WO2019115396A1 - Preparation of silica-coated calcium carbonates with increased surface area and mesoporosity - Google Patents
Preparation of silica-coated calcium carbonates with increased surface area and mesoporosity Download PDFInfo
- Publication number
- WO2019115396A1 WO2019115396A1 PCT/EP2018/084006 EP2018084006W WO2019115396A1 WO 2019115396 A1 WO2019115396 A1 WO 2019115396A1 EP 2018084006 W EP2018084006 W EP 2018084006W WO 2019115396 A1 WO2019115396 A1 WO 2019115396A1
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- acid
- silica
- calcium carbonate
- coated
- slurry
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K8/00—Cosmetics or similar toiletry preparations
- A61K8/02—Cosmetics or similar toiletry preparations characterised by special physical form
- A61K8/0241—Containing particulates characterized by their shape and/or structure
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- A—HUMAN NECESSITIES
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- A61K6/15—Compositions characterised by their physical properties
- A61K6/17—Particle size
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- A—HUMAN NECESSITIES
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- A61K6/60—Preparations for dentistry comprising organic or organo-metallic additives
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- A61K6/70—Preparations for dentistry comprising inorganic additives
- A61K6/71—Fillers
- A61K6/76—Fillers comprising silicon-containing compounds
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- A—HUMAN NECESSITIES
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- A61K8/18—Cosmetics or similar toiletry preparations characterised by the composition
- A61K8/30—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds
- A61K8/33—Cosmetics or similar toiletry preparations characterised by the composition containing organic compounds containing oxygen
- A61K8/36—Carboxylic acids; Salts or anhydrides thereof
- A61K8/365—Hydroxycarboxylic acids; Ketocarboxylic acids
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61Q—SPECIFIC USE OF COSMETICS OR SIMILAR TOILETRY PREPARATIONS
- A61Q19/00—Preparations for care of the skin
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- B01J20/04—Solid sorbent compositions or filter aid compositions; Sorbents for chromatography; Processes for preparing, regenerating or reactivating thereof comprising inorganic material comprising compounds of alkali metals, alkaline earth metals or magnesium
- B01J20/043—Carbonates or bicarbonates, e.g. limestone, dolomite, aragonite
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- B—PERFORMING OPERATIONS; TRANSPORTING
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- B01J20/28078—Pore diameter
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- C01B33/12—Silica; Hydrates thereof, e.g. lepidoic silicic acid
- C01B33/18—Preparation of finely divided silica neither in sol nor in gel form; After-treatment thereof
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- C09C—TREATMENT OF INORGANIC MATERIALS, OTHER THAN FIBROUS FILLERS, TO ENHANCE THEIR PIGMENTING OR FILLING PROPERTIES ; PREPARATION OF CARBON BLACK ; PREPARATION OF INORGANIC MATERIALS WHICH ARE NO SINGLE CHEMICAL COMPOUNDS AND WHICH ARE MAINLY USED AS PIGMENTS OR FILLERS
- C09C1/00—Treatment of specific inorganic materials other than fibrous fillers; Preparation of carbon black
- C09C1/02—Compounds of alkaline earth metals or magnesium
- C09C1/021—Calcium carbonates
- C09C1/022—Treatment with inorganic compounds
- C09C1/024—Coating
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- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
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Definitions
- This application relates to materials technology in general and more specifically to the preparation and use of silica-coated calcium carbonate particles having increased surface areas and mesoporosity relative to their calcium carbonate precursors.
- Calcium carbonate is one of the most common and widely used minerals finding applications in various materials including rubbers, plastics, paint, paper, inks, food products and pharmaceuticals.
- Calcium carbonate particles are produced in many forms, such as precipitated calcium carbonate (PCC) and ground calcium carbonate (GCC). Modified versions of calcium carbonate are especially useful because the characteristics of this relatively-inexpensive mineral can be altered to replicate and replace other more expensive, rare or environmentally-unfriendly materials.
- PCC precipitated calcium carbonate
- GCC ground calcium carbonate
- Modified versions of calcium carbonate are especially useful because the characteristics of this relatively-inexpensive mineral can be altered to replicate and replace other more expensive, rare or environmentally-unfriendly materials.
- core-shell particles based on calcium carbonate as the core material, in which the shell of these core-shell particles is a functional surface coating.
- Silica-coated calcium carbonate particles find various possible applications.
- the hydroxyl groups that decorate the surface of silica-coated particles can be used create inter-bonds that strengthen materials such as papers, sealants and rubbers.
- the hydroxyl groups of silica may also serve as the basis for further chemical functionalization using, for example, silane-based surface modification agents that can radically alter the properties of the resulting surface-modified particles.
- Silica-coated calcium carbonates are also used as pigments and whitening agents that are found to be useful in paints and colored adhesives.
- the uses of known silica-coated calcium carbonate particles are often limited by the properties of the calcium carbonate precursor.
- One problem with calcium carbonate relates to its acid sensitivity which, in most circumstances, precludes the use of calcium carbonate particles such as PCC and GCC in acidic liquids such as certain paints.
- the present inventors have recognized that a need exists to discover a process for producing silica-coated calcium carbonate particles having higher outer surface areas, narrower pore-size distributions, and increased acid resistance, relative to silica-coated calcium carbonate particles that are currently available.
- silica-coated calcium carbonate particles that exhibit surprisingly high outer surface areas compared to the surface areas of the precursor calcium carbonate particles.
- Silica-coated calcium carbonate particles of the present disclosure can also exhibit unusually sharp pore size distributions having predominantly mesoporous characteristics.
- Silica-coated calcium carbonate particles of the present disclosure can also exhibit increased acid resistance compared to other silica-coated calcium carbonate particles.
