Glass ionomer compositions and methods comprising water-miscible silane-treated nano-sized silica particles.

The glass ionomer composition with a polyacid and non-agglomerated nano-sized silica particles addresses mixing and strength issues, offering improved stability and mechanical properties for dental applications.

JP7813510B2Active Publication Date: 2026-02-13SOLVENTUM INTELLECTUAL PROPERTIES CO
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Patent Information

Application Number
JP2019563535
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-05-18
Filing Date
2018-05-09
Publication Date
2026-02-13
Estimated Expiration
2038-05-09

AI Technical Summary

Technical Problem

Conventional glass ionomer compositions face challenges in ease of mixing, mechanical strength, and aesthetics, limiting their use in dental applications, despite offering advantages like fluoride release and self-adhesion to teeth.

Method used

A hardenable glass ionomer composition comprising a first paste with a polyacid and a non-acid-reactive filler, and a second paste with an acid-reactive filler and non-agglomerated, water-miscible nano-sized silica particles coated with silane, which are essentially resin-free, allowing for improved mixing and mechanical strength.

Benefits of technology

The composition provides enhanced storage stability and mechanical strength comparable to traditional powder/liquid GI compositions, while maintaining ease of mixing and aesthetics, facilitating easier application and curing.

✦ Generated by Eureka AI based on patent content.

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Abstract

Disclosed are hardenable glass ionomer compositions including a first paste and a second paste, as well as methods of using the disclosed compositions. The first paste includes water, a polyacid, and a non-acid-reactive filler. The second paste includes water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles having at least 25% surface coverage of the particles with silane. The compositions are essentially resin-free. In some embodiments, the water content of the first paste and the second paste of the paste / paste GI compositions disclosed herein is less than 20% by weight, based on the total weight of the composition.
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Description

[Background technology]

[0001] Conventional glass ionomer (GI) compositions are dental materials composed of an acid-reactive filler, such as a fluoroaluminosilicate (FAS) glass, a polyacid, such as a water-soluble polymer with carboxylic acid groups, and water. The acid groups in the polyacid can react with metal cations from the acid-reactive filler in a "setting" reaction to form a matrix. When FAS glass is used as the acid-reactive filler, fluoride ions are released as a by-product. Many conventional GI compositions also incorporate complexing agents, such as tartaric acid, to retard the setting reaction. While the reactivity of GI compositions can be improved by selecting a specific acid-reactive filler (e.g., composition and / or particle size distribution), a specific polyacid (e.g., acrylic, maleic, and / or itaconic acid-based composition and acid group content), and the loading level of the acid-reactive filler, the selection of components has not significantly improved the ease of mixing the components or the strength and aesthetics of the set composition.

[0002] Both composite materials and traditional GI compositions can be used as restorative materials. However, GI compositions can offer advantages over composite materials, such as fluoride release, reduced sensitivity, and self-adhesion to teeth. However, their poor mechanical properties and less desirable aesthetics compared to composite materials have limited the use of GI compositions in many applications. Furthermore, traditional powder / liquid GI compositions can be difficult to mix.

[0003] There is a continuing need for improved GI dental materials. Summary of the Invention

[0004] In one aspect, the present disclosure provides a hardenable glass ionomer composition comprising a first paste and a second paste. In one embodiment, the hardenable glass ionomer composition comprises the first paste comprising water, a polyacid, and a non-acid-reactive filler, and the second paste comprising water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles having at least 25% surface coverage of the particles with silane, wherein the composition is essentially resin-free.

[0005] In another aspect, the present disclosure provides a device for storing the curable glass ionomer composition described herein, comprising a first paste comprising water, a polyacid, and a non-acid-reactive filler, and a second paste comprising water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles having at least 25% surface coverage of the particles with silane, wherein the composition is essentially resin-free. The device comprises a first compartment containing the first paste and a second compartment containing the second paste. In some embodiments, both the first and second compartments each independently comprise a nozzle or interface for receiving an entrance orifice of a static mixing tip.

[0006] In another aspect, the present disclosure provides a method for preparing a cured composition.

[0007] In one embodiment, the method includes preparing a hardenable glass ionomer composition as described herein, comprising a first paste comprising water, a polyacid, and a non-acid-reactive filler, and a second paste comprising water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles having at least 25% surface coverage of the particles with silane, wherein the composition is essentially resin-free; combining the first and second pastes to form a mixture; and curing the mixture to form a hardened composition.

[0008] In another embodiment, the method includes preparing a device for storing the hardenable glass ionomer composition described herein, the device comprising a first paste comprising water, a polyacid, and a non-acid-reactive filler, and a second paste comprising water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles, the second paste comprising water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles, the particle surface coverage by silane being at least 25%, wherein the composition is essentially resin-free, the device comprising a first compartment containing the first paste and a second compartment containing the second paste; combining the first paste and the second paste to form a mixture; and curing the mixture to form a hardened composition.

[0009] The settable paste / paste GI compositions disclosed herein, due to, for example, their low moisture content, may advantageously have improved storage stability compared to known paste / paste GI compositions while maintaining the mechanical strength (e.g., flexural strength and fracture toughness) typical of set compositions derived from known paste / liquid GI compositions.

[0010] As used herein, the phrase "substantially crystalline inorganic fibers" refers to inorganic fibers that have minimal amorphous characteristics (i.e., are substantially non-amorphous) as evidenced by sharp X-ray diffraction (XRD) peaks. The phrase "substantially crystalline inorganic fibers" is intended to exclude glass fibers and glass ceramic fibers. In some embodiments, substantially crystalline inorganic fibers have a crystallinity index of at least 0.05, and in certain embodiments, a crystallinity index of at least 0.1, as measured by the XRD Crystallinity Index Test Method described herein. The crystallinity index is a parameter used to characterize the level of crystallinity in an inorganic fiber sample. Briefly, the XRD Crystallinity Index Test Method further described herein uses tungsten powder as an internal standard. An internal or mass standard refers to a material incorporated into a sample being evaluated to measure the crystallinity index in order to normalize X-ray intensity values ​​based on the amount present in the sample. Each inorganic fiber sample to be tested is mixed with tungsten powder in a 4:1 weight ratio. Each inorganic fiber sample preparation is mixed as an ethanol slurry and then dried. Two sample preparations are performed for each inorganic fiber sample to be tested. Each sample preparation is then scanned six times by XRD. The crystallinity index is the ratio of the peak area observed for the crystalline phase diffraction peak of the analyte within the scattering angle range of 14 to 46 degrees (2-theta) to the (110) diffraction peak area for the tungsten internal standard.

[0011] As used herein, "dental composition" or "composition for use in dentistry" or "composition to be used in the dental field" refers to any composition that can be used in the dental field. In this regard, the composition should not be harmful to the patient's health and, therefore, should not contain harmful or toxic components that can migrate out of the composition. Dental compositions are typically hardenable compositions that can harden within a time frame of about 30, 20, or 10 minutes under ambient conditions, including temperatures ranging from about 15 to 50°C or about 20 to 40°C. Higher temperatures are not recommended because they may cause pain to the patient and may be harmful to the patient's health. Dental compositions are typically provided to practitioners in similarly small volumes, i.e., in the range of about 0.1 to about 100 mL, about 0.5 to about 50 mL, or about 1 to about 30 mL. Accordingly, the storage capacity of useful packaging devices is within these ranges.

[0012] As used herein, "polymerizable component" refers to any component that can be cured or hardened, for example by heating, to cause polymerization or chemical crosslinking.

[0013] As used herein, the term "resin" refers to a polymerizable component containing one, two, three, or more polymerizable groups. Exemplary polymerizable groups include, but are not limited to, unsaturated organic groups such as vinyl groups, as found in (methyl)acrylate groups. Resins can often be cured by radiation-induced polymerization or crosslinking, or by using redox initiators.

[0014] As used herein, the term "monomer" refers to any chemical compound that can be characterized by a chemical formula having a polymerizable group (e.g., a (meth)acrylate group) that can be polymerized into an oligomer or polymer to increase molecular weight. The molecular weight of a monomer can typically be calculated from a given chemical formula.

[0015] As used herein, "(meth)acryl" is a contraction for "acryl" and / or "methacryl." For example, a "(meth)acryloxy" group is a contraction for either an acryloxy group (i.e., CH=CH-C(O)-O-) and / or a methacryloxy group (i.e., CH=C(CH)-C(O)-O-).

[0016] As used herein, the term "initiator" refers to a substance that can start or cause the curing process of a resin or monomer, for example, by a redox / auto-cure chemical reaction, by a radiation-induced reaction, or by a heat-induced reaction.

[0017] As used herein, the term "powder" refers to a dry bulk solid consisting of many very fine particles that can flow freely when shaken or tilted.

[0018] As used herein, the term "particle" refers to a solid substance having a geometrically determinable shape. Particles can typically be analyzed, for example, in terms of grain size or diameter.

[0019] The average particle size of a powder can be obtained from a variety of techniques, including laser diffraction particle size analysis. A cumulative curve of particle size distribution can be obtained and defined as the arithmetic mean of the measured particle sizes in a particular powder mixture. Each measurement can be made using available diffraction laser particle size analyzers, such as the Beckman Coulter LS 13 320 Laser Diffraction Particle Size Analyzer, or available granulometers, such as the CILAS Laser Diffraction Particle Size Analysis Instrument.

[0020] As used herein, with respect to particle size measurements, the term "dX" (μm) means that X% of the particles in the analyzed volume have a diameter below the stated value in micrometers. For example, a particle size value of 100 μm (d50) means that 50% of the particles in the analyzed volume have a diameter below 100 μm.

[0021] As used herein, the term "paste" refers to a soft, viscous mass of solids dispersed in a liquid.

[0022] As used herein, the term "viscous" means a viscosity of about 3 Pa (at 23°C). * Refers to materials with a viscosity greater than s.

[0023] As used herein, the term "liquid" refers to any solvent or liquid capable of at least partially dispersing or dissolving ingredients at ambient conditions (e.g., 23°C). A liquid typically has a viscosity of about 10 Pa. * Less than 8 Pa or about 8 Pa * Less than 6 Pa or about 6 Pa * It has a viscosity below s.

[0024] As used herein, "glass ionomer cement" or "GIC" refers to a cement that can be cured or hardened by the reaction between an acid-reactive glass and a polyacid in the presence of water.

[0025] As used herein, "resin modified glass ionomer cement" or "RM-GIC" refers to a GIC that further comprises a resin, an initiator system, typically 2-hydroxylethyl methacrylate (HEMA).

[0026] As used herein, "conventional glass ionomer cement or restorative material" refers to a glass ionomer cement or restorative material that is resin-free or essentially resin-free.

