PT, step APL or APT, optionally step DLC, and step DHF. It has been recognized that exceptional results are obtained when an object to be provided with an oil- and water-repellent coating is treated with the steps in the order specified above.
[0049] Based on the method of the present invention, it is possible to produce water- and oil-repellent textiles on which a halogen-free, in particular perfluoroalkyl and polyfluoroalkyl substance (PFAS)-free plasma coating is formed, in accordance with the standards of IEC 62321-3-2:2020, EN 14582:2016 and / or ASTM D7359:2018, the textile comprising a monofilament woven fabric of polymeric material having a filament diameter of 10 μm to 100 μm and a mesh opening of 5 μm to 200 μm.
[0050] The fabrics can be used, for example, as protective vents in mobile devices or as filters for many applications, such as acoustic vents, ventilation filters, fuel filtration, water separation, clothing, packaging, building and electronic seals / circuit boards, shoes, wound dressings, or face masks. The fabrics of the present invention can also be used in electronic or electrical devices, such as mobile phones, portable media players, hi-fi devices, tablets, laptops, all types of portable devices, and television sets. The fabrics of the present invention can be used in a variety of ventilation applications in medical and healthcare, such as intravenous / transfusion / blood filters, mattresses, pillows, duvets, bedding, ventilation filters (ventilation and / or exhaust) for electrical equipment, surgical masks, surgical gowns, intravenous in-line filter sets, pressure filtration equipment, and particularly medical equipment, room ventilation, and industrial ventilation barrier media.
[0051] The fabric according to the invention is preferably a monofilament woven fabric in which the filaments are made of the same material, although fabrics containing filaments of different materials could be used.
[0052] The fabric may be made of and / or include one or more of the following materials or combinations thereof: polyvinylidene chloride (PVDC), polyhexamethylene adipamide (PA6.6), polydodecanamide (PA12), polypropylene (PP), polycaproamide (PA6), polyethylene terephthalate (PET), ethylene monochlorotrifluoroethylene (E-CTFE), ethylene tetrafluoroethylene (ETFE), polyethylene (PE), polyoxymethylene (POM), polycaprolactone (PCL), polysulfone (PS), chitosan (CH), polyvinyl butyral (PV B), 1-dodecyltrimethylammonium bromide (DTAB), chlorhexidine (CHX), benzyltrimethylammonium bromide (BTAB), polyacrylate, polyethylene (PE), high density PE, fluorinated ethylene propylene (FEP), two-component (PA6 / PA12), polybutylene terephthalate (PBT), polyether ether ketone (PEEK), polyacrylonitrile (acrylic fiber) (PAN), two-component, PET flame retardant (PET / PBT), polyundecaneamide ( PA11), polyphenylene sulfide (PPS), poly-hexamethylene sebacinamide (PA6.10), aramid (AR), polyethylene naphthalate (PEN), polyamide carbon fiber (PA / CF), polyester carbon fiber (PET / CF), polyester staple fiber / metal fiber (PET / MT), carbon fiber (CF), copper (CU), polyimide (P84), copper / silver (CU / AG), polycarbonate (PC), aliphatic polyamide, aromatic polyamide, polyurethane (PU), polyvinyl Alcohol (PVA), polylactide (PLA), polybenzimidazole (PBI), polyethylene oxide (PEO), poly(butylene terephthalate), polyvinyl chloride (PVC), cellulose, cellulose acetate (CA), polypropylene (PP), PVA / silica, PAN / TiO2, PETFE polyetherimide (PEI), polyaniline, poly(ethylene naphthalate), styrene butadiene rubber, polystyrene, poly(vinyl butylene), polymethyl methacrylate (PMMA).
[0053] Plasma Technology Plasma processes, particularly low-temperature plasmas, have been of increasing interest for modifying the surface properties of polymeric materials without altering the bulk characteristics of the substrate. Plasma technology generates radicals, oxidizes surfaces (i.e., water- and oil-repellent surfaces), alters topography, adhesion, repellency, and roughening, enables surface cleaning, and enhances print quality, dye absorption, and coating. In the field of textile finishing, plasma technology offers particular advantages because it is a dry and environmentally friendly process. Furthermore, the vast number of feed gases available for carrying out numerous surface chemical reactions allows for the incorporation of a wide variety of chemical functionalities into textile surfaces to achieve different chemical and physical characteristics. Nonthermal plasmas have been used primarily to address practical industrial needs: providing high-quality, high-productivity, low-cost, and environmentally clean surface treatment processes.