- Embodiments of the present disclosure include the following: (1 ) Some embodiments relate to a process, comprising: preparing an aqueous carbonate slurry comprising calcium carbonate particles; adding at least one silicate composition to the aqueous carbonate slurry to obtain a carbonate-silicate slurry; lowering the pH of the carbonate-silicate slurry by adding at least one acidic compound to obtain a pH-adjusted slurry comprising silica-coated calcium carbonate particles; and isolating the silica-coated calcium carbonate particles, such that: the silicate composition comprises a silica and a metal oxide; a molar ratio of the silica to the metal oxide in the silicate composition ranges from 1.1 :1 to 5:1 ; the adding of the at least one acidic compound is controlled such that a final pH of the pH-adjusted slurry ranges from about
- Some embodiments relate to silica-coated calcium carbonate particles obtained by the above process, wherein: the silica-coated particles comprise a calcium carbonate core at least partially covered with a silica coating; a BET surface area of the silica-coating particles ranges from 30 m 2 /g to 200 m 2 /g; a ratio of the BET surface area of the silica-coated particles over a BET surface area of the calcium carbonate particle precursor of the calcium carbonate core ranges from 1.2:1 to 10:1 ; and an average pore diameter of the silica coating ranges from 2 nm to 50 nm; and
- Some embodiments relate to an article or composition comprising the above silica-coated carbonate particles, wherein the article or composition is selected from the group consisting of a paper product, a sealant, a polymer, a cosmetic, a chalk, a paint, a sorption agent, a dental composition and an anti-caking agent.
- FIG. 1 is a bar chart comparing the surface area of the commercial PCC Socal®
- FIG. 2 is a graph that charts pore volume (cm 3 /g*nm) versus pore diameter (nm) for the commercial PCC Socal® 31 versus a silica-coated PCC formed from Socal® 31 ;
- FIG. 3(a) is a SEM micrograph at 50k magnification of the commercial PCC Socal® 31 ;
- FIG. 3(b) is a SEM micrograph at 25k magnification of the commercial PCC Socal® 31 ;
- FIG. 3(c) is a SEM micrograph at 50k magnification of a hollow silica sphere formed by treating a silica-coated PCC formed from Socal® 31 with acid;
- FIG. 3(d) is a SEM micrograph at 25k magnification of a hollow silica sphere formed by treating a silica-coated PCC formed from Socal® 31 with acid;
- FIG. 4(a) is a SEM micrograph of the commercial PCC Socal® 31 ;
- FIG. 4(b) is a SEM micrograph a silica-coated PCC formed from Socal® 31 ;
- FIG. 4(c) is an energy-dispersive X-ray (EDX) map showing an elemental distribution of Ca on the surface of the commercial PCC Socal® 31 ;
- FIG. 4(d) is an energy-dispersive X-ray (EDX) map showing an elemental distribution of Ca on the surface of a silica-coated PCC formed from Socal® 31 ;
- FIG. 4(e) is an energy-dispersive X-ray (EDX) map showing an elemental distribution of Si on the surface of the commercial PCC Socal® 31 ;
- FIG. 4(f) is an energy-dispersive X-ray (EDX) map showing an elemental distribution of Si on the surface of a silica-coated PCC formed from Socal® 31 ;
- EDX energy-dispersive X-ray
- FIG. 5 is a bar chart comparing the specific surface area (obtained by BET) of the commercial PCC Socal® 31 versus the surface areas of silica-coated PCC particles formed from Socal® 31 using different acids, and comparing the surface areas of corresponding silica shells formed by reacting the silica-coated PCC particles with acid;
- FIG. 6 is a graph that charts pore volume (cm 3 /g*nm) versus pore diameter (nm) obtained by the BJH method for the commercial PCC Socal® 31 versus silica-coated PCC particles formed from Socal® 31 using different acids;
- FIG. 7 is an acid resistance graph that charts pH versus time for the commercial PCC Socal® 31 and for silica-coated PCC particles formed from Socal® 31 using different acids;
- FIG. 8(a) is a SEM micrograph at 50k magnification of silica-coated PCC particles formed from Socal® 31 using hydrochloric acid;
- FIG. 8(b) is a SEM micrograph at 25k magnification of silica-coated PCC particles formed from Socal® 31 using hydrochloric acid;
- FIG. 8(c) is a SEM micrograph at 50k magnification of silica-coated PCC particles formed from Socal® 31 using C0 2 ;
- FIG. 8(d) is a SEM micrograph at 25k magnification of silica-coated PCC particles formed from Socal® 31 using CO2;
- FIG. 8(e) is a SEM micrograph at 50k magnification of silica-coated PCC particles formed from Socal® 31 using citric acid;
- FIG. 8(f) is a SEM micrograph at 25k magnification of silica-coated PCC particles formed from Socal® 31 using citric acid;
- FIG. 9 is a bar chart comparing the specific surface area (obtained by BET) of the commercial PCC Socal® 31 versus the surface areas of silica-coated PCC particles formed from Socal® 31 using different acids both with and without an added dispersant;
- FIG. 10 is a graph that charts pore volume (cm 3 /g*nm) versus pore diameter (nm) obtained by the BJH method for the commercial PCC Socal® 31 versus silica-coated PCC particles formed from Socal® 31 using HCI both with and without an added dispersant;
- FIG. 11 (a) is a SEM micrograph at 50k magnification of silica-coated PCC particles formed from Socal® 31 using hydrochloric acid without an added dispersant;
- FIG. 11 (b) is a SEM micrograph at 50k magnification of silica-coated PCC particles formed from Socal® 31 using hydrochloric acid with an added dispersant;
- FIG. 11 (c) is a SEM micrograph at 50k magnification of silica-coated PCC particles formed from Socal® 31 using citric acid without an added dispersant;
- FIG. 11 (d) is a SEM micrograph at 50k magnification of silica-coated PCC particles formed from Socal® 31 using citric acid with an added dispersant;
- FIG. 12 is an acid resistance graph that charts pH versus time for the commercial PCC Socal® 31 and for silica-coated PCC particles formed from Socal® 31 using different acids both with and without an added dispersant.
- Embodiments of this disclosure includes various processes for producing silica- coated calcium carbonate particles, and the use of these particles in various applications.
- the terms“about” and“approximately” as used herein refer to being nearly the same as a referenced amount or value, and should be understood to encompass ⁇ 5% of the specified amount or value.
- the terms“mesoporous,”“mesoporosity,” and“mesopore” refer to materials containing pores with diameters ranging from about 2 nm to about 50 nm.