[0027] As used herein, a composition is "essentially free" or "substantially free" of a particular component (e.g., a resin) if the composition does not contain that component as an essential feature. Thus, the component is not intentionally added to the composition, either by itself or in combination with other components or ingredients of other components.

[0028] A composition that is essentially free of a particular component (e.g., a resin) typically contains the component in an amount of less than about 5 wt %, less than about 1 wt %, less than about 0.5 wt %, or less than about 0.01 wt %, based on the total weight of the composition or material. The composition may not contain the component at all. However, sometimes the presence of a small amount of the component cannot be avoided, for example, due to impurities contained in the raw materials used.

[0029] As used herein, "acid-reactive filler" refers to a filler that can chemically react in the presence of a polyacid to lead to a curing reaction.

[0030] As used herein, "non-acid-reactive filler" refers to a filler that, when mixed with a polyacid, either (i) shows no chemical reaction within 6 minutes, or (ii) shows only a reduced (e.g., delayed) curing reaction.

[0031] To distinguish acid-reactive fillers from non-acid-reactive fillers, the following test can be or will be performed: A composition is prepared by mixing the first and second parts in a mass ratio of 1:3, where the first part is 43.6 wt% poly(acrylic acid-co-maleic acid) (Mw: approximately 20,000±3,000), 47.2 wt% water, 9.1 wt% tartaric acid, and 0.1 wt% benzoic acid, and the second part is 100 wt% filler to be analyzed.

[0032] A filler is characterized as non-acid reactive if, within 6 minutes after preparation of the composition, the shear stress is less than 50,000 Pa as measured by performing oscillatory measurements with a rheometer using the following conditions: 8 mm plate, 0.75 mm gap, 28°C, frequency 1.25 Hz, and deformation 1.75%.

[0033] As used herein, "nanosilica" is used synonymously with "nano-sized silica particles" and refers to silica particles having an average size of up to 200 nm. When used herein with respect to spherical particles, "size" refers to the diameter of the particle. When used herein with respect to non-spherical particles, "size" refers to the longest dimension of the particle.

[0034] As used herein, the term "silica sol" refers to a stable dispersion of discrete amorphous silica particles in a liquid, typically water.

[0035] As used herein, the terms "pyrogenic silica" and "fumed silica" are used interchangeably and refer to amorphous silica formed in the gas phase. Pyrogenic silica may contain, for example, hundreds of primary particles fused into branched, three-dimensional aggregates. Examples of pyrogenic silica include products available from DeGussa AG, Hanau, Germany, available under the trade names AEROSIL OX-50, AEROSIL-130, AEROSIL-150, and AEROSIL-200, and CAB-O-SIL M5 available from Cabot Corp., Tuscola, Ill.

[0036] As used herein, "non-pyrogenic silica" refers to amorphous silica that is not formed in the gas phase. Examples of non-pyrogenic silica include precipitated silica and silica gel.

[0037] As used herein, "silanized" means that the particle surface has been modified by the application of a silane.

[0038] As used herein, "agglomerated silica" describes an association of primary silica particles, often bound together by, for example, residual chemical treatment, covalent chemical bonds, or ionic chemical bonds. Complete breakdown of agglomerated silica into smaller particles can be difficult to achieve, but limited or incomplete breakdown may be observed under conditions including, for example, the shear forces encountered during dispersion of agglomerated silica in a liquid.

[0039] As used herein, "cation-reduced aluminosilicate glass" refers to glass in which the cation content in the surface region of the glass particle is lower than in the interior region of the glass particle. Such glasses typically react much more slowly than typical acid-reactive fillers when contacted with aqueous polyacrylic acid. Examples of non-acid-reactive fillers include quartz glass or strontium oxide-based glasses. Further examples are described herein. Cation reduction can be achieved by surface treatment of the glass particles. Useful surface treatments include, but are not limited to, acid washing (e.g., treatment with phosphoric acid), treatment with phosphates, treatment with chelating agents such as tartaric acid, and treatment with silanes or acidic or basic silanol solutions.

[0040] As used herein, the terms "polyacid" and / or "polyalkenoic acid" refer to a polymer having a plurality (e.g., more than 10, or more than 20, or more than 50) of acidic repeat units, i.e., the acidic repeat units are attached or pendant to the polymer backbone.

[0041] As used herein, the phrase "complexing agent" refers to a small molecule reagent capable of forming a complex with a metal ion, such as calcium and / or magnesium. An exemplary complexing agent is tartaric acid.

[0042] As used herein, the terms "hardenable" and / or "curable" refer to compositions that can be hardened or hardened by carrying out a glass ionomer cement reaction without the need for an additional curing system, such as, for example, chemical crosslinking and / or radiation-induced polymerization or crosslinking.

[0043] As used herein, the phrase "ambient conditions" typically refers to the conditions to which the paste / paste GI compositions described herein are exposed during storage and handling. Ambient conditions may include, for example, a pressure of about 900 mbar to about 1100 mbar, a temperature of about -10°C to about 60°C, and / or a relative humidity of about 10% to about 100%. In a laboratory, ambient conditions are typically adjusted to about 23°C and about 1 atmosphere (e.g., 0.95 to 1.05 atmospheres). In the dental and orthodontic fields, ambient conditions are reasonably understood to include, for example, a pressure of about 950 mbar to about 1050 mbar, a temperature of about 15°C to about 40°C, and / or a relative humidity of about 20% to about 80%.

[0044] The term "comprises" and variations thereof do not have a limiting meaning when these terms appear in the specification and claims. Such terms are understood to mean the inclusion of a recited step or element, or group of steps or elements, but not the exclusion of any other step or element, or group of steps or elements. "Consisting of" means inclusive of and limited to whatever follows the phrase "consisting of." Thus, the phrase "consisting of" indicates that the recited elements are necessary or mandatory, and that no other elements may be present. "Consisting essentially of" means including any elements listed after the phrase, and is limited to other elements that do not interfere with or contribute to the action or function specified in this disclosure for those recited elements. Thus, the phrase "essentially consisting of" means that the recited elements are necessary or mandatory, but that other elements are optionally included and may or may not be present depending on whether they materially affect the action or function of the recited elements.

[0045] The words "preferred" and "preferably" refer to embodiments of the present disclosure that may offer certain benefits, under certain circumstances. However, other embodiments may also be preferred, under the same or other circumstances. Furthermore, the recitation of one or more preferred embodiments does not imply that other embodiments are not useful, and is not intended to exclude other embodiments from the scope of the present disclosure.

[0046] In this application, terms such as "a," "an," and "the" are not intended to refer only to a singular entity, but are intended to include the general class of which a particular example may be used for illustration. The terms "a," "an," and "the" are used interchangeably with the term "at least one."

[0047] The phrases "at least one of" and "comprises at least one of" following a list refer to any one of the items in the list and any combination of two or more items in the list.

[0048] As used herein, the term "or" is generally used in its ordinary sense including "and / or" unless the content clearly dictates otherwise.

[0049] The term "and / or" means one or all of the listed elements or a combination of any two or more of the listed elements.

[0050] Also, all numbers herein are modified by the term "about," and in certain cases, by the term "exactly." When used herein with respect to a measured quantity, the term "about" refers to the variation in the measured quantity that would be expected by one of ordinary skill in the art using a degree of care commensurate with the purpose of the measurement and the precision of the measuring equipment used. Also, when used herein with respect to a measured quantity, the term "approximately" refers to the variation in the measured quantity that would be expected by one of ordinary skill in the art using a degree of care commensurate with the purpose of the measurement and the precision of the measuring equipment used.

[0051] Also herein, the recitations of numerical ranges by endpoints include all numbers subsumed within that range, and the endpoints thereof (eg, 1 to 5 includes 1, 1.5, 2, 2.75, 3, 3.80, 4, 5, etc.).

[0052] The above summary of the present disclosure is not intended to describe each disclosed embodiment or every implementation of the present disclosure. The following description more particularly exemplifies exemplary embodiments. In several places throughout this application, guidance is provided by listing examples, which examples can be used in various combinations. In each instance, the recited listing serves only as a representative group and should not be interpreted as an exclusive listing. DETAILED DESCRIPTION OF THE INVENTION

[0053] Many powder / liquid GI compositions are difficult to mix due to their high powder / liquid ratio. When faced with such mixing difficulties, dentists may lower the powder / liquid ratio than recommended by the manufacturer to improve mixing properties. A lower powder / liquid ratio typically improves hand mixing properties but reduces the mechanical strength of the hardened composition.

[0054] Disclosed herein are paste / paste GI compositions that allow for easier hand mixing and more reproducible and effective component application. Further disclosed herein are paste / paste GI compositions, wherein the second paste comprises non-agglomerated, water-miscible nano-sized silica particles having at least 25% particle surface coverage with silane. A paste comprising non-agglomerated, water-miscible nano-sized silica particles having at least 25% particle surface coverage with silane results in a composition that remains sufficiently workable or mixable to form a hardenable glass ionomer composition after storage at room temperature for at least 1 month, at least 3 months, or at least 6 months.

[0055] Known paste / paste GI compositions typically require a higher water content than comparable powder / liquid GI compositions, and higher water content often results in reduced mechanical strength of the cured composition. However, for paste / paste GI compositions disclosed herein, where the second paste comprises non-agglomerated, water-miscible nano-sized silica particles having at least 25% particle surface coverage with silane, the mechanical strength of the cured GI composition has been found to be comparable to, and in some cases superior to, the mechanical strength of cured conventional powder / liquid GI compositions. Furthermore, for paste / paste GI compositions disclosed herein, where the second paste comprises non-agglomerated, water-miscible nano-sized silica particles having at least 25% particle surface coverage with silane, the ease of mixing observed with other known paste / paste GI compositions can be maintained.

[0056] Disclosed herein are hardenable glass ionomer compositions comprising a first paste and a second paste. The first paste comprises water, a polyacid, and a non-acid-reactive filler. The second paste comprises water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles having at least 25% particle surface coverage with silane. In certain embodiments, the GI composition is essentially resin-free or resin-free (e.g., a conventional GI composition). In some embodiments, the water content of the first and second pastes of the paste / paste GI compositions disclosed herein is less than 20 wt. % based on the total weight of the composition. In some embodiments, the water content of the first paste is less than 20 wt. % based on the total weight of the first paste, and the water content of the second paste is less than 20 wt. % based on the total weight of the second paste.

[0057] Polyacid The first paste of the paste / paste GI compositions disclosed herein comprises a polyacid. A wide variety of polyacids can be used in the paste / paste GI compositions disclosed herein. In some embodiments, the polyacid has a molecular weight sufficient to provide good material properties for the glass ionomer composition as well as good storage, handling, and mixing characteristics.