[0054] Furthermore, plasma polymerization or plasma deposition processes offer a versatile avenue for designing materials with tunable functionality. Plasma polymer smart coatings possess unique properties such as wettability, self-cleaning, and anti-reflective properties, and exhibit superior performance in diverse applications such as biomaterials, drug delivery, adhesion, protective coatings, microelectronic devices, oil-water separation, and thin film technology.
[0055] PECVD process Plasma-enhanced chemical vapor deposition (PECVD) is a suitable polymerization method utilizing precursors in either liquid or gaseous form. This highly controlled polymerization process ensures pinhole-free, cross-linked, dry deposition of polymers, avoiding difficulties encountered during wet-chemical polymerization, such as non-uniform coatings and impurities from solvents that can produce defective coatings.
[0056] Plasma treatment improves the degree of crosslinking of polymers compared to classical polymerization. To further explain the plasma polymerization process, already vaporized monomer precursors are pumped into an evacuated plasma chamber. Energy input then generates excited electrons in a glow discharge, which breaks down molecules into free electrons, ions, radicals, and excited molecules. These free radicals and excited molecules then recombine, condense, and polymerize on the substrate. Because the ions and electrons crosslink or form chemical bonds with the already deposited polymer, the properties of the plasma polymer are determined not only by the precursor but also by the deposition parameters.
[0057] Plasma treatment of textiles or other materials can be used as a textile finishing process to improve surface properties such as water and oil repellency on industrial and medical textiles and composites. It can also be applied to other materials and compact objects. Compared to traditional wet-chemical textile finishing, plasma technology offers environmental advantages. PECVD treatments can improve adhesion, increase hydrophilicity / water repellency, introduce special functional groups onto the surface, or modify surface morphology.
[0058] In plasma deposition, commonly referred to as plasma polymerization or PECVD, very thin polymer layers (nanoscale) can be deposited on substrate surfaces. This layer is formed by the polymerization of organic precursor gases that polymerize directly on the substrate surface. In contrast to conventional polymerization, plasma polymerization can use any monomer gas or vapor, regardless of their reactivity. Plasma polymers exhibit unconventional polymerization behavior with branched, random chain terminations and a high degree of cross-linking.
[0059] The bulk structure of plasma polymers is completely irregular, unlike conventional polymers. Plasma polymer coatings (nanofilk films) differ from conventional polymers in the high density of functional groups per volume, highly cross-linked and branched plasma polymer networks, nanometer-thick coatings, high adhesion of the coating to the substrate, and no change in the bulk properties of the substrate (such as polymer fibers).
[0060] Various types of power sources can be used for DHF, APL, APT, and DLC processes. RF plasma sources are the most common. Most RF sources use the industry standard frequency of 13.56 MHz. Among these, there are three main types: capacitively coupled plasma (CCP), also known as reactive ion etcher (RIE); inductively coupled plasma (ICP), also known as transformer coupled plasma (TCP); and the newer helicon wave source, which can be called HWS. Plasma RF generators generate powerful RF signals and are one of the key front-end subsystems of larger industrial plasma processing systems. Applications for industrial plasma processing have exploded over the past 20 years or so, and numerous industries now use plasma processing.
[0061] Pulsed RF power for plasma processing was introduced as a solution to avoid problems faced with continuous wave RF power, such as charge-up damage and power reflected from the chamber. Although the delivery process for pulsed RF power is more complicated than that of continuous wave RF power, WO 2001 / 084591 provides a method for overcoming the aforementioned problems with delivering pulsed RF power to a plasma processing chamber.
[0062] DC and low frequency discharges can operate in continuous and pulsed modes. Pulsed DC power is generated with highly asymmetric electrode configurations, such as opposed planes of sharp needles or thin wires, or large diameter cylinders (drums), so that when a high voltage is applied to the smaller electrode, a strong electric field is generated around it, and thus plasma is generated in the form of streamers.