- the silica-coated calcium carbonate particles comprise a porous coating having an average pore diameter ranging from 2 nm to 50 nm.
- Average pore diameter may indicate the BJH (Barrett-Joyner-Halenda) pore size (pore diameter) of the particles.
- the BJH pore size may be determined from the same N 2 adsorption isotherm that is used by the BET surface area calculations (measurement according to the BET method, AFNOR standard X1 1 -6212 and 622 or ISO 9277). Determining the BJH pore size is described in Barrett et al., Am. Chem. Soc., 73 (1951 ), pages 373-380, the contents of which are incorporated herein by reference. Any suitable equipment may be used, such as the commercially available Micromeritics TRISTAR 3000 and Micromeritics VACPREP 061.
- the particle, before the pore size measurement may, for example, be degassed in an oven overnight at 105°C, followed by 180°C for 30 minutes under nitrogen flow and cooling for 30 minutes under nitrogen flow.
- the isotherm may, for example, be measured for relative pressures P/Po ranging from 0.05 to 0.98.
- Average pore size refers to pore diameter.
- Some embodiments relate to a process, comprising the steps of: (1 ) preparing an aqueous carbonate slurry comprising calcium carbonate particles; (2) adding at least one silicate composition to the aqueous carbonate slurry to obtain a carbonate-silicate slurry; (3) lowering a pH of the carbonate-silicate slurry by adding at least one acidic compound to obtain a pH-adjusted slurry comprising silica-coated calcium carbonate particles; and (4) isolating the silica-coated calcium carbonate particles.
- the silicate composition comprises silica and a metal oxide
- a molar ratio of the silica to the metal oxide in the silicate composition ranges from 1.1 :1 to 5:1
- the adding of the at least one acidic compound is controlled such that a final pH of the pH-adjusted slurry ranges from about 7 to about 10
- the silica-coated calcium carbonate particles comprise a porous coating having an average pore diameter ranging from 2 nm to 50 nm.
- any calcium carbonate particle known in the relevant art may be used, including calcium carbonates in raw mineral form. Mixtures of different calcium carbonate particles may also be used.
- the step (1 ) is carried out using a processed calcium carbonate such as a precipitated calcium carbonate (PCC) or a ground calcium carbonate (GCC). Any PCC or GCC known in the art may be used, and mixtures of different PCCs and/or different GCCs may also be used.
- PCCs may be produced by any known process, such as a lime-based process, a dry hydrated lime-based process, a CaS0 4 -based process or a CaC -based process.
- the aqueous carbonate slurry is prepared using a lime-based PCC.
- the polymorphism of the calcium carbonate particle may include calcite, aragonite and vaterite. In some embodiments the polymorphism of the calcium carbonate particle is limited to calcite.
- the elemental crystal morphology of the calcium carbonate particle may include rhomboids (pseudo-spherical), scalenohedron, needles, and flower like, along with various other morphologies that are much less common. In some embodiments the elemental crystal morphology of the calcium carbonate particles is limited to rhomboids.
- a slurry concentration of the aqueous carbonate slurry may range from about 10 g/L to about 750 g/L. In certain embodiments the slurry concentration of the aqueous carbonate slurry is limited to range from about 10-150 g/L, or from about 75-250 g/L, or from about 150-200 g/L, or from about 100-250 g/L, or from about 175-350 g/L, or from about 200-475 g/L, or from about 250-450 g/L. [0044] The aggregation of the calcium carbonate particles in the aqueous carbonate slurry may be random or controlled.
- the step (1 ) of preparing the aqueous carbonate slurry is conducted such that the calcium carbonate particles in the aqueous carbonate slurry are controlled to produce nanofibers having lengths ranging from about 20 nm to about 1 ,000 nm. In some embodiments the lengths of the calcium carbonate nanofibers are limited to range from 40 nm to about 500 nm. In some embodiments, when the step (1 ) is controlled to produce calcium carbonate aggregates, the aggregate median size (Dso, measured by Sedigraph) may range from about 0.5 pm to about 50 pm, as measured using laser diffraction. In some embodiments, the step (1 ) is controlled such that the aggregate median size of calcium carbonate aggregates is limited to range from about 2 pm to about 25 pm.
- the BET surface area of calcium carbonate particles may range from about 2 m 2 /g to about 200 m 2 /g.
- the aqueous carbonate slurry is prepared in a manner such that the BET surface area of the calcium carbonate particles is limited to range from about 1 m 2 /g to about 80 m 2 /g, or in other embodiments from about 1 m 2 /g to about 25 m 2 /g.
- the calcium carbonate particles may be mesoporous, or may not be mesoporous.
- the calcium carbonate particles may be surface-treated calcium carbonate particles.
- Surface modifying agents may include, by non-limiting example, silicon-containing compounds such as silicones and silanes, polyacrylates, EDTA, and other surface modifying agents known in the art. Silicon-containing surface modifying agents may contain additional functional groups such as alkylene groups, alkoxy groups, amino groups, aryl groups, carbamate groups, epoxy groups, ester groups, ether groups, halide groups, heteroaryl groups, sulfide and/or disulfide groups, hydroxyl groups, isocyanate group, nitrile groups, ionic (charged) groups, and mixtures thereof.
- Suitable surface modification agents are mono- and polycarbonic acids, corresponding acid anhydrides, acid chlorides, esters and acid amides, alcohols, alkyl halides, amino acids, imines, nitriles, isonitriles, epoxy compounds, mono- and polyamine, dicarbonyl compounds, silanes and metal compounds.
- the surface modification agents containing a hydrophobic and/or oleophobic group may include silanes, carbonic acids, carbonic acid derivatives such as acid anhydrides and acid halides, in particular acid chlorides, alcohols, alkyl halides such as alkyl chlorides, alkyl bromides and alkyl iodides, wherein the alkyl residue may be substituted in particular with fluorine.
- the aqueous medium may include only water, or the aqueous medium may include water and an additional agent such as a dispersant.
- Suitable dispersants may be selected from conventional dispersant materials commonly used in the processing of alkali earth metal carbonates. Such dispersants will be recognized by those skilled in this art. Dispersants are generally water-soluble salts capable of supplying anionic species, which in their effective amounts may adsorb on the surface of the alkali earth metal carbonate particles and thereby inhibit aggregation of the particles.