[0058] In one embodiment, the polyacid can be characterized by at least one or more or all of the following parameters: being solid (at 23° C.) and having a molecular weight (Mw) of about 2,000 to about 250,000 or about 5,000 to about 100,000 (e.g., as assessed against a polyacrylic acid sodium salt standard using gel permeation chromatography).

[0059] If the molecular weight of the polyacid is too high, it may be difficult to achieve a workable paste consistency when mixing the compositions contained in the GI compositions described herein. Furthermore, the composition may be difficult to prepare. In addition, the resulting mixture or composition may be too sticky (e.g., it may adhere to dental instruments used in application).

[0060] If the molecular weight of the polyacid is too low, the viscosity of the resulting paste may be too low, resulting in reduced mechanical strength.

[0061] Typically, a polyacid is a polymer having multiple acidic repeating units.

[0062] The polyacids useful in the paste / paste GI compositions disclosed herein are substantially free of polymerizable groups or are free of polymerizable groups.

[0063] Useful polyacids need not be completely water-soluble, but typically they are at least sufficiently water-miscible so as not to precipitate substantially when combined with other aqueous components.

[0064] Polyacids are curable, for example, in the presence of an acid-reactive filler and water, but preferably do not contain ethylenically unsaturated groups. That is, polyacids are polymers obtained by polymerizing unsaturated acids. However, due to the present manufacturing method, polyacids may still contain unavoidable traces of free monomers (e.g., up to 1, 0.5, or 0.3% by weight based on the amount of monomers used). Typically, the unsaturated acid is an oxyacid (i.e., an oxygen-containing acid) of carbon, sulfur, phosphorus, or boron. More typically, it is an oxyacid of carbon. Useful polyacids include, for example, polyalkenoic acids, such as homopolymers and copolymers of unsaturated mono-, di-, or tricarboxylic acids.

[0065] Polyalkenoic acids can be prepared by the homopolymerization and copolymerization of unsaturated aliphatic carboxylic acids such as acrylic acid, methacrylic acid, itaconic acid, maleic acid, glutaconic acid, aconitic acid, citraconic acid, mesaconic acid, fumaric acid, and tiglic acid.

[0066] Useful polyacids also include alternating copolymers of maleic acid and ethylene (eg, in a 1:1 molar ratio).

[0067] Useful polyacids are also described in the following references: US Pat. Nos. 4,209,434 (Wilson et al.) and 4,360,605 (Schmitt et al.).

[0068] Useful polyacids are also available as aqueous solutions in the liquid components of products such as those available from 3M ESPE under the trade name KETAC FIL PLUS HANDMIX or those available from GC Dental Industrial Corp. of Tokyo, Japan under the trade name FUJI IX GP HANDMIX.

[0069] The amount of polyacid used in the paste / paste GI compositions disclosed herein should be sufficient to react with the acid-reactive filler and provide an ionomer composition with the desired cure characteristics.

[0070] In certain embodiments, the polyacid is present in the first paste in an amount of at least 3 wt%, at least 5 wt%, or at least 10 wt%, based on the total weight of the first paste. In certain embodiments, the polyacid is present in the first paste in an amount of up to 70 wt%, 60 wt%, or 50 wt%, based on the total weight of the first paste. In certain embodiments, the polyacid is present in the first paste in an amount of 3 wt% to 70 wt%, 5 wt% to 60 wt%, or 10 wt% to 50 wt%, based on the total weight of the first paste.

[0071] If the amount of polyacid is too high, it may be difficult to achieve a workable paste consistency when mixing the compositions contained in the paste / paste GI compositions disclosed herein. Furthermore, the composition may be difficult to prepare. In addition, the resulting mixture or composition may be too sticky (e.g., it may adhere to dental instruments used for application).

[0072] If the amount of polyacid is too low, it may be difficult to achieve a workable paste consistency upon mixing the components contained in the paste / paste GI compositions disclosed herein, and it may be difficult to achieve the desired mechanical properties.

[0073] Non-acid-reactive filler The first paste of the paste / paste GI compositions disclosed herein includes a non-acid-reactive filler. The second paste of the paste / paste GI compositions disclosed herein also includes a non-acid-reactive filler that is the same as or different from the non-acid-reactive filler in the first paste. The non-acid-reactive filler can include, for example, particles and / or fibers (e.g., substantially crystalline inorganic fibers as described later in this specification).

[0074] A non-acid-reactive filler is a filler that, when combined with a polyacid in the presence of water, either (i) does not cure at all in the glass ionomer cement reaction, or (ii) exhibits only a delayed setting reaction.

[0075] A wide variety of non-acid-reactive fillers can be used in the paste / paste GI compositions disclosed herein. In certain embodiments, the non-acid-reactive filler is an inorganic filler. In certain embodiments, the non-acid-reactive filler is non-toxic and suitable for use in the human oral cavity. The non-acid-reactive filler can be radiopaque or radiolucent. The particle surface of the non-acid-reactive filler can optionally be surface-treated (e.g., with a silane).

[0076] In certain embodiments, the non-acid-reactive filler can include quartz, nitride, kaolin, borosilicate glass, strontium oxide-based glass, barium oxide-based glass, silica, alumina, titania, zirconia, or combinations thereof.

[0077] In certain embodiments, the non-acid-reactive filler can include a metal oxide such as alumina, silica, zirconia, titania, or a combination thereof. In some embodiments, the metal oxide can further include a modifier or dopant such as sodium oxide, magnesium oxide, lithium oxide, calcium oxide, strontium oxide, barium oxide, yttrium oxide, ytterbium oxide, lanthanum oxide, zinc oxide, iron oxide, manganese oxide, bismuth oxide, or a combination thereof.

[0078] In certain embodiments, the non-acid-reactive filler has an average particle size of 0.005 μm to 20 μm. In some embodiments, the non-acid-reactive filler has an average particle size of 0.01 μm to 10 μm. In certain embodiments, the non-acid-reactive filler has a d50 of less than 10 μm. In embodiments in which both the first paste and the second paste include a non-acid-reactive filler, the average particle size of the non-acid-reactive filler in the second paste can be the same as or different from the average particle size of the non-acid-reactive filler in the first paste.

[0079] Exemplary non-acid-reactive fillers are further described, for example, in WO 2017 / 015193(A1) (Jahns et al.).

[0080] In certain embodiments, the non-acid-reactive filler can be provided as a dispersion or sol of particles in a liquid (e.g., water). If the filler is provided as an aqueous dispersion or sol, the amount of water in the aqueous dispersion or sol must be taken into account when calculating or measuring the amount of water and filler in the composition.

[0081] In certain embodiments, as discussed further herein below, the non-acid-reactive filler can include non-agglomerated, water-miscible nano-sized silica particles having at least 25% surface coverage of the particles with silane.

[0082] For the paste / paste GI compositions disclosed herein, the first paste comprises at least 10 wt. % non-acid-reactive filler, at least 25 wt. % non-acid-reactive filler, or at least 35 wt. % non-acid-reactive filler, based on the total weight of the first paste. For the paste / paste GI compositions disclosed herein, the first paste comprises at most 80 wt. % non-acid-reactive filler, at most 70 wt. % non-acid-reactive filler, or at most 60 wt. % non-acid-reactive filler, based on the total weight of the first paste.

[0083] For paste / paste GI compositions disclosed herein, the second paste comprises a non-acid-reactive filler, which may comprise, among other fillers, non-agglomerated, water-miscible nano-sized silica particles having at least 25% particle surface coverage with silane. The second paste comprises at least 1 wt. % non-acid-reactive filler, at least 3 wt. % non-acid-reactive filler, or at least 5 wt. % non-acid-reactive filler, based on the total weight of the second paste. For paste / paste GI compositions disclosed herein, the second paste comprises at most 50 wt. % non-acid-reactive filler, at most 40 wt. % non-acid-reactive filler, or at most 30 wt. % non-acid-reactive filler, based on the total weight of the second paste.

[0084] nano-sized silica particles In the glass ionomer compositions disclosed herein, the second paste comprises non-agglomerated, water-miscible nano-sized silica particles having a particle surface coverage of at least 25% with silane. In some embodiments, the non-agglomerated nano-sized silica particles are substantially free of fumed silica (i.e., pyrogenic silica). However, pyrogenic fillers (e.g., fumed silica) can be added to the dental composition as an optional additive.

[0085] A wide variety of non-agglomerated nano-sized silica particles can be surface treated as described herein. In some embodiments, the non-agglomerated nano-sized silica particles are available as silica sols. In certain embodiments, the starting silica sol is NALCO 2329 or LEVASIL 50 / 50.

[0086] Exemplary non-agglomerated nano-sized silica particles include those available under the product name NALCO COLLOIDAL SILICAS from Nalco Chemical Co. (Naperville, Ill.) (e.g., NALCO products 1040, 1042, 1050, 1060, 2327, and 2329), those available from Nissan Chemical America Company, Houston, Texas (e.g., SNOWTEX-ZL, -OL, -O, -N, -C, -20L, -40, and -50), those available from Admatechs Co., Ltd., Japan (e.g., SX009-MIE, SX009-MIF, SC1050-MJM, and SC1050-MLV), and Grace GmbH & Co. KG, Worms, Germany (e.g., those available under the LUDOX product name, such as P-W50, P-W30, P-X30, P-T40, and P-T40AS), those available from Akzo Nobel Chemicals GmbH, Leverkusen, Germany (e.g., those available under the LEVASIL product name, such as 50 / 50, 100 / 45, 200 / 30%, 200A / 30, 200 / 40, 200A / 40, 300 / 30, and 500 / 15), and those available from Bayer Material Science AG, Leverkusen, Germany (e.g., those available under the DISPERCOLL S product name, such as 5005, 4510, 4020, and 3030). Further exemplary fillers, including non-agglomerated nano-sized silica particles, and methods of preparing the fillers are disclosed, for example, in WO 01 / 30307 (Craig et al.).

[0087] In embodiments where the dental composition further comprises a sintered filler (e.g., fumed silica), a wide variety of sintered fillers, such as fumed silica, can be used. Exemplary fumed silicas include, for example, AEROSIL series OX-50, -130, -150, and -200, products sold under the trade name Aerosil R8200, available from Degussa AG (Hanau, Germany), CAB-O-SIL M5 available from Cabot Corp. (Tuscola, Ill.), and HDK types, such as HDK-H 2000, HDK H15, HDK H18, HDK H20, and HDK H30, available from Wacker.