[0063] Although AC plasma generators were thought to be more efficient and cheaper, prior art AC systems were found to be inherently unstable. Part of this instability is due to the fact that when the arc is pulsed in a single-phase system, the arc extinguishes during each half-cycle. Thus, the arc must be struck 120 times per second.
[0064] Test Method The following test methods were used to determine halogen concentrations, particularly PFAS concentrations. All three standards cover the detection of total fluorine (TOF) concentrations. Extractable organic fluorines (EOF) are identical CIC analyses, but instead of burning the sample directly, a methanol extract is burned. TOF and EOF results are not directly comparable, but TOF results are typically much higher (approximately 2-12 times).
[0065] · IEC 62321-3-2:2020: Specifies the screening analysis of fluorine, chlorine and bromine in polymers and electronic devices using combustion ion chromatography (CIC).
[0066] EN 14582:2016: This standard specifies a combustion method for the determination of the halogen and sulfur content of materials by combustion in a closed system containing oxygen (calorimetric bomb) and the subsequent analysis of the combustion products using various analytical techniques.
[0067] ASTM D7359:2018: Standard Test Method for Total Fluorine, Chlorine, and Sulfur in Aromatic Hydrocarbons and Their Mixtures by Oxidative Pyrohydrolytic Combustion Followed by Ion Chromatography Detection (CIC). This method is equivalent to the OEKO-TEX STANDARD 100 method. [Brief explanation of the drawings]
[0068] [Figure 1] FIG. 1 is a combined schematic flow chart of the method of the present invention including illustrations of various deposited films on a substrate. [Figure 2]FIG. 1 is a combined schematic flow chart of the method of the present invention including illustrations of different results on fabric. [Figure 3] FIG. 1 shows two AFM images of plasma-etched PEEK fabric. DETAILED DESCRIPTION OF THE INVENTION
[0069] The invention will be further described below by means of preferred exemplary embodiments which are diagrammatically illustrated in the accompanying drawings.
[0070] A schematic flow diagram including several steps according to the present invention is shown on the left side of Figure 1. The right side of Figure 1 shows the layers deposited on the fabric, although for clarity only one monofilament is shown.
[0071] According to this embodiment, step PT is performed first. In this step, plasma pretreatment is performed on the surface of the fabric, which is a monofilament woven fabric of polymeric material, onto which various subsequent layers will be deposited. The plasma treatment is preferably performed in a closed chamber with a low-pressure atmosphere. The purpose of the treatment is to clean the surface of the fabric so that subsequent polymers can be more easily deposited. Depending on the power used, the plasma treatment can also roughen the surface of the substrate so that subsequent layers can adhere more easily. This roughening is sometimes considered to form micro-grooves in the substrate material.
[0072] Step PT can be followed by either Step APL or Step DHF to improve adhesion of subsequent layers. Step APL allows for the deposition of layers onto the fabric by plasma polymerization of hydrocarbon gases and / or mixtures of hydrocarbon, reactive and inert gases.
[0073] As can be seen on the right, after cleaning in step PT, an APL layer is applied onto the fabric.
[0074] Step APL is optionally followed by step DLC, which deposits an amorphous hydrogenated diamond-like carbon coating on the APL layer. The combination of these two layers, shown in a simplified form on the right, ensures that the entire surface of the substrate is covered. Usually, the thickness of the layer is not this constant.
[0075] Step DLC is followed by step DHF, which applies a non-fluorinated polymer coating that can be based on, for example, organosilanes (such as trimethylsilane), siloxanes (such as hexamethyldisiloxane, divinyltetramethyldisiloxane, tetramethylsilane), hydrocarbons (such as methane, ethane, acetylene), and mixtures thereof.
[0076] Preferably, the object to be coated is kept in a low pressure or vacuum chamber during the entire treatment process.
[0077] After the step DHF has been carried out, the coated object is in principle ready for use or can be passed on to further processing.
[0078] Figure 2 shows an alternative treatment of the fabric. The main difference with respect to the method steps of Figure 1 is that step APT is performed instead of step APL.
[0079] In Step APT, the surface of the monofilament is roughened, which also improves adhesion of subsequent layers. This can be achieved by plasma etching, ion beam irradiation, and / or UV imprinting. Step PT is not required before Step APT.
[0080] The other steps in this example correspond to those in Figure 1. Steps APL and APT can thus be seen as alternatives.