- the unsolvated salts suitably include alkali metal cations, such as sodium.
- Suitable dispersants also include water soluble condensed phosphates, for example, polymetaphosphate salts (general form of the sodium salts: (NaP0 3 )x), such as tetrasodium metaphosphate or so-called “sodium hexametaphosphate” (Graham's salt), water-soluble salts of polysilicic acids; polyelectrolytes; salts of homopolymers or copolymers of acrylic acid or methacrylic acid; or salts of polymers of other derivatives of acrylic acid, suitably having a weight average molecular mass of less than about 20,000.
- polymetaphosphate salts generally form of the sodium salts: (NaP0 3 )x
- sodium hexametaphosphate” Graham's salt
- water-soluble salts of polysilicic acids such as tetrasodium metaphosphate or so-called “sodium hexametaphosphate” (Graham's salt)
- the step (1 ) of preparing the aqueous carbonate slurry involves the use of an aqueous medium containing sodium hexametaphosphate and/or a sodium polyacrylate, the latter suitably having a weight average molecular mass in the range of about 1 ,500 to about 10,000.
- the process includes an additional step of adding a dispersant to at least one of the aqueous carbonate slurry, the carbonate-silicate slurry, and the pH-adjusted slurry.
- the added dispersant may include one or more dispersants as described above.
- the added dispersant is selected from an organic acid, a carbohydrate compound, a metal salt, and mixtures thereof.
- the calcium carbonate particles may be at least partially coated with an organic compound such as, but not limited to, citric acid or a sugar.
- an organic compound such as, but not limited to, citric acid or a sugar.
- the calcium carbonate particles are at least partially coated with a carbohydrate.
- the calcium carbonate particles are at least partially coated with an organic dispersant or chelating agent such as, but not limited to, sodium hexametaphosphate.
- the silicate composition may include a lithium silicate, a sodium silicate, a potassium silicate or various mixtures thereof.
- the silicate composition may be a composition containing a silica (S1O2) and an oxide of at least one metal selected from an alkali metal and an alkaline earth metal.
- the metal oxide may be at least one metal oxide selected U2O, Na 2 0 and K2O.
- a molar ratio of the silica to the metal oxide in the silicate composition may range from about 1 :1 to about 5:1.
- the carbonate-silicate slurry is prepared using a silicate composition in which the molar ratio of the silica to the metal oxide ranges from about 3:1 to about 4:1.
- the silicate composition added to the aqueous carbonate slurry may be in a liquid phase or in a solid phase.
- the silicate composition may be in the form of a silicate solution or slurry comprising water, the silica and the metal oxide, in which a concentration of the silica in the silicate solution or slurry ranges from about 0.5 mol/L to about 10 mol/L. In some embodiments the concentration of the silicate solution or slurry ranges from about 1.0 mol/L to about 1.5 mol/L.
- the silicate composition may be in the form of a liquid composition of silica and sodium oxide (Na20) in which the liquid composition has a density ranging from about 1.2 kg/m 3 to about 2.0 kg/m 3 , or may be in the form of a solid composition of silica and sodium oxide in which the solid composition has a density ranging from about 0.4 kg/m 3 to about 1.6 kg/m 3 , or may be in the form of a solid composition of silica and lithium oxide (U2O) in which the solid composition has a density ranging from about 1.1 kg/m 3 to about 1.5 kg/m 3 , or may be in the form of a solid composition of silica and potassium oxide (K2O) in which the solid composition has a density ranging from about 1.1 kg/m 3 to about 1.5 kg/m 3 .
- the silica composition contains silica and sodium oxide and has a density ranging from about 1.3 kg/m
- the silicate composition may be a sodium silicate compositions containing 15-35 weight % of silica and 5-35 weight % of sodium oxide, or may be a lithium silicate composition containing 15-35 weight % of silica and 1 -10 weight % of lithium oxide, or may be a potassium silicate composition containing 15-35 weight % of silica and 5-20 weight % of potassium oxide.
- the silica composition is limited to a sodium silicate composition containing 25-30 weight % of silica and 5-10 weight % of sodium oxide.
- a molar ratio of calcium carbonate to silica in the carbonate-silicate slurry may range from about 1 :1 to about 100:1. In some embodiments the molar ratio of calcium carbonate to silica in the carbonate-silicate slurry is limited to range from about 1.5:1 to about 5:1.
- the addition of the silica composition to the aqueous carbonate slurry may occur such that the temperature of the aqueous carbonate slurry is controlled to range from about 15°C to about 95°C. In some embodiments the temperature of the aqueous carbonate slurry during the addition step is controlled to range from about 20°C to about 25°C.
- the silicate composition may be added continuously or may be added in dropwise fashion.
- the silicate composition is added to the aqueous carbonate slurry at an addition rate that ranges from about 1.7 to about 255 or from about 8.5 to about 25.5 (mole of silicate per minute) per kiloliter of the aqueous carbonate slurry.
- the aqueous carbonate slurry may be stirred at a rate of up to 1 ,000 rpm. In some embodiments the stirring rate may be limited to range from about 600 rpm to about 800 rpm. In some embodiments the mode of addition may be altered such that the aqueous carbonate slurry is added to the silicate composition.
- the acidic compound may be a strong acid such as hydrochloric acid, nitric acid, sulfuric acid, hydrobromic acid or hydroiodic acid, as well as other strong acids known in the art, or a weak acid such as a carboxylic acid, phosphoric acid, boric acid or hydrofluoric acid, as well as other weak acids known in the art.
- the acidic compound is hydrochloric acid, which may be used in gaseous form and may be used as an aqueous or non-aqueous solution.
- a concentration of hydrochloric acid solution used as the acidic compound may range from about 0.1 M to 12 M (i.e., concentrated aqueous concentrated HCI).
- the acidic compound comprises an acid having a pKa of less than 2.
- the acidic compound may be an organic acid having a pKa of equal to or greater than 2.