[0088] In one embodiment, the non-aggregated nano-sized silica particles have an average particle size of at most about 200 nm, in some embodiments at most about 150 nm, and in specific embodiments at most about 120 nm. In one embodiment, the non-aggregated nano-sized silica particles have an average particle size of at least about 20 nm, in some embodiments at least about 50 nm, and in specific embodiments at least about 70 nm. These measurements can be based on TEM (transmission electron microscopy) methods, where a population of particles is analyzed to obtain the average particle size.

[0089] An exemplary method for measuring particle size can be described as follows.

[0090] Approximately 80 nm thick samples are placed on 200 mesh copper grids with carbon-stabilized Formvar substrates (SPI Supplies, a division of Structure Probe, Inc., West Chester, PA). Transmission electron micrographs (TEM) are obtained using a JEOL 200CX (JEOL, Ltd. of Akishima, Japan, and sold by JEOL USA, Inc.) at 200 Kv. Population sizes of approximately 50-100 particles can be measured, and the average diameter can be determined.

[0091] In one embodiment, the non-agglomerated nano-sized silica particles have an average surface area of ​​at least about 15 m 2 / g, and in some embodiments, at least about 30 m 2 / g.

[0092] In some embodiments, the non-aggregated nano-sized silica particles used in the dental pastes disclosed herein are substantially spherical and substantially non-porous. In certain embodiments, the silica can be essentially pure, while in other embodiments, the silica can contain small amounts of stabilizing ions, such as ammonium ions and alkali metal ions.

[0093] Non-aggregating nano-sized silica particles can be surface-treated with silane, which can make the treated particles water-miscible. Surface-treating nano-sized silica particles before filling them into dental materials can make them more stable and dispersible in pastes. Preferably, the surface treatment stabilizes the nano-sized silica particles so that they disperse well in pastes, resulting in a substantially uniform composition. Exemplary methods for surface-treating nano-sized silica particles to dry them are described in U.S. Patent No. 6,899,948 (B2) (Zhang et al.) and European Patent No. 0368657 (A2) (Okada et al.).

[0094] In certain embodiments, the silane is essentially free of unsaturated polymerizable groups.

[0095] In certain embodiments, the silane has the formula: (R 1 O)3-Si-(CH2) n -(OR 2 ) x -OR 3 [In the formula, R 1 is a C1-C3 alkyl group, and R 2 is a C2-C3 alkylene group, and R 3 is a C1-C10 alkyl group, n=2-6, and x=0-200. 2represents -CH2CH2-. In certain embodiments, n=3.

[0096] In other particular embodiments, the silane has the formula: (R 1 O)3-Si-(CH2) n -(OR 2 ) x -OR 3 [In the formula, R 1 is a C1-C3 alkyl group, and R 2 is a C2-C3 alkylene group, and R 3 is 2,3-epoxypropyl, n=2 to 6, and x=0 to 200.

[0097] Exemplary silanes include, for example, SILQUEST A-1230 available from Momentive Performance Materials (Waterford, NY), 2-[methoxy-(polyethyleneoxy) 6-9 propyl]trimethoxysilane, 2-[methoxy-(polyethyleneoxy) 9-12 [propyl]trimethoxysilane, and [3-(2,3-epoxypropoxy)propyl]trimethoxysilane (i.e., 3-glycidoxypropyltrimethoxysilane).

[0098] The non-agglomerated, water-miscible nano-sized silica particles have a particle surface coverage of at least 25% with the silane. In some embodiments, the non-agglomerated, water-miscible nano-sized silica particles have a particle surface coverage of at least 50% with the silane. In certain embodiments, the non-agglomerated, water-miscible nano-sized silica particles have a particle surface coverage of at least 75% with the silane. In some specific embodiments, the non-agglomerated, water-miscible nano-sized silica particles have a particle surface coverage of at least 95% with the silane.

[0099] The ratio of silane to silica sol to obtain "100% theoretical coverage" can be calculated using Equation 1 shown below.

number

[0100] For example, if Levasil 50 / 50 is used as the silica sol and 3-glycidoxypropyltrimethoxysilane is used as the silane, the ratio to obtain "100% theoretical coverage" is calculated as follows:

number

[0101] In an exemplary method, calculated amounts of silica sol and silane can be added to a container (e.g., a glass vial or glass jar) and the solution allowed to react. While reaction temperatures and times can vary widely as desired, exemplary reaction conditions can be 80-85°C for 17 hours. Once the reaction is complete, the silane-treated silica sol can be used as is.

[0102] For the paste / paste GI compositions disclosed herein, the second paste comprises non-agglomerated, water-miscible nano-sized silica particles having at least 25% particle surface coverage with silane. The second paste comprises at least 1 wt%, at least 3 wt%, or at least 5 wt%, based on the total weight of the second paste, of non-agglomerated, water-miscible nano-sized silica particles having at least 25% particle surface coverage with silane. For the paste / paste GI compositions disclosed herein, the second paste comprises up to 50 wt%, up to 40 wt%, or up to 30 wt%, based on the total weight of the second paste, of non-agglomerated, water-miscible nano-sized silica particles having at least 25% particle surface coverage with silane.

[0103] Acid-reactive filler The second paste of the paste / paste GI composition disclosed herein comprises an acid-reactive filler.

[0104] A wide variety of acid-reactive fillers can be used in the paste / paste GI compositions disclosed herein. Acid-reactive fillers are capable of undergoing a glass ionomer cement reaction with polyacids and water.

[0105] Useful acid-reactive fillers include, for example, metal oxides, metal hydroxides, hydroxyapatite, acid-reactive glasses, and combinations thereof. In certain embodiments, acid-reactive fillers include, for example, inorganic fillers selected from the group consisting of basic metal oxides, metal hydroxides, hydroxyapatite, aluminosilicate glasses, fluoroaluminosilicate glasses, glasses having a Si / Al weight percent ratio of less than 1.5, and combinations thereof. Useful metal oxides include, for example, calcium hydroxide, magnesium hydroxide, strontium hydroxide, and mixtures thereof.

[0106] In certain embodiments, the acid-reactive filler is a fluoroaluminosilicate ("FAS") glass. FAS glasses typically contain a sufficient amount of leachable cations so that a hardened dental composition can be obtained when the glass is mixed with other components of the hardenable composition. In some embodiments, the FAS glass also contains a sufficient amount of leachable fluoride ions so that the hardened composition has cariostatic properties.

[0107] FAS glasses can be produced from melts containing fluoride, silica, alumina, and other glass-forming ingredients using techniques well known to those skilled in the art of FAS glassmaking. See, for example, U.S. Pat. Nos. 4,376,835 (Schmitt et al.) and 5,250,585 (Guggenberger et al.). In some embodiments, FAS glasses can be prepared by fusing mixtures of silica, alumina, cryolite, and fluorite. FAS glasses are typically in the form of sufficiently fine particles that they can be successfully mixed with other cement components, and the resulting mixture performs well when used in the mouth.

[0108] Useful FAS glasses are known in the art and available from a wide variety of sources, many of which are found in currently available glass ionomer cements, such as those available from 3M ESPE Dental under the tradenames KETAC-MOLAR or KETAC-FIL PLUS, and GC Dental Industrial Corp. of Tokyo, Japan under the tradename FUJI-IX.

[0109] In certain embodiments, the acid-reactive filler has an average particle size of 3 μm to 10 μm. If the average particle size of the acid-reactive filler exceeds this range, the resulting composition upon mixing the compositions contained in the paste / paste GI compositions described herein may have a lower than desired consistency and may have inferior mechanical properties. If the average particle size of the acid-reactive filler is below this range, the setting time of the paste / paste GI compositions described herein may be faster than desired.

[0110] Exemplary acid-reactive fillers are further described, for example, in WO 2015 / 088956 A1 (Peez et al.).

[0111] For the paste / paste GI compositions disclosed herein, the second paste comprises at least 40 wt. % acid-reactive filler, at least 50 wt. % acid-reactive filler, or at least 60 wt. % acid-reactive filler, based on the total weight of the second paste. For the paste / paste GI compositions disclosed herein, the second paste comprises at most 90 wt. % acid-reactive filler, at most 88 wt. % acid-reactive filler, or at most 86 wt. % acid-reactive filler, based on the total weight of the second paste.

[0112] If the amount of acid-reactive filler is too high, the paste of the paste / paste GI compositions described herein may not mix properly, and it may be difficult to achieve the proper consistency and acceptable mechanical properties in the resulting composition.

[0113] If the amount of acid-reactive filler is too low, mixing the pastes of the paste / paste GI compositions described herein may not result in a useful paste, and further, the mechanical strength of the cured composition may be reduced.

[0114] Substantially crystalline inorganic fibers In some embodiments of the paste / paste GI compositions disclosed herein, at least one of the first paste and the second paste comprises substantially crystalline inorganic fibers.

[0115] Substantially crystalline inorganic fibers include inorganic fibers that have minimal amorphous characteristics (i.e., are substantially non-amorphous) as evidenced by sharp X-ray diffraction (XRD) peaks. Glass fibers and glass-ceramic fibers are typically not substantially crystalline inorganic fibers. In some embodiments, substantially crystalline inorganic fibers have a crystallinity index of at least 0.05, and in certain embodiments, a crystallinity index of at least 0.1, as measured by the XRD crystallinity index test method described herein. The crystallinity index is a parameter used to characterize the level of crystallinity in an inorganic fiber sample. Briefly, the XRD crystallinity index test method described further herein uses tungsten powder as an internal standard. An internal or mass standard refers to a material incorporated into a sample being evaluated for crystallinity index measurement to normalize X-ray intensity values ​​based on the amount present in the sample. Each inorganic fiber sample to be tested is mixed with tungsten powder in a 4:1 weight ratio. Each inorganic fiber sample preparation is mixed as an ethanol slurry and then dried, and two sample preparations are performed for each inorganic fiber sample to be tested. Each sample preparation is then subjected to six XRD scans. The crystallinity index is the ratio of the observed peak area of ​​the crystalline phase diffraction peak of the analyte within the scattering angle range of 14 to 46 degrees (2-theta) to the (110) diffraction peak area of ​​the tungsten internal standard.

[0116] A wide variety of substantially crystalline inorganic fibers can be used, including ceramic fibers and / or metal oxide fibers. In embodiments in which the substantially crystalline inorganic fibers comprise metal oxide fibers, a wide variety of metal oxides can be used. Exemplary metal oxides include, but are not limited to, alumina, silica, zirconia, titania, and combinations thereof. Mixed metal oxides, such as aluminosilicates, typically contain 20 wt. % or less of silicate, based on the total weight of the mixed metal oxide, to avoid substantial glassy domain formation. The metal oxide can optionally be modified (e.g., doped) with a component selected from the group consisting of sodium oxide, magnesium oxide, lithium oxide, calcium oxide, strontium oxide, barium oxide, yttrium oxide, ytterbium oxide, lanthanum oxide, zinc oxide, iron oxide, manganese oxide, bismuth oxide, and combinations thereof. In embodiments in which the metal oxide comprises a modifier or dopant component, the component is typically present at 10 wt. % or less, based on the total weight of the metal oxide, to avoid substantial glassy domain formation.