[0081] In consideration of oil repellency, the object to be coated should be a monofilament fabric woven from polymeric material with a filament diameter of 10 μm to 100 μm and a mesh opening of 5 μm to 200 μm.
[0082] Fabric used Eight different fabrics were analyzed to determine the influence of fabric construction in determining water and oil repellency. Table 1 summarizes fabric parameters and characteristics. This information provides a basis for understanding their behavior and developing new materials with specific surface properties. For example, Fabric A uses a tightly woven mesh with a very low mesh opening of 5 μm and a filament diameter of 34 μm. Meanwhile, Fabric H uses a very open mesh with a mesh opening of 200 μm and a filament diameter of 100 μm. Additionally, mesh article D, made from a membrane layer and a woven material, has an average pore size of 0.70 μm and an air permeability of 35 l / m. 2 A composite article (I) with s@200 Pa was also considered. Low surface tension liquids (e.g. oils) exhibit high capillary action on such composite articles.
[0083] [Table 1] [Example]
[0084] Contact angles for three liquids and oil drop tests were measured for eight different articles coated with a siloxane-based coating (DHF) according to DIN 55660-2:2011-12 and DIN EN ISO 14419:2010, respectively. Water repellency was assessed by measuring water contact angles, while oil repellency was determined by measuring contact angles with diiodomethane and hexadecane and by oil drop tests. As can be seen in Table 2, tightly woven fabrics were found to result in higher capillaries, resulting in very low to moderate oil repellency (e.g., Fabric A). In contrast, for low-surface-tension liquids such as oil, uneven penetration occurs, so adjusting the mesh opening and thread diameter can result in a good oil-repellent surface (e.g., Fabric CF). Moderate oil repellency can be achieved with a mesh that is very open for droplet penetration (e.g., Fabric GH). These results suggest that in addition to plasma treatment, mesh geometry is also an important parameter when plasma polymerizing siloxane coatings, as the resulting oil repellency can vary significantly.
[0085] [Table 2] [Example]
[0086] During application, it is important to protect the coating from destructive and harsh conditions during use. Abrasion forces are one example of how deposited coatings can peel off. Therefore, abrasion resistance is one of the limiting factors in determining product lifespan. To confirm that the plasma coating (step PT followed by step DHF) adheres well to the substrate surface of the multilayer composite membrane material (I), abrasion tests were performed according to EN ISO 12947 Series and EN ISO 12945-2. Table 3 reveals the coating's remarkable abrasion resistance. There was little decrease in the contact angles with the two liquids measured according to DIN 55660-2:2011-12, indicating high adhesion of the coating to the object. However, due to the high capillary effect, the coated composite membrane was found to have significantly lower oil repellency. The composite membrane according to the present invention may include a woven base layer and an overlapping nanofiber layer, such as an e-spun membrane. The resulting e-spun membrane consists of numerous nanofibers that interweave and overlap to form a fibrous, porous structure within which they can develop very high capillary interactions with low-surface-tension liquids, such as oil.
[0087] [Table 3] [Example]
[0088] To evaluate the water separation efficiency, tests were carried out on PT+DHF and DHF coated polyester products according to the ISO / TS 16332 standard. As can be seen in Table 4, a pretreatment step (PT) followed by a step DHF results in superior water separation efficiency compared to a step DHF without a step PT.
[0089] [Table 4] [Example]
[0090] To confirm that the DLC coating can be used as an adhesion-promoting layer for DHF coatings and that the resulting coating (DLC + DHF) adheres well to the substrate, an internal cleaning test was performed at 40°C for 47 minutes. The cleaning cycles were 0XW (no cleaning), 1XW (one cleaning cycle), and 10XW (ten cleaning cycles). Contact angles with the three liquids and oil drop tests were measured according to DIN 55660-2:2011-12 and DIN EN ISO 14419:2010, respectively. Table 5 reveals the remarkable cleaning resistance of the coating. The contact angles with the two liquids were slightly reduced, demonstrating the high coating adhesion to the object. It can also be seen that including a DLC coating as a substrate for step DHF resulted in higher contact angles, indicating that improved cleaning resistance can be achieved by step DLC followed by step DHF. The oil repellency of the washed objects was also evaluated with eight different liquid oils, and the results show that there was only a slight decrease in oil repellency even after 10 wash cycles. Therefore, it is clear from this data that, based on the present invention, it is possible to obtain robust and reliable coatings on polymeric fabrics with excellent water and oil repellency.