- the acidic compound comprises at least one water- soluble organic carboxylic acid selected from a monocarboxylic acid, a dicarboxylic acid, a tricarboxylic acid, and salts thereof.
- the acidic compound may comprise a water-soluble hydroxycarboxylic acid or a salt thereof.
- the acidic compound may comprise at least one organic acid selected from formic acid, glyoxylic acid, oxalic acid, glycolic acid, malonic acid, 3-hydroxypropanoic acid, lactic acid, glyceric acid, fumaric acid, maleic acid, oxaloacetic acid, 3-butenoic acid, crotonic acid, methylmalonic acid, succinic acid, malic acid, tartaric acid, dihydroxytartaric acid, butanoic acid, 3-hydroxybutanoic acid, 4-hydroxybutanoic acid, 1 ,1 -cyclopropane dicarboxylic acid, itaconic acid, mesaconic acid, dimethylmalonic acid, glutaric acid, methylsuccinic acid, pentanoic acid, ascorbic acid, citric acid, isocitric acid, 3-methylglutaric acid, hexanoic acid and salts thereof.
- organic acid selected from formic acid, glyoxylic acid, oxalic acid, glyco
- the acidic compound may be a water-soluble C2-C30 aliphatic and/or aromatic organic acid, in which aliphatic acids may be fully saturated or may be unsaturated.
- the acidic compound may include salts or mixtures of free acids and salts.
- the acidic compound may include a polymeric acid, such as polymeric acids prepared from ethylenenically unsaturated carboxylic monomers including, for example, acrylic acid, methacrylic acid, fumaric acid, and maleic acid. These polymers may have weight average molecular weights of less than about 1 ,000,000, or less than 50,000, as determined by light scattering techniques.
- the acid compound is selected from phosphoric acid, metaphosphoric acid, hexametaphosphoric acid, ethylenediaminetetraacetic acid (EDTA), sulfurous acid, acetic acid, boric acid, gallic acid, glutaric acid, benzoic acid, oxybenzoic acid, salicyclic acid, citric acid, formic acid, fluoroboric acid and mixtures thereof. Mixtures of these acids, as well as other acids described above, may be combined with the use of carbon dioxide during the step (3) of lowering the pH of the carbonate-silicate slurry.
- at least one buffering acid may serve as the acidic compound, or may be included as a component of the acidic compound.
- the acidic compound includes citric acid as a weak, buffering acid.
- the addition of the acidic compound to the carbonate-silicate slurry may occur such that the temperature of the carbonate-silicate slurry ranges from about 15°C to about 95°C. In some embodiments the temperature of the carbonate-silicate slurry during the addition of the acidic compound is controlled to range from about 20°C to about 25°C.
- the carbonate-silicate slurry may be stirred during the addition of the acidic compound, such that the rate of stirring is less than or equal to 1 ,000 rpm.
- the rate of stirring of the carbonate-silicate slurry during the addition of the acidic compound is controlled to range from about 600 rpm to about 800 rpm.
- the acid compound may be added continuously or by dropwise addition, in which the rate of dropwise addition may range from about 1.7 to about 255 or from about 8.5 to about 25.5 (mole of acid compound per minute) per kiloliter of the carbonate-silicate slurry.
- the rate of addition of the acid compound, the rate of stirring of the carbonate-silicate slurry, and the temperature of the carbonate-silicate slurry may be controlled in order to prevent or minimize gelling during the step (3) of lowering the pH of the carbonate-silicate slurry.
- the amount of the acid compound may be controlled such that the molar ratio of the calcium carbonate to acid groups in the acid compound ranges from about 100:1 to about 1 :1. In some embodiments the molar ratio of the calcium carbonate to the acid compound is limited to range from about 9:1 to about 4:1.
- the final pH of the pH-adjusted slurry may range from about 7 to about 9, or from about 7 to about 8, or from about 7 to about 7.5. In some embodiments the final pH of the pH-adjusted slurry is approximately 7.
- the process of forming the silica-coated calcium carbonate particles may include an additional step of aging the pH-adjusted slurry over period ranging from 1 to 150 minutes.
- the aging of the pH-adjusted slurry occurs at a temperature ranging from 15°C to 95°C, and may occur with stirring of the pH-adjusted slurry at rate ranging from about 1 rpm to about 1 ,000 rpm.
- the aging of the pH-adjusted slurry is controlled such that the temperature of the pH-adjusted slurry ranges from about 60°C to about 80°C. Aging of the pH-adjusted slurry may occur over a period ranging from 1 min to about 150 minutes, in which some embodiments are limited such that the period of aging ranges from about 90 minutes to about 120 minutes.
- the step (4) of isolating the silica-coated calcium carbonate particles may include the steps filtering, washing, drying and/or milling the silica-coated carbonate particles— but is not limited to these steps.
- the washing of the silica-coated carbonate particles includes at least one of (i) washing a filter cake of the silica-coated calcium carbonate particles with a washing liquid, and (ii) dispersing the silica-coated carbonate particles into the washing liquid, and then filtering the silica- coated carbonate particles from the washing liquid.
- the washing liquid contains water and optionally a dispersant and/or detergent.
- the performing of the steps (i) and/or (ii) above can lead to the formation of silica-coated calcium carbonate particles having improved characteristics relative to silica-coated calcium carbonate particles not obtained by performing the steps (i) and/or (ii) above.
- the performing of the steps (i) and/or (ii) may increase the BET surface area of the silica-coated calcium carbonate particles, or may increase the mesoporosity of the silica-coated calcium carbonate particles.
- at least one of the steps (i) and (ii) may be performed at least two times.
- the drying may occur at a temperature ranging from about 50°C to about 200°C. In some embodiments the drying occurs at a temperature ranging from about 80°C to about 120°C. Milling of the silica-coated calcium carbonate particles may be carried out using a pin mill, a hammer mill or a classifier mill.
- a silica-coated calcium carbonate particle of the present disclosure may include a calcium carbonate core at least partially covered with a silica coating, in which at least one of the following characteristics is satisfied: (a) a BET surface area of the silica-coating calcium carbonate particle ranges from about 30 m 2 /g to about 200 m 2 /g; (b) a ratio of the BET surface area of the silica- coated calcium carbonate particle over a BET surface area of a calcium carbonate particle precursor of the calcium carbonate core ranges from about 1.1 :1 to about 80:1 ; and (c) an average pore diameter of the silica coating ranges from 2 nm to 50 nm.