[0117] In certain embodiments of the paste / paste GI compositions disclosed herein, the substantially crystalline inorganic fibers contained in the paste have an average diameter of at least 3 μm.

[0118] In certain embodiments of the paste / paste GI compositions disclosed herein, the substantially crystalline inorganic fibers contained in the paste have an average diameter of at most 25 μm, or at most 20 μm.

[0119] In some embodiments of the paste / paste GI compositions disclosed herein, the substantially crystalline inorganic fibers included in the paste have an average aspect ratio of 100:1 or less, 50:1 or less, 25:1 or less, or 15:1 or less. In specific embodiments of the paste / paste GI compositions disclosed herein, the substantially crystalline inorganic fibers included in the paste have an average aspect ratio of 10:1 to 50:1, or 15:1 to 25:1. In some specific embodiments of the paste / paste GI compositions disclosed herein, the substantially crystalline inorganic fibers included in the paste have an average aspect ratio of about 10:1.

[0120] In certain embodiments of the paste / paste GI compositions disclosed herein, the substantially crystalline inorganic fibers contained in the paste have an average length of 1 mm or less, or 0.5 mm or less.

[0121] In certain embodiments of the paste / paste GI compositions disclosed herein, the substantially crystalline inorganic fibers contained in the paste have an average length of at least 25 μm.

[0122] In certain embodiments of the paste / paste GI compositions disclosed herein, the first paste comprises no more than 65% by weight of substantially crystalline inorganic fibers, based on the total weight of the first paste.

[0123] In certain embodiments of the paste / paste GI compositions disclosed herein, the second paste comprises no more than 65 wt. % substantially crystalline inorganic fibers, based on the total weight of the second paste.

[0124] In certain embodiments of the paste / paste GI compositions disclosed herein, the composition comprises no more than 40 wt. % substantially crystalline inorganic fibers, based on the total weight of the composition.

[0125] In certain embodiments of the paste / paste GI compositions disclosed herein, the composition comprises 10% to 15% by weight of substantially crystalline inorganic fibers, based on the total weight of the composition.

[0126] Moisture content The water in the paste / paste GI compositions disclosed herein can be distilled water, deionized water, or regular tap water. Typically, deionized water is used. The amount of water should be sufficient to provide adequate handling and mixing properties and to allow for ion transport, particularly in the cement reaction.

[0127] If the amount of water is too little, it may be difficult to obtain a workable consistency for the resulting paste. If the amount of water is too much, it may be difficult to obtain a workable consistency for the resulting paste. Furthermore, it may be difficult to achieve the desired mechanical properties.

[0128] In some embodiments of the paste / paste GI compositions disclosed herein, the combined moisture content of the first paste and second paste is less than 20 wt %, less than 19 wt %, less than 18 wt %, less than 17 wt %, less than 16 wt %, or less than 15 wt %, based on the total weight of the composition.

[0129] In certain embodiments of the paste / paste GI compositions disclosed herein, the combined moisture content of the first paste and second paste is at least 10% by weight, and in some embodiments at least 15% by weight, based on the total weight of the composition.

[0130] In certain embodiments of the paste / paste GI compositions disclosed herein, the moisture content of the first paste is less than 20 wt.%, less than 19 wt.%, less than 18 wt.%, less than 17 wt.%, less than 16 wt.%, or less than 15 wt.%, based on the total weight of the first paste.

[0131] In certain embodiments of the paste / paste GI compositions disclosed herein, the moisture content of the second paste is less than 20 wt.%, less than 19 wt.%, less than 18 wt.%, less than 17 wt.%, less than 16 wt.%, or less than 15 wt.%, based on the total weight of the second paste.

[0132] any complexing agent In certain embodiments, the first paste may optionally include a complexing agent.

[0133] In embodiments in which the first paste includes a complexing agent, a wide variety of complexing agents can be used. Useful complexing agents can be characterized by one or more of being water soluble (at least 50 g / L of water at 23° C.), having a molecular weight of 50 g / mol to 500 g / mol, or having a molecular weight of 75 g / mol to 300 g / mol.

[0134] Exemplary complexing agents include, but are not limited to, tartaric acid, citric acid, ethylenediaminetetraacetic acid (EDTA), salicylic acid, mellitic acid, dihydroxytartaric acid, nitrilotriacetic acid (NTA), 2,4 and 2,6 dihydroxybenzoic acid, phosphonocarboxylic acid, phosphonosuccinic acid, and mixtures thereof. Further examples of complexing agents can be found, for example, in U.S. Patent No. 4,569,954 (Wilson et al.).

[0135] In embodiments of the paste / paste GI compositions disclosed herein in which the first paste comprises a complexing agent, the first paste comprises at least 0.1 wt. % complexing agent, at least 1.0 wt. % complexing agent, or at least 1.5 wt. % complexing agent, based on the total weight of the first paste. In embodiments of the paste / paste GI compositions disclosed herein in which the first paste comprises a complexing agent, the first paste comprises at most 12 wt. % complexing agent, at most 10 wt. % complexing agent, or at most 8 wt. % complexing agent, based on the total weight of the first paste.

[0136] Optional additives The paste / paste GI compositions disclosed herein may optionally contain various additives known in the art, including, but not limited to, flavoring agents, fluoridating agents, buffering agents, numbing agents, remineralizing agents, desensitizing agents, coloring agents, indicators, viscosity modifiers, surfactants, stabilizers, preservatives (e.g., benzoic acid), or combinations thereof. The presence of a coloring agent may be useful in detecting when all desired intraoral surfaces have been coated with the aqueous composition. The color intensity of the coloring agent may also be useful in detecting the uniformity of the coating on the intraoral surfaces.

[0137] In embodiments of the paste / paste GI compositions disclosed herein where the additive is present in the first paste, the first paste comprises at least 0.01 wt. % of the additive, at least 0.05 wt. % of the additive, or at least 0.1 wt. % of the additive, based on the total weight of the first paste. In embodiments of the paste / paste GI compositions disclosed herein where the additive is present in the first paste, the first paste comprises at most 5 wt. % of the additive, at most 3 wt. % of the additive, or at most 1 wt. % of the additive, based on the total weight of the first paste.

[0138] In embodiments of the paste / paste GI compositions disclosed herein where the additive is present in the second paste, the second paste comprises at least 0.01 wt. % of the additive, at least 0.05 wt. % of the additive, or at least 0.1 wt. % of the additive, based on the total weight of the second paste. In embodiments of the paste / paste GI compositions disclosed herein where the additive is present in the second paste, the second paste comprises at most 5 wt. % of the additive, at most 3 wt. % of the additive, or at most 1 wt. % of the additive, based on the total weight of the second paste.

[0139] Typically, neither the first paste nor the second paste of the paste / paste GI compositions disclosed herein contain any of the following components, alone or in combination: a) HEMA in an amount greater than 1% or greater than 0.5% by weight, b) resin in an amount greater than 1% or greater than 0.5% by weight, c) initiator component suitable for curing the resin or monomer in an amount greater than 1% or greater than 0.5% by weight, d) inhibitors such as methoxyphenol or 3,5-di-tert-butyl-4-hydroxytoluene in an amount greater than 1% or greater than 0.5% by weight, e) desiccant such as zeolite in an amount greater than 1% or greater than 0.5% by weight.

[0140] Thus, when mixing pastes of a paste / paste GI composition, the resulting composition is not a resin-modified glass ionomer cement (RM-GIC) and therefore does not contain a polymerization-based curing system.

[0141] Thus, in certain embodiments, the paste / paste GI compositions disclosed herein do not include a redox initiator system or a thermally or radiation-induced initiator system.

[0142] First paste and second paste The first paste can typically be characterized by having a pH of less than 7.

[0143] The second paste can typically be characterized by having a pH greater than 7.

[0144] The first paste and / or the second paste may each independently optionally further comprise a solvent. In some embodiments, the addition of a solvent or co-solvent may help adjust the viscosity and consistency of the composition.

[0145] Examples of useful solvents include alcohols (eg, methanol, ethanol, and propanol), polyalcohols / polyols (eg, ethylene glycol and glycerol), and combinations thereof.

[0146] device The first and second pastes of the paste / paste GI compositions described herein can be provided to the practitioner in a variety of embodiments.

[0147] In one embodiment, the pastes may be contained in separate sealable containers (e.g., made of plastic or glass). For use, the practitioner may remove appropriate amounts of the paste components from the containers and mix the amounts by hand on a mixing plate.

[0148] In some embodiments, the pastes are contained in separate compartments of a storage device. The storage device typically includes two compartments for storing each paste, each compartment equipped with a nozzle for delivering the respective paste. Once the appropriate amounts have been delivered, the pastes can then be mixed by hand on a mixing plate.

[0149] In certain embodiments, the storage device has an interface for accepting a static mixing tip. The mixing tip is used to mix the respective pastes. Static mixing tips are available, for example, from Sulzer Mixpac Company. Useful storage devices include cartridges, syringes, and tubing.

[0150] The storage device typically comprises two housings or compartments, a front end having a nozzle, and a rear end, and at least one piston movable within the housing or compartment.

[0151] Useful cartridges are described, for example, in U.S. Patent Application Publication No. 2007 / 0090079(A1) (Keller et al.) and U.S. Patent No. 5,918,772 (Keller et al.). Useful cartridges are available, for example, from SulzerMixpac AG (Switzerland). Useful static mixing tips are described, for example, in U.S. Patent Application Publication No. 2006 / 0187752(A1) (Keller et al.) and U.S. Patent No. 5,944,419 (Streiff). Useful mixing tips are available, for example, from SulzerMixpac AG (Switzerland).

[0152] Other useful storage devices are described, for example, in WO 2010 / 123800 (3M), WO 2005 / 016783 (3M), WO 2007 / 104037 (3M), WO 2009 / 061884 (3M).

[0153] Alternatively, the paste / paste GI compositions described herein can be provided in two individual syringes, and the individual pastes can be mixed by hand before use.

[0154] In certain embodiments, the paste / paste GI compositions disclosed herein can be provided as a kit including a first paste, a second paste, and instructions describing one or more methods (as disclosed herein) for mixing the first paste and the second paste to form a hardened composition.