[0091] [Table 5] [Example]
[0092] In addition to performance and functionality tests, coating compatibility for medical applications, such as endotoxin and hemocompatibility tests, were performed on coated fabrics according to the present invention.
[0093] Endotoxin testing is performed to determine the suitability of products for medical use. Endotoxin limits are set out in Pharmacopoeia (EP 10), January 2020 and USP 42, May 01, 2019. <85> Both DHF and PT+DHF coated articles contained less than the endotoxin limit concentration and passed the test as seen in Table 6.
[0094] Hemocompatibility of materials in contact with blood is also one of the most important criteria for medical applications. The interaction of the newly developed coated materials with blood was extensively analyzed according to ISO 10993-4 and ISO 10993-12 to prevent activation and destruction of blood components during use. The hemocompatibility analysis of the coated articles is summarized in Table 6 below. All coated articles passed the test.
[0095] [Table 6] [Example]
[0096] Plasma etching is performed in a low-temperature, low-pressure plasma system using a mixture of CF4 and oxygen gases. The topographical characteristics of the etched surfaces were measured by AFM. Rq is the root-mean-square roughness, and Ra is the roughness average. The average roughness is the area between the roughness profile and its mean line. Clearly, direct bias plasma has proven to be very efficient in roughening textiles. The roughness of the small maps appears to be more uniform. The roughness of the large maps may be influenced by large surface features such as grooves on the maps.
[0097] [Table 7] The change in surface morphology due to the etching process is further investigated by the AFM images shown in Figure 3. Figure 3 shows an AFM image of a plasma-etched PEEK fabric (direct bias, 500 V). The homogeneous texturing and roughening of the PEEK surface due to the etching conditions can be seen. [Example]
[0098] Total fluorine screening of coated samples for per- and polyfluoroalkyl compounds (PFAS) was performed according to IEC 62321-3-2:2020. Results may include inorganic and / or organic fluorine content. Total fluorine content may not be derived from PFAS. All processing steps (PT, APT, APL, PT, DLC, DHF) and their combinations are PFAS-free.
[0099] Table 8 shows that no PFAS (e.g., fluorine) was detected on the water- and oil-repellent coated fabrics.
[0100] [Table 8] [Example]
[0101] Contact angles with the two liquids and oil drop tests were measured on articles etched with the (APT) step and subsequently coated with the siloxane-based coating (DHF) according to DIN 55660-2:2011-12 and DIN EN ISO 14419:2010, respectively. Measurements were performed before and after the abrasion test. Table 9 shows the remarkable abrasion resistance of the coating. The contact angles with the two liquids remained unchanged, indicating high coating adhesion to the object. However, we found rather poor oil repellency on the coated substrate due to droplet penetration through the very large mesh openings.
[0102] [Table 9] [Example]
[0103] To confirm that the chemical resistance of the resulting coating (DLC + DHF) can be improved when used as a substrate for DHF, internal chemical immersion tests were performed at room temperature. Samples were immersed in an acidic environment with a pH of approximately 1 for immersion times of 0, 15, 30, 60, and 90 minutes. After the chemical treatment, the samples were dried, and their contact angles with the two liquids were measured according to DIN 55660-2:2011-12.
[0104] Table 10 reveals the significant chemical resistance of the DLC+DHF step compared to DHF alone. As can be clearly seen, higher contact angles are obtained for the DLC+DHF coated and chemically treated samples compared to the DHF coating, which means that improved chemical resistance can be obtained with the DLC step followed by the DHF step.
[0105] [Table 10] [Example]
[0106] The oil drop test was carried out according to DIN EN ISO 14419:2010 on articles coated once with only a siloxane-based coating (DHF) and once with a DLC step followed by a DHF step. The measurements were carried out before and after immersion tests in alkaline and acidic media for different treatment times as described in Example 9.
[0107] As can be seen in Table 11, the oil grade tends to decrease significantly regardless of the chemical nature of the medium (acid or alkaline) except when the DLC step is not included before the DHF step, demonstrating that the chemical stability of the resulting coating can be improved when the DLC step is performed before the DHF step.