- the BET surface area of the silica-coated calcium carbonate particle ranges from about 50 m 2 /g to about 80 m 2 /g.
- the average pore size of the silica-coated calcium carbonate particle may range from about 5 nm to about 20 nm, and the ratio (b) may range from about 2:1 to about 6:1.
- Some embodiments of the present disclosure relate to an article or composition containing silica-coated carbonate particles obtained by the process described above.
- the article or composition may be a paper product, an adhesive, a sealant, a polymer, a cosmetic, a chalk, a paint, a sorption agent, a dental composition or an anti-caking agent, just to name a few applications.
- Applications of the silica-coated carbonate particles may also include water purification materials, water sludge treatment materials, carrier agents for cosmetics or agricultural applications, oral compositions, and odor controls agents, just to name a few.
- Embodiments of the present disclosure also include hollow silica sphere’s obtained by treating the silica-coated calcium carbonate particles with an acidic composition.
- Embodiment [1] of the present disclosure relates to a process, comprising: preparing an aqueous carbonate slurry comprising calcium carbonate particles; adding at least one silicate composition to the aqueous carbonate slurry to obtain a carbonate- silicate slurry; lowering a pH of the carbonate-silicate slurry by adding at least one acidic compound to obtain a pH-adjusted slurry comprising silica-coated calcium carbonate particles; and isolating the silica-coated calcium carbonate particles, wherein: the silicate composition comprises a silica and a metal oxide; a molar ratio of the silica to the metal oxide in the silicate composition ranges from 1.1 :1 to 5:1 ; the adding of the at least one acidic compound is controlled such that a final pH of the pH-adjusted slurry ranges from about 7 to about 10; and the silica-coated calcium carbonate particles comprise a porous coating having an
- Embodiment [2] of the present disclosure relates to the process of Embodiment [1], wherein the calcium carbonate particles are selected from the group consisting of precipitated calcium carbonate particles, ground calcium carbonate particles, waste calcium carbonate particles, and mixtures thereof.
- Embodiment [3] of the present disclosure relates to the process of Embodiment [1] or [2], wherein the calcium carbonate particles are at least partially coated with an organic compound comprising at least one hydroxyl group.
- Embodiment [4] of the present disclosure relates to the process of
- Embodiment [5] of the present disclosure relates to the process of
- the silicate composition comprises the silica and an oxide of at least one metal selected from the group consisting of an alkali metal and an alkaline earth metal; a molar ratio of the silica to the metal oxide ranges from 1.1 :1 to 5:1 ; and a molar ratio of the silica to the calcium carbonate in the carbonate-silicate slurry ranges from 1 :1 to 1 :100.
- Embodiment [6] of the present disclosure relates to the process of
- Embodiment [7] of the present disclosure relates to the process of
- Embodiment [8] of the present disclosure relates to the process of
- the acidic compound comprises at least one selected
- Embodiment [9] of the present disclosure relates to the process of
- Embodiment [10] of the present disclosure relates to the process of
- Embodiment [1 1 ] of the present disclosure relates to the process of
- Embodiments [1 ]-[10], wherein the isolating comprises filtering, washing, drying and milling the silica-coated carbonate particles.
- Embodiment [12] of the present disclosure relates to the process of
- Embodiment [13] of the present disclosure relates a silica-coated calcium carbonate particle obtained by a process of Embodiments [1 ]-[12], wherein the silica- coated particle comprising a calcium carbonate core at least partially covered with a silica coating, and wherein: a BET surface area of the silica-coating particle ranges from 30 m 2 /g to 200 m 2 /g; a ratio of the BET surface area of the silica-coated particle over a BET surface area of a calcium carbonate particle precursor of the calcium carbonate core ranges from 1 :1 to 10:1 ; and an average pore diameter of the silica coating ranges from 2 nm to 50 nm.
- Embodiment [14] relates to an article or composition comprising the silica- coated carbonate particle of Embodiment [13], wherein the article or composition is selected from the group consisting of a paper product, a sealant, a polymer, a cosmetic, a chalk, a paint, a sorption agent, a dental composition and an anti-caking agent.
- Embodiment [15] relates to a hollow silica sphere obtained by contacting the silica-coated calcium carbonate particle of Embodiment [13] with an acidic composition.
- Embodiments of the present disclosure may employ the use of different or additional components compared to the materials illustrated below, such as other calcium carbonate particles, silicate-based compounds, acids and dispersants, as well as additional components and additives.
- Embodiments of the present disclosure may also employ the use of different process conditions than the conditions illustrated below for the preparation of silica-coated carbonate particles.
- silica-coated carbonate particles were prepared using different process conditions in order to identify factors that can be used to control and enhance the surface area, mesoporosity and acid resistance of the silica coating.
- Comparison studies below illustrate that processes of the present disclosure can produce silica-coated carbonate particles in which the surface area and mesoporosity of the silica coating are increased relative to the surface area and mesoporosity of the calcium carbonate particle core.
- Comparison studies also demonstrate that the magnitude of the increase in surface area, and the proportion of mesoporosity, can be controlled depending upon the identity of the acid and optional dispersant during the coating process.
- Example 1 The coating process used to prepare the silica-coated carbonate particles of Example 1 is illustrated below with reference to Table 1.
- the processes of Examples 2- 6 were performed in a manner identical to Example 1 , except that the conditions were modified as specified in Tables 2 and 3.
- An aqueous carbonate slurry was prepared by adding 90 grams of Socal® 31 to 600 mL of deionized water (150 g/L) in a 1 L beaker, and mechanically stirring the resulting mixture for about 5 minutes at ambient temperature ( ⁇ 23°C). To the stirring aqueous carbonate slurry at ambient temperature was added by dropwise addition ( ⁇ 10 mL/min) an aqueous sodium silicate solution ( ⁇ 1 :4 Na 2 0 / Si0 2 ) such that a resulting molar ratio of calcium carbonate to silica in the resulting carbonate-silicate slurry was 3: 1.