[0155] In one embodiment, the present disclosure provides a device for storing the curable glass ionomer composition described herein, comprising a first paste comprising water, a polyacid, and a non-acid-reactive filler, and a second paste comprising water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles having at least 25% surface coverage of the particles with silane, wherein the composition is essentially resin-free. The device comprises a first compartment containing the first paste and a second compartment containing the second paste. In some embodiments, both the first and second compartments each independently comprise a nozzle or interface for receiving an entrance orifice of a static mixing tip.

[0156] In some embodiments, the mixing ratio of the first paste to the second paste is 1:3 to 2:1 by volume, and in certain embodiments, 1:2 to 2:1 by volume.

[0157] In other embodiments, the mixing ratio of the first paste to the second paste is 1:6 to 1:1 by weight, and in certain embodiments, is 1:4 to 1:1 by weight.

[0158] The composition obtained, obtained or obtainable upon mixing the respective pastes is particularly useful as or for producing a dental cement, a dental filling material, a dental core build-up material, or a dental root canal filling material.

[0159] method The paste / paste GI compositions disclosed herein can be used by practitioners in a variety of ways to prepare setting compositions.

[0160] In one embodiment, the method includes preparing a hardenable glass ionomer composition as described herein, comprising a first paste comprising water, a polyacid, and a non-acid-reactive filler, and a second paste comprising water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles having at least 25% surface coverage of the particles with silane, wherein the composition is essentially resin-free; combining the first and second pastes to form a mixture (e.g., a hardenable composition); and curing the mixture to form the hardened composition.

[0161] In another embodiment, the method includes preparing a device for storing the hardenable glass ionomer composition described herein, the device comprising a first paste comprising water, a polyacid, and a non-acid-reactive filler, and a second paste comprising water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles, the second paste having at least 25% surface coverage of the particles with silane, the composition being essentially resin-free, the device comprising a first compartment containing the first paste and a second compartment containing the second paste; combining the first paste and the second paste to form a mixture (e.g., a hardenable composition); and hardening the mixture to form the hardened composition.

[0162] In certain embodiments, the mixture (eg, hardenable composition) is applied to a dental hard tissue surface and the mixture (eg, hardenable composition) is allowed to harden to form a hardened composition on the dental hard tissue surface.

[0163] According to one embodiment, a cement composition obtained or obtainable by mixing two pastes of the GI compositions disclosed herein may satisfy at least one, more than one, or all of the following parameters before or during hardening: a setting time of about 5 minutes, 4 minutes, or 3 minutes or less as measured according to EN-ISO 9917-1:2007, a working time of about 4 minutes, 3 minutes, 2 minutes, or 1 minute or less as measured according to EN-ISO 9917-1:2007, and storage stable. If desired, the setting time and hardening behavior can be measured as described in more detail in the Examples section herein.

[0164] In certain embodiments, the mixture (e.g., hardenable composition) formed from mixing the first and second pastes of the paste / paste GI compositions disclosed herein has a sufficient working time to allow a practitioner to not only thoroughly mix the composition but also to apply the composition to, for example, a crown, bridge, root canal, or prepared tooth surface. Additionally, the mixture (e.g., hardenable composition) has a conveniently short setting time, which can save the practitioner time and increase patient convenience.

[0165] According to another embodiment, the mixture (e.g., the curable composition) formed from mixing the first and second pastes of the paste / paste GI composition disclosed herein can satisfy one, more than one, or all of the following parameters after curing: A flexural strength of greater than about 20 MPa or greater than about 25 MPa, measured according to EN-ISO 9917-2:2010, provided that a glass slab is used instead of foil to cover the composition; and A compressive strength of greater than about 100 MPa, greater than about 120 MPa, or greater than about 150 MPa, measured according to EN-ISO 9917-1 / 2007, provided that a glass slab is used instead of foil to cover the composition. If desired, these parameters can be measured as described in the Examples section herein.

[0166] The paste / paste GI compositions disclosed herein are easier to mix and can achieve adequate mechanical properties, such as flexural strength and fracture toughness, without affecting other important parameters, such as setting time, compared to commercially available state of the art glass ionomer cements. Typically, the paste / paste GI compositions disclosed herein can adequately adhere to tooth surfaces, such as enamel and dentin.

[0167] Exemplary embodiments of the present disclosure Various embodiments are disclosed that can provide curable glass ionomer compositions and methods of using same.

[0168] Embodiment 1A is a curable glass ionomer composition comprising a first paste comprising water, a polyacid, and a non-acid-reactive filler, and a second paste comprising water, an acid-reactive filler, and non-agglomerated, water-miscible nano-sized silica particles having at least 25% surface coverage of the particles with silane, wherein the composition is essentially resin-free.

[0169] Embodiment 2A is a curable glass ionomer composition described in Embodiment 1A, wherein the composition does not contain a resin.

[0170] Embodiment 3A is the composition of embodiment 1A or 2A, wherein the silane is essentially free of unsaturated polymerizable groups.

[0171] Embodiment 4A is an embodiment in which the silane has the formula: (R 1 O)3-Si-(CH2) n -(OR 2 ) x -OR 3 [In the formula, R 1 is a C1-C3 alkyl group, and R 2 is a C2-C3 alkylene group, and R 3 is a C1-C10 alkyl group, n=2-6, and x=0-200.

[0172] Embodiment 5A is an embodiment in which the silane has the formula: (R 1 O)3-Si-(CH2) n -(OR 2 ) x -OR 3 [In the formula, R 1 is a C1-C3 alkyl group, and R 2 is a C2-C3 alkylene group, and R 3 is 2,3-epoxypropyl, n=2-6, and x=0-200.

[0173] Embodiment 6A is directed to R 2 represents -CH2CH2-.

[0174] Embodiment 7A is the composition of any one of Embodiments 4A-6A, wherein n=3.

[0175] Embodiment 8A is the composition of any one of Embodiments 1A through 7A, wherein the non-agglomerated, water-miscible nano-sized silica particles have a particle surface coverage with the silane of at least 50%.

[0176] Embodiment 9A is the composition of any one of Embodiments 1A through 8A, wherein the non-agglomerated, water-miscible nano-sized silica particles have a particle surface coverage with the silane of at least 75%.

[0177] Embodiment 10A is the composition of any one of Embodiments 1A through 9A, wherein the non-agglomerated, water-miscible nano-sized silica particles have a particle surface coverage with the silane of at least 95%.

[0178] Embodiment 11A is the composition of any one of Embodiments 1A through 10A, wherein the non-agglomerated, water-miscible nano-sized silica particles are substantially free of fumed silica.

[0179] Embodiment 12A is the composition of any one of Embodiments 1A-11A, wherein at least one of the first paste and the second paste further comprises pyrogenic silica particles.

[0180] Embodiment 13A is the composition of any one of Embodiments 1A-12A, wherein the combined moisture content of the first paste and second paste is less than 20% by weight, based on the total weight of the composition.

[0181] Embodiment 14A is the composition of any one of Embodiments 1A-13A, wherein the moisture content of the first paste is less than 20% by weight, based on the total weight of the first paste, and the moisture content of the second paste is less than 20% by weight, based on the total weight of the second paste.

[0182] Embodiment 15A is the composition of any one of Embodiments 1A-14A, wherein the combined moisture content of the first paste and second paste is less than 19% by weight, based on the total weight of the composition.

[0183] Embodiment 16A is the composition of any one of Embodiments 1A-15A, wherein the combined moisture content of the first paste and second paste is less than 18% by weight, based on the total weight of the composition.

[0184] Embodiment 17A is the composition of any one of Embodiments 1A-16A, wherein the combined moisture content of the first paste and second paste is less than 17% by weight, based on the total weight of the composition.

[0185] Embodiment 18A is the composition of any one of Embodiments 1A-17A, wherein the combined moisture content of the first paste and second paste is less than 16% by weight, based on the total weight of the composition.

[0186] Embodiment 19A is the composition of any one of Embodiments 1A-18A, wherein the combined moisture content of the first paste and second paste is less than 15% by weight, based on the total weight of the composition.

[0187] Embodiment 20A is the composition of any one of Embodiments 1A to 19A, wherein the combined moisture content of the first paste and second paste is 10% to 15% by weight, based on the total weight of the composition.

[0188] Embodiment 21A is the composition of any one of Embodiments 1A through 20A, wherein the non-acid-reactive filler comprises particles and / or fibers.

[0189] Embodiment 22A is the composition of any one of Embodiments 1A-21A, wherein the non-acid-reactive filler is selected from the group consisting of quartz, nitrides, kaolin, borosilicate glass, strontium oxide-based glass, barium oxide-based glass, silica, alumina, titania, zirconia, and combinations thereof.

[0190] Embodiment 23A is the composition of any one of Embodiments 1A-22A, wherein the non-acid-reactive filler comprises a metal oxide selected from the group consisting of alumina, silica, zirconia, titania, and combinations thereof.

[0191] Embodiment 24A is the composition of any one of Embodiments 1A to 23A, wherein the non-acid-reactive filler has an average particle size of 0.005 μm to 10 μm.

[0192] Embodiment 25A is the composition of any one of Embodiments 1A through 24A, wherein the non-acid-reactive filler comprises substantially crystalline inorganic fibers.

[0193] Embodiment 26A is the composition of embodiment 25A, wherein the substantially crystalline inorganic fibers comprise ceramic and / or metal oxide.

[0194] Embodiment 27A is the composition of embodiment 25A or 26A, wherein the substantially crystalline inorganic fibers comprise a metal oxide selected from the group consisting of alumina, silica, zirconia, titania, and combinations thereof.

[0195] Embodiment 28A is the composition of embodiment 27A, wherein the metal oxide is modified with a component selected from the group consisting of sodium oxide, magnesium oxide, lithium oxide, calcium oxide, strontium oxide, barium oxide, yttrium oxide, ytterbium oxide, zinc oxide, iron oxide, manganese oxide, bismuth oxide, and combinations thereof.

[0196] Embodiment 29A is the composition of any one of Embodiments 25A-28A, wherein the substantially crystalline inorganic fibers included in the paste have an average diameter of at least 3 μm.

[0197] Embodiment 30A is the composition of any one of Embodiments 25A-29A, wherein the substantially crystalline inorganic fibers included in the paste have an average diameter of at most 25 μm.

[0198] Embodiment 31A is the composition of any one of Embodiments 25A-30A, wherein the substantially crystalline inorganic fibers included in the paste have an average diameter of at most 20 μm.

[0199] Embodiment 32A is the composition of any one of Embodiments 25A through 31A, wherein the substantially crystalline inorganic fibers included in the paste have an average aspect ratio of about 10:1.