[0108] [Table 11] Based on the present invention, it is possible to provide a method for producing a fabric having a water- and oil-repellent, halogen-free, in particular perfluoroalkyl and polyfluoroalkyl compound (PFAS)-free plasma coating in accordance with IEC Standards 62321-3-2:2020, EN 14582:2016 and / or ASTM D7359:2018, as well as a fabric comprising a water- and oil-repellent, halogen-free, in particular perfluoroalkyl and polyfluoroalkyl compound (PFAS)-free plasma coating.
Claims
1. 1. A method for producing a fabric having a water- and oil-repellent, halogen-free, in particular perfluoroalkyl and polyfluoroalkyl compound (PFAS)-free plasma coating in accordance with IEC standards 62321-3-2:2020, EN 14582:2016 and / or ASTM D7359:2018, comprising: depositing a plasma coating on said substrate by plasma polymerization of halogen-free precursor monomers by plasma-enhanced chemical vapor deposition (PECVD); the halogen-free precursor monomer is an organosilane, siloxane, and / or hydrocarbon precursor; The plasma-assisted vapor deposition is carried out as a low-pressure plasma process under a protective atmosphere; The fabric comprises a monofilament woven fabric of polymeric material having a filament diameter of 10 μm to 100 μm and a mesh opening of 5 μm to 200 μm.
2. 2. The method of claim 1, further comprising a step of coating the substrate by sputtering a carbon target by a PVD process using argon plasma and / or by a PECVD method using hydrocarbon gas, wherein the step of DLC is performed before the step of DHF.
3. 2. The method of claim 1, comprising a step APL of creating an adhesion-promoting layer by plasma polymerization of hydrocarbon gases and / or mixtures of hydrocarbon, reactive and inert gases, said step APL being performed before said step DHF or before said step DLC.
4. 2. The method of claim 1, comprising a step APT of creating an adhesion-promoting surface by using plasma etching, ion beam irradiation and / or UV imprinting, wherein said step APT is performed before said step DHF or before said step DLC.
5. 2. The method of claim 1, wherein in the step DHF, a halogen-free water- and oil-repellent coating having a thickness of 30 nm to 300 nm is deposited on the fabric.
6. 2. The method of claim 1, wherein in the step DLC, a water-repellent carbon coating having a thickness of 5 nm to 200 nm is deposited on the fabric.
7. 2. The method of claim 1, wherein in step APL, an adhesion-promoting coating having a thickness of 5 nm to 100 nm is deposited on the substrate.
8. 2. The method according to claim 1, wherein the fabric has a filament diameter of 10 μm to 100 μm, particularly preferably 19 μm to 50 μm.
9. 2. The method according to claim 1, wherein the fabric has a mesh opening of 5 μm to 200 μm, particularly preferably 19 μm to 125 μm.
10. 2. The method of claim 1, wherein the fabric plasma coated in step DHF has water repellency corresponding to a water contact angle of 110° to 160° and oil repellency corresponding to a diiodomethane contact angle of 80° to 140° and a hexadecane contact angle of 40° to 120° according to DIN 55660-2:2011-12 and an oil grade of up to 4 according to DIN EN ISO 14419:2010.
11. 10. The method of claim 1, wherein the fabric coated with the step DLC is chemically inert, resistant to acids, alkalis and organic solvents, and has water repellency corresponding to a water contact angle of 90° to 140° according to DIN 55660-2:2011-12.
12. 2. The method of claim 1, further comprising a step PT of pretreating the fabric with atmospheric or low-pressure plasma using a non-polymer-forming inert gas and / or reactive gas, wherein the step PT is performed as a first step before the step DHF, the step DLC, or the step APL.
13. Step 1. PT, 2. APL or APT, 3. Optional DLC and 4. DHF The method of claim 1, wherein the steps are carried out in the order of:
14. 1. A water- and oil-repellent fabric having a halogen-free, in particular perfluoroalkyl and polyfluoroalkyl compound (PFAS)-free plasma coating formed thereon by the method of claim 1, the fabric comprising a monofilament woven fabric of polymeric material having a filament diameter of 10 μm to 100 μm and a mesh opening of 5 μm to 200 μm.
Citation Information
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