- the initial filter cake was washed with deionized water and then re-dispersed into 500 ml_ of deionized water, and re-filtered through a Buchner funnel— performing this process two times— to obtain a final filter cake.
- the final filter cake was then dried in an oven at 120°C for 12 hours, and milled with a hammer mill to obtain the silica-coated carbonate particles of Example 1.
- Silica shells were prepared by acidifying a mechanically-stirred aqueous dispersion of the silica-coated carbonate particles of Example 1 to a pH of 4 using hydrochloric acid, and allowing the acidified dispersion to stir for 1 hour. After this period, the resulting aqueous dispersion was filtered through a Bilchner funnel with vacuum assistance to obtain a filter cake of silica shells, which were then washed with
- deionized water re-filtered, and dried in an oven at 120°C for 12 hours.
- BET surface area refers to the area of the surface of the particles of the particulate calcium carbonate material with respect to unit mass, determined according to the BET method by the quantity of nitrogen adsorbed on the surface of the particles so as to form a monomolecular layer completely covering the surface (measurement according to the BET method, AFNOR standard X1 1 -621 and 622 or ISO 9277). In certain embodiments, BET surface area is determined in accordance with ISO 9277 or any method equivalent thereto.
- the BET surface area of the silica-coated carbonate particles of Example 1 (40.7 m 2 /g) was more than double the BET surface area of the PCC core particles (Reference Sample 1 ) (19.7 mm 2 /g). Therefore, it is demonstrated that a coating process of the present disclosure produces a silica coating having a significantly-higher surface area compared to the surface area of the calcium carbonate core particle.
- the BJH (Barrett-Joyner-Halenda) pore sizes of the starting PCC particles (Reference Sample 1 ) and the silica-coated carbonate particles of Example 1 were measure using the BJH model.
- the BJH model is derived from the same N 2 adsorption isotherm that is used by the BET surface area calculations (measurement according to the BET method, AFNOR standard X1 1 -6212 and 622 or ISO 9277).
- the BJH model is described in Barrett et al., Am. Chem. Soc., 73 (1951 ), pages 373-380, the contents of which are incorporated herein by reference.
- a Micromeritics TRISTAR 3000 and Micromeritics VACPREP 061 may, for example, by used.
- the samples may, for example, be degassed in an oven overnight at 105°C, followed by 180°C for 30 minutes under nitrogen flow and cooling for 30 minutes under nitrogen flow.
- the isotherm may, for example, be measured for relative pressures P/Po ranging from 0.05 to 0.98.
- Average pore size refers to pore diameter. Porous volume is cumulative and obtained by BJH on the desorption branch for pore sizes between 1.7 and 50 nm. The measured pore volumes versus pore diameters are shown in Figure 2.
- the silica-coated carbonate particles of Example 1 exhibited substantially greater mesoporosity compared to the starting PCC particles of Reference Sample 1. Whereas the starting PCC particles of Reference Sample 1 exhibited no maximum peak in the mesoporous range of 2-50 nm along the horizontal axis in Figure 2, the silica-coated carbonate particles of Example 1 exhibited a maximum peak at approximately 15 nm. Therefore, it is demonstrated that a coating process of the present disclosure produces a silica coating having a significantly higher degree of mesoporosity compared the mesoporosity of the calcium carbonate core particle.
- the starting PCC particles (Reference Sample 1 ) and the silica-coated carbonate particles of Example 1 were imaged using an SEM at a 25 kV level of magnification, and these samples were also imaged using energy- dispersive X-ray (EDX) mapping showing elementals distributions of both Ca and Si.
- EDX energy- dispersive X-ray
- the BET surface area of the silica-coated calcium carbonate particles of Example 3 (citric acid) ( ⁇ 75 m 2 /g) was much higher than the BET surface areas of the silica-coated particles of Example 1 (hydrochloric acid) ( ⁇ 40 m 2 /g) and Example 2 (carbon dioxide) ( ⁇ 25 m 2 /s).
- the increase in BET surface area for citric acid is even more pronounced for the corresponding silica shells, as shown in Figure 5. It is clear from this experimental data that citric acid is a more effective acid source in terms of producing a silica coating with increased surface area relative to the starting PCC particles of Reference Sample 1.
- the surface area of a silica-coated calcium carbonate particle formed with hydrochloric acid can be increased by including a dispersant during the formation of the silica coating.
- Example 3 Without being bound by any particular theory, it is believed that the profound improvement in mesoporosity that occurred with citric acid was used in Example 3 may be caused by an interaction between citric acid and the carbonate surface of PCC particles— in which the bound citrate may further interact with the silicate and thereby act as a spacer or template that leads to the generation of mesopores.
- the silica-coated particles of Examples 1 , 2 and 3 were imaged using a scanning electron microscope (SEM) at 25 kV and 50 kV levels of magnification.
- SEM scanning electron microscope
- the images of Figures 8(e) and 8(f) appear to show the presence of lamellar particles intermixed in the silica coating of Example 3 (citric acid), which are not present in the silica coatings of Example 1 (hydrochloric acid) and Example 2 (carbon dioxide).
- these lamellar particles may be composed of citrate compounds formed by the interaction of citric acid with the calcium carbonate of the PCC particle and/or by the interaction of the resulting citrate with silicates.
- the BET surface area of the silica-coated particles of Example 6 [citric acid + (NaP0 3 ) 6 ] (62.9 m 2 /g) was lower than the BET surface area of the silica-coated particles of Example 5 [citric acid] (75.4 m 2 /g)— indicating that the presence of the dispersant sodium hexamethphosphate actually reduces the surface area of the silica coating when citric acid is used as the acid source.
- Example 4 [HCI + (NaP03)6] exhibited a much sharper distribution of mesoporosity compared to the silica- coated particles of Example 1 [HCI]— indicating that the presence of the dispersant sodium hexamethphosphate greatly increases the mesoporosity of the silica coating when hydrochloric acid is used as the acid source.