[0200] Embodiment 33A is the composition of any one of Embodiments 25A through 32A, wherein the substantially crystalline inorganic fibers contained in the paste have an average length of 1 mm or less.

[0201] Embodiment 34A is the composition of any one of Embodiments 25A through 33A, wherein the substantially crystalline inorganic fibers contained in the paste have an average length of 0.5 mm or less.

[0202] Embodiment 35A is the composition of any one of Embodiments 25A through 34A, wherein the substantially crystalline inorganic fibers included in the paste have an average length of at least 25 μm.

[0203] Embodiment 36A is the composition of any one of Embodiments 25A through 35A, wherein the substantially crystalline inorganic fibers have a crystallinity index of at least 0.05 as measured by the XRD Crystallinity Index Test Method.

[0204] Embodiment 37A is the composition of any one of Embodiments 25A through 35A, wherein the substantially crystalline inorganic fibers have a crystallinity index of at least 0.1 as measured by the XRD Crystallinity Index Test Method.

[0205] Embodiment 38A is the composition of any one of Embodiments 25A-37A, wherein the first paste comprises 65% or less by weight of substantially crystalline inorganic fibers, based on the total weight of the first paste.

[0206] Embodiment 39A is the composition of any one of Embodiments 25A-38A, wherein the second paste comprises 65% or less by weight of substantially crystalline inorganic fibers, based on the total weight of the second paste.

[0207] Embodiment 40A is the composition of any one of Embodiments 25A through 39A, wherein the composition comprises 40% or less by weight of substantially crystalline inorganic fibers, based on the total weight of the composition.

[0208] Embodiment 41A is the composition of any one of Embodiments 25A to 40A, wherein the composition comprises 10% to 15% by weight of substantially crystalline inorganic fibers, based on the total weight of the composition.

[0209] Embodiment 42A is the composition of any one of Embodiments 1A-41A, wherein the acid-reactive filler comprises an inorganic filler selected from the group consisting of basic metal oxides, metal hydroxides, hydroxyapatites, aluminosilicate glasses, fluoroaluminosilicate glasses, glasses having a Si / Al weight percent ratio of less than 1.5, and combinations thereof.

[0210] Embodiment 43A is the composition of any one of Embodiments 1A to 42A, wherein the acid-reactive filler has an average particle size of 3 μm to 10 μm.

[0211] Embodiment 44A is the composition of any one of Embodiments 1A through 43A, wherein the first paste further comprises a complexing agent.

[0212] Embodiment 45A is the composition of any one of Embodiments 1A through 44A, wherein the composition remains sufficiently workable or mixable to form a hardenable glass ionomer composition after storage at room temperature for at least one month.

[0213] Embodiment 46A is the composition of any one of Embodiments 1A through 45A, wherein the composition remains sufficiently workable or mixable to form a hardenable glass ionomer composition after storage at room temperature for at least 3 months.

[0214] Embodiment 47A is the composition of any one of Embodiments 1A through 46A, wherein the composition remains sufficiently workable or mixable to form a hardenable glass ionomer composition after storage at room temperature for at least six months.

[0215] Embodiment 1B is a method of preparing a hardened composition, including providing a hardenable glass ionomer composition according to any one of Embodiments 1A-47A, combining a first paste and a second paste to form a mixture, and hardening the mixture to form the hardened composition.

[0216] Embodiment 1C is a device for storing the composition of any one of Embodiments 1A-47A, comprising a first compartment containing a first paste and a second compartment containing a second paste.

[0217] Embodiment 2C is a device of embodiment 1C, wherein both the first compartment and the second compartment each independently comprise a nozzle or interface for receiving an entrance orifice of a static mixing tip.

[0218] Embodiment 1D is a method of preparing a hardened composition, including providing a device as described in Embodiment 1C or 2C, combining a first paste and a second paste to form a mixture, and hardening the mixture to form the hardened composition.

[0219] The objects and advantages of the present disclosure are further illustrated by the following non-limiting examples, but the specific materials and amounts thereof recited in these examples, as well as other conditions and details, should not be construed as unduly limiting the present disclosure. [Example]

[0220] The following examples are offered to illustrate, but not limit, the scope of the present invention. As used herein, all parts and percentages are by weight and all water was deionized unless otherwise specified. Materials were available from Sigma-Aldrich Corp. (St. Louis, MO) unless otherwise specified. All commercially available materials were used as received from the supplier. Ammonium fluoride was obtained from Alfa Aesar (Tewksbury, MA). Tartaric acid was obtained from Fisher Scientific (Waltham, MA), and 3-phosphonopropionic acid was obtained from Alfa Aesar (Tewksbury, MA).

[0221] XRD crystallinity index test method The crystallinity index is a parameter used to characterize the level of crystallinity in an inorganic fiber sample. Briefly, the XRD crystallinity index test method used herein uses tungsten powder as an internal standard. Internal or mass standard refers to a material incorporated into a sample being evaluated for crystallinity index measurement to normalize X-ray intensity values ​​based on the amount present in the sample. Each inorganic fiber sample to be tested is mixed with tungsten powder in a 4:1 weight ratio. Each inorganic fiber sample preparation is mixed as an ethanol slurry and then dried, and two sample preparations are performed for each inorganic fiber sample to be tested. Each sample preparation is then scanned six times by XRD. The crystallinity index is the ratio of the peak area observed for the crystalline phase diffraction peak of the analyte within the scattering angle range of 14 to 46 degrees (2-theta) to the (110) diffraction peak area of ​​the tungsten internal standard. The following procedure was used to measure the XRD crystallinity index for the tested substantially crystalline inorganic fibers.

[0222] The particle size of the phase standards was reduced by ball milling and / or hand grinding with a boron carbide mortar and pestle to pass a 325 mesh sieve. Individual mixtures were prepared consisting of 0.400 grams of each sample and 0.100 grams of a tungsten internal standard (i.e., <3 micron tungsten metal powder, lot U-1.35-8808D, available from General Electric). The mixtures were blended in a mortar and pestle under ethanol and dried under a stream of nitrogen. The dried mixtures were removed from the mortar and pestle with a spatula and fine brush and finally transferred to individual sample containers.

[0223] A portion of each sample was prepared as an ethanol slurry on silicon zero background specimen holders. αMultiple X-ray diffraction scans were obtained from each sample using a Bragg-Bretano theta-theta diffractometer (manufactured by PANalytical, Empyrean, Almelo, The Netherlands) employing a pixel detector registry for scattered radiation, a variable entrance slit, a fixed exit slit, and scattered radiation. Scans were performed from 14 to 46 degrees (2θ) using a step width of 0.026 degrees and a dwell time of 10 seconds. The X-ray generator was operated at 40 kV and 40 mA, and a fixed entrance beam slit was used.

[0224] The peak areas of the diffraction maxima observed due to crystalline phases in the sample and tungsten mass standard were determined by profile fitting the diffraction peaks observed within the scattering angle range of 14 to 46 degrees (2θ). X-ray scattering from the internal mass standard was evaluated by measuring cubic tungsten using the (1 1 0) peak area. During the profile fitting procedure, scattering due to amorphous phases was considered, if necessary, by including a sufficient number of appropriately broad scattering peaks. In all cases, the Pearson VII peak shape model and a linear background model were used. Profile fitting was performed using the JADE (Version 9, Materials Data Inc., Livermore, CA) diffraction software suite.

[0225] The areas of the maximum peaks produced by the crystalline phases present in the sample were summed, and for each sample, the scattering intensity value of the total sample crystalline phase [(total crystalline area) サンプル] was determined. Any broad peaks used to account for the amorphous phase during profile fitting were not included in the calculation of the crystallinity index. The scattering intensity values ​​of all these sample crystalline phases were divided by their respective cubic tungsten (1 1 0) peak areas to obtain the crystallinity index [X c ] was requested. X C =[(total crystal area) サンプル ] / [(tungsten area) サンプル ]

[0226] Average X C The values ​​are for each X C was calculated from the values. X C(平均) =[εX C(i) ] / N サンプル In the formula, N サンプル = number of scans of the sample. Multiple XRD runs of the sample were reported.

[0227] The crystallinity index results measured according to this procedure are reported in Table 1. [Table 1]

[0228] No detectable diffraction peaks were observed for the Nextel 312 sample.

[0229] material "NALCO 2329" refers to an aqueous colloidal silica sol available from Ecolab (Naperville, IL) containing 40% by weight SiO, containing sodium counterions (approximately 0.25% NaO), pH=8.4 at 25° C., and a particle size of 75 nm.

[0230] "LEVASIL 50 / 50" refers to an aqueous colloidal silica sol containing 50% by weight SiO2, containing a base-stabilized colloidal silica sol, having a pH of 9-10, and having a particle size of 50 nm, available from Akzo Nobel (Bohus, Sweden).

[0231] "PA 1" refers to a water soluble polyacid copolymer of acrylic acid and maleic acid (1:1 copolymer) (KETAC-FIL PLUS (3M ESPE Dental Products)) having a MW of approximately 20,000.

[0232] "FAS 1" refers to an acid-reactive fluoroaluminosilicate glass powder with an average particle size of 4.8 μm (d10 of 1.6 μm, d50 of 8.0 μm, d90 of 30 μm) and the following elemental composition (based on X-ray fluorescence analysis): 10-15 wt% Si, 10-15 wt% Al, 23-26.5 wt% Sr, 2.0-4.0 wt% Na, 11.0-14.5 wt% F, 2-3.5 wt% P, 4.5-7 wt% La, and 26-30 wt% O. The acid-reactive glass powder is prepared by melting glass frit, followed by crushing and grinding the frit to a particle size of 4.8 μm, followed by washing with 1 M hydrochloric acid for 1 hour, filtering, drying, and tempering at 200-300°C for 12 hours.

[0233] "FAS 2" refers to an acid-reactive fluoroaluminosilicate glass powder with an average particle size of 4.8 μm and the following elemental composition (based on X-ray fluorescence analysis): 7.5-12.5 wt% Si, 7.5-12.5 wt% Al, 15.0-20.0 wt% La, 7.5-12.5 wt% Ca, 1.0-3.0 wt% Na, 0.5-3.0 wt% P, 12.0-17.0 wt% F, and 30.0-35.0 wt% O. The acid-reactive glass powder is prepared by melting a glass frit, followed by crushing and grinding the frit to a particle size of 4.8 μm, followed by washing with 1 M hydrochloric acid for 1 hour, filtering, drying, and tempering at 200-300°C for 12 hours.

[0234] "NEXTEL 720" refers to 10-12 μm diameter aluminosilica ceramic fibers with α-Al2O3 and mullite crystalline phases (85 wt% Al2O3, 15 wt% SiO2), available from 3M, which were further chopped to a uniform length of 200 μm. "S / T NEXTEL 720" refers to NEXTEL 720 that was surface-treated as follows: 3-phosphonopropionic acid (2 wt% based on fiber weight) was added to a stirred mixture of chopped fibers in water (5 times the weight of chopped fibers). The mixture was heated to 100°C and stirred for a minimum of 2 hours. The fibers were allowed to settle for approximately 30 minutes, and the supernatant liquid was decanted. The fibers were washed (twice) with excess water, and the wet fibers were dried at 85°C for approximately 2 hours to obtain chopped Nextel 720 fibers.

[0235] "Silquest A-1230" refers to a polyalkylene oxide alkoxysilane with a molecular weight of approximately 600 g / mol, obtained from Momentive Performance Materials (Waterford, NY).

[0236] "Methoxypropyltrimethoxysilane" refers to a hydrophilic silane with a molecular weight of 194 g / mol that was obtained from Gelest, Inc. (Morrisville, PA).

[0237] "Carboxyethylsilanetriol" refers to a hydrophilic silane with a molecular weight of 196 g / mol obtained from Gelest, Inc. (Morrisville, PA).

[0238] "Acetoxyethyltrimethoxysilane" refers to a hydrophilic silane with a molecular weight of 208 g / mol obtained from Gelest, Inc. (Morrisville, PA).

[0239] "Aerosil 300 Pharma" was obtained from Evonik Industries (Essen, Germany) and has a surface area of ​​approximately 300 m 2 / g of fumed silica.

[0240] method Preparation of silane-treated silica sol Silanization was carried out by reacting a solution of silica sol (such as Levasil 50 / 50 or Nalco 2329) with a silane (such as Silquest A-1230). The ratio of silane to silica sol to achieve "100% theoretical coverage" was calculated using Equation 1 below.

number

number

[0241] The appropriate amounts of silica sol and silane were added to a container (usually a glass vial or jar) and the solution was allowed to react. The most common reaction conditions were 80-85°C for 17 hours; however, the exact temperature and time are not critical. Once the reaction time is complete, the silane treatment is complete and the sol is ready to use.

[0242] General Preparation of Glass Ionomer Paste All pastes were made using a high shear speed mixer (FlackTek Inc. Speed ​​Mixer, DAC 150 FVZ & 150.1 FVZ). The base paste was made by adding all ingredients and mixing at 2000-2500 RPM for 1 minute. This tended to be sufficient to thoroughly mix the base paste. The acid paste was made by adding water, tartaric acid, and PA 1. The solution was then speed mixed at 3500 RPM for 1 minute to break up the solids. S / T Nextel 720 fiber was then added, and the paste was speed mixed at 3500 RPM for 1 minute. This was followed by a series of hand spatulations followed by speed mixing at 3500 RPM for 1 minute until a homogeneous paste was achieved.

[0243] Bending strength Glass ionomer test specimens were prepared by mixing the two components in the ratios shown in the table below and placing the mixed material into a 2 mm x 2 mm x 25 mm PEEK (polyetheretherketone) mold with polyester film on both sides. A polycarbonate slide was placed on the outside of both polyester film pieces. The mold was then secured with a power hand clamp and placed in a temperature and humidity controlled chamber at 37°C and 95% relative humidity for approximately 1 hour. The samples were then removed from the mold, placed in deionized water, and placed in an oven at 37°C for approximately 24 hours. The samples were then polished using 600-grit sandpaper on a Buehler Ecomet 4 Variable Speed ​​Grinder-Polisher to smooth the edges and accurately measure width and length. The flexural strength was measured in accordance with ANSI / ADA (American National Standard / American Dental Association) Standard No. 27 (1993) on an Instron testing machine (Instron 5944, Instron Corp., Canton, MA, USA) at a crosshead speed of 0.75 mm / min.

[0244] Storage stability Pastes of the example compositions were placed into BD Slip Tip syringes (5 or 10 mL) and dispensed into heat-sealable aluminum pouches. The pouches were heat-sealed to be airtight and watertight, labeled, and massed. Ten to fifteen pouches of paste were prepared for each formulation. The pouches were placed in plastic zipper-closing bags and placed in an environment of 25°C and 50% relative humidity. The samples were observed for aging at various time points. Samples were weighed before observation to ensure no moisture loss had occurred. At the end of each storage period, the examples were opened and evaluated using a probe for consistency and workability as an acceptable paste. Sample results were classified into three categories: (1) "++" indicated that the sample showed no noticeable change during storage conditions; it remained a soft, workable, mixable paste and was considered acceptable. (2) "+" indicates that the example exhibited some change; the example was not as soft, but was still a workable, mixable paste, and was marginally acceptable. (3) "-" indicates that the sample exhibited a distinctly unacceptable change; the sample was a hardened paste and not workable. Stability results are shown in Tables 30-32.

[0245] compound Silane-treated silica sol The silane-treated silica sols used in the experiments can be seen in Tables 2 to 5 below. [Table 2] [Table 3] [Table 4] [Table 5]

[0246] Paste formulation The base pastes prepared for storage stability testing can be found in Tables 6-23 below. [Table 6] [Table 7] [Table 8] [Table 9] [Table 10] [Table 11] [Table 12] [Table 13] [Table 14] [Table 15] [Table 16] [Table 17] [Table 18] [Table 19] [Table 20] [Table 21] [Table 22] [Table 23]

[0247] The formulations used to test flexural strength are shown in Tables 24-29 below. [Table 24] [Table 25] [Table 26] [Table 27] [Table 28] [Table 29]

[0248] Measurement of physical properties Stability was measured as described herein for the illustrative examples and comparative examples, and the results are shown in Tables 30-32. [Table 30]

[0249] In the table above, the sample results were categorized into three rating categories: (1) "++" indicates that the sample did not change significantly over the storage conditions; the sample was still a soft, workable, mixable paste and was considered acceptable; (2) "+" indicates that the example changed somewhat; the example was not as soft, but was still a workable, mixable paste and was slightly more acceptable; and (3) "-" indicates that the sample changed significantly and was unacceptable; the sample was a hardened paste and was not workable. [Table 31]

[0250] It can be seen that all examples containing methoxypropyltrimethoxysilane showed no signs of degradation. [Table 32]

[0251] Flexural strength was measured as described herein for the illustrative and comparative examples, and the results are shown in Table 33. [Table 33]

[0252] Although there is a very slight tendency for the bending strength to decrease as the theoretical coverage increases, it can be seen that there is no statistical significance in the bending strength based on the silane treatment of the silica sol.

[0253] Example 17 Example 17 was prepared in the following amounts: First, Levasil 50 / 50 from Akzo Nobel was epoxy-silanized according to the procedure described in the section "Filler C Nano-sized Silica" of U.S. Patent No. 6,899,948 (B2) (Zhang et al.). The silane was 3-glycidyloxypropyltrimethoxysilane. 15.2% of the epoxy-silanized Levasil 50 / 50 (containing 50% water and 50% silanized particles) was added to 83.1% of Ketac Fil Plus ionomer glass powder (KETAC Fil Plus Glass Ionomer Filling Material available from 3M Company, Seefeld, Germany), 1.6% of OX-50 fumed silica, and 0.1% of benzoic acid.

[0254] All references, patent documents, or patent applications cited in the above patent application are incorporated herein by reference in their entirety for consistency. In the event of any inconsistency or contradiction between any of the incorporated references and this application, the information in the foregoing description shall prevail. The foregoing description is intended to enable those skilled in the art to practice the disclosure set forth in the claims, and should not be construed as limiting the scope of the present disclosure, which is defined by the claims and all equivalents thereof.

Claims

1. Water and a polyacid essentially free of unsaturated polymerizable groups; Non-acid reactive filler a first paste comprising: Water and an acid-reactive filler; Silane-containing nano-sized silica particles A second paste comprising 1. A curable glass ionomer composition comprising: The silane has the formula: (R 1 O) 3 -Si-(CH 2 ) n -(O-R 2 ) x -OR 3 [In the formula, R 1 is a C1-C3 alkyl group, R 2 is a C2-C3 alkylene group, R 3 is a C1 to C10 alkyl group, n=2 or 3, and x = 0 to 200] is expressed as the nano-sized silica particles are non-agglomerated and water-miscible; the nano-sized silica particles have a surface coverage of at least 25% of the particles with the silane; the curable glass ionomer composition is essentially free of polymerizable components containing unsaturated organic groups; A curable glass ionomer composition.

2. 10. The curable glass ionomer composition of claim 1, wherein the nano-sized silica particles are substantially free of fumed silica.

3. 3. The curable glass ionomer composition of claim 1, wherein at least one of the first paste and the second paste further comprises pyrogenic silica particles.

4. 4. The curable glass ionomer composition of claim 1, wherein the combined water content of the first paste and the second paste is less than 20% by weight, based on the total weight of the curable glass ionomer composition.

5. The curable glass ionomer composition of any one of claims 1 to 4, wherein the non-acid-reactive filler comprises particles and / or fibers.

6. 6. The hardenable glass ionomer composition of claim 1, wherein the non-acid-reactive filler is selected from the group consisting of quartz, nitrides, kaolin, borosilicate glasses, strontium oxide-based glasses, barium oxide-based glasses, silica, alumina, titania, zirconia, and combinations thereof.

7. The curable glass ionomer composition of any one of claims 1 to 6, wherein the non-acid-reactive filler comprises substantially crystalline inorganic fibers.

8. 8. The curable glass ionomer composition of claim 7, wherein the substantially crystalline inorganic fibers comprise ceramic and / or metal oxide.

9. 9. The curable glass ionomer composition of claim 7 or 8, wherein the substantially crystalline inorganic fibers have a crystallinity index of at least 0.05 as measured by the XRD Crystallinity Index Test Method.

10. 10. The hardenable glass ionomer composition of any one of claims 1 to 9, wherein the acid-reactive filler comprises an inorganic filler selected from the group consisting of basic metal oxides, metal hydroxides, hydroxyapatites, aluminosilicate glasses, fluoroaluminosilicate glasses, glasses having a Si / Al weight percent ratio of less than 1.5, and combinations thereof.

11. 11. The curable glass ionomer composition of claim 1, wherein the acid-reactive filler has an average particle size of from 3 μm to 10 μm.

12. The curable glass ionomer composition of any one of claims 1 to 11, wherein the first paste further comprises a complexing agent.

13. 13. The curable glass ionomer composition of any one of claims 1 to 12, wherein the curable glass ionomer composition remains sufficiently workable or mixable to form a curable glass ionomer composition after storage at room temperature for at least one month.

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