- the presence of the dispersant sodium hexametaphosphate may cause the observed reduction in BET surface area for Example 6 by reducing the formation of the citrate compounds formed by the interaction of citric acid with the calcium carbonate of the PCC particle and/or by the interaction of the resulting citrate with silicates.
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Abstract
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Priority Applications (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| MX2020006137A MX2020006137A (en) | 2017-12-12 | 2018-12-07 | Preparation of silica-coated calcium carbonates with increased surface area and mesoporosity. |
| US15/733,214 US11872294B2 (en) | 2017-12-12 | 2018-12-07 | Preparation of silica-coated calcium carbonates with increased surface area and mesoporosity |
| CN201880079859.2A CN111448262A (en) | 2017-12-12 | 2018-12-07 | Preparation of silica-coated calcium carbonate with increased surface area and mesoporosity |
| JP2020532035A JP7223005B2 (en) | 2017-12-12 | 2018-12-07 | Preparation of silica-coated calcium carbonate with increased surface area and mesoporosity |
| BR112020011563-0A BR112020011563B1 (en) | 2017-12-12 | 2018-12-07 | SILICA COATED CALCIUM CARBONATE PARTICLE, PROCESS FOR ITS PREPARATION, ARTICLE OR COMPOSITION, AND HOLLOW SILICA SPHERE |
| CA3083393A CA3083393A1 (en) | 2017-12-12 | 2018-12-07 | Preparation of silica-coated calcium carbonates with increased surface area and mesoporosity |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP17306749.7A EP3498782B1 (en) | 2017-12-12 | 2017-12-12 | Preparation of silica-coated calcium carbonates with increased surface area and mesoporosity and silica hollow shells obtained from them |
| EP17306749.7 | 2017-12-12 |
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| Publication Number | Publication Date |
|---|---|
| WO2019115396A1 true WO2019115396A1 (en) | 2019-06-20 |
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| PCT/EP2018/084006 Ceased WO2019115396A1 (en) | 2017-12-12 | 2018-12-07 | Preparation of silica-coated calcium carbonates with increased surface area and mesoporosity |
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| Country | Link |
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| US (1) | US11872294B2 (en) |
| EP (1) | EP3498782B1 (en) |
| JP (1) | JP7223005B2 (en) |
| CN (1) | CN111448262A (en) |
| CA (1) | CA3083393A1 (en) |
| ES (1) | ES2837441T3 (en) |
| MX (1) | MX2020006137A (en) |
| WO (1) | WO2019115396A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2022543660A (en) * | 2019-08-09 | 2022-10-13 | イメルテック ソシエテ パル アクシオン サンプリフィエ | Precipitated calcium carbonate for odor reduction |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| CN111925731A (en) * | 2020-07-24 | 2020-11-13 | 中国科学院上海微系统与信息技术研究所 | Calcium carbonate/silicon dioxide core-shell type nano composite abrasive as well as preparation method and application thereof |
| CN112125515A (en) * | 2020-09-30 | 2020-12-25 | 泉州师范学院 | Method for preparing glass pumice based on waste materials |
| EP4292983A4 (en) * | 2021-02-12 | 2025-04-30 | Tohoku University | Method for producing core-shell porous silica particles, and core-shell porous silica particles |
| JP7076864B1 (en) | 2021-10-27 | 2022-05-30 | 株式会社白石中央研究所 | Calcium carbonate manufacturing method |
| CN115140755B (en) * | 2022-07-14 | 2023-11-10 | 桂林卓瑞食品原料有限公司 | Preparation method of porous calcium carbonate |
| KR102700335B1 (en) * | 2022-08-02 | 2024-08-30 | 동아대학교 산학협력단 | Carbonic acid/silicic acid hybrid inorganic particles and manufacturing method thereof |
| CN117326581B (en) * | 2023-09-29 | 2025-08-26 | 南宁师范大学 | A porous calcium carbonate with high specific surface area and its preparation method and application |
| CN117813265B (en) * | 2023-11-19 | 2024-11-12 | 广东邦普循环科技有限公司 | A heavy metal capture agent and its preparation method and application |
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| JP2000508709A (en) * | 1996-04-19 | 2000-07-11 | アマーシャム・ファルマシア・バイオテック・ユーケイ・リミテッド | Squarate dyes and their use in fluorescent sequencing |
| US6083317A (en) | 1996-11-05 | 2000-07-04 | Imerys Pigments, Inc. | Stabilized calcium carbonate composition using sodium silicate and one or more weak acids or alum and uses therefor |
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| CN1167752C (en) | 2002-04-05 | 2004-09-22 | 中山大学 | Process for preparing nano CaCo3/SiO2 core-shell structure particle |
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2017
- 2017-12-12 EP EP17306749.7A patent/EP3498782B1/en active Active
- 2017-12-12 ES ES17306749T patent/ES2837441T3/en active Active
-
2018
- 2018-12-07 US US15/733,214 patent/US11872294B2/en active Active
- 2018-12-07 JP JP2020532035A patent/JP7223005B2/en active Active
- 2018-12-07 CA CA3083393A patent/CA3083393A1/en active Pending
- 2018-12-07 WO PCT/EP2018/084006 patent/WO2019115396A1/en not_active Ceased
- 2018-12-07 MX MX2020006137A patent/MX2020006137A/en unknown
- 2018-12-07 CN CN201880079859.2A patent/CN111448262A/en active Pending
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| US20050244322A1 (en) * | 2002-12-30 | 2005-11-03 | Jianfeng Chen | Hollow-structured mesoporous silica material and preparation process |
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Also Published As
| Publication number | Publication date |
|---|---|
| JP7223005B2 (en) | 2023-02-15 |
| EP3498782A1 (en) | 2019-06-19 |
| BR112020011563A2 (en) | 2020-12-08 |
| US20210093518A1 (en) | 2021-04-01 |
| CN111448262A (en) | 2020-07-24 |
| MX2020006137A (en) | 2020-10-20 |
| ES2837441T3 (en) | 2021-06-30 |
| CA3083393A1 (en) | 2019-06-20 |
| US11872294B2 (en) | 2024-01-16 |
| EP3498782B1 (en) | 2020-09-16 |
| JP2021507863A (en) | 2021-02-25 |
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