solid soluble components

A solid soluble composition with a fibrous mesh microstructure formed by sodium fatty acid carboxylates addresses instability and dissolution issues, ensuring effective freshness delivery and supply chain stability.

JP7840109B2Active Publication Date: 2026-04-03PROCTER & GAMBLE CO
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-08-08
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Conventional solid soluble compositions face challenges such as instability under temperature and humidity, limited surfactant choices leading to poor cleaning performance, and issues with dissolution and brittleness, which affect their effectiveness and supply chain stability.

Method used

A solid soluble composition comprising a crystallizing agent with a sodium salt of saturated fatty acids and encapsulated freshness agents, forming a fibrous mesh microstructure that is resistant to humidity and temperature, allowing for high active substance content and easy dissolution.

Benefits of technology

The composition achieves rapid dissolution, enhanced freshness delivery, and supply chain stability with a low bulk density, using sustainable materials that maintain structural integrity under varying conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

A solid dissolvable composition comprising a crystallization agent, water, and a freshness benefit agent.
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Description

[Technical Field]

[0001] A solid soluble composition (SDC) comprising a mesh microstructure formed from a dry sodium fatty acid carboxylate formulation containing a high concentration of freshness-enhancing agent, which dissolves over different time ranges of washing machine conditions such as temperature, agitation, and water volume to deliver remarkable freshness to the fabric. [Background technology]

[0002] Formulating effective solid-soluble compositions presents considerable challenges. The compositions must be physically stable, temperature- and humidity-resistant, and furthermore, they must be able to dissolve in solution, leaving little to no material residue, thereby fulfilling their desired function. Solid-soluble compositions are well-known in the art and are used in several roles, including detergents, oral and body medications, disinfectants, and cleaning compositions.

[0003] Compositions useful as solid disinfectants and cleansers are well known in several contexts, namely as detergents, bleaches, etc. Dishwasher tablets are popular with consumers because they have several advantages over powder products, such as not requiring measurement, being small, and being easy to store. However, a recurring problem with dishwasher tablets is obtaining tablets that dissolve quickly when added to the washing solution without the need to flow-wrap the tablets to prevent them from crumbling during transport and storage. A further problem with tablets is that they are often formed by compression, which can damage the tablet components, such as the encapsulated active substance.

[0004] Attempts to optimize the performance of tablet technology have primarily focused on modifying the dissolution profile of the tablet. This is considered particularly important for tablets placed in machines, where they encounter water spray at the very beginning of the washing process. European Patent No. 264,701(A) describes a dishwasher tablet comprising a tableting aid consisting of anhydrous and hydrated metasilicates, anhydrous triphosphates, activated chlorine compounds, and a mixture of sodium acetate and spray-dried sodium zeolite.

[0005] In recent years, oral tablets have been manufactured by compressing tablet components under high pressure in a dry state. This is because the tablets are intended to disintegrate in the gastrointestinal tract to facilitate drug absorption, and therefore need to be physically and chemically stable from the time of tablet formation until they reach the gastrointestinal tract, requiring the tablet components to be tightly bound together by the compressive pressure. Initially, wet tablets were available, formed into tablets while wet, and then dried. However, such tablets could not dissolve quickly in the mouth because they were intended to disintegrate in the gastrointestinal tract. Furthermore, these tablets were not mechanically compressed strongly, lacked shape retention, and were not practically applicable to modern uses.

[0006] Tablets formed by compression under low compressive force dissolve more quickly than tablets formed by high compressive force. However, tablets manufactured by these methods are highly brittle. The disintegration and breakage of tablets before ingestion can lead to uncertainty regarding the dose of active ingredient per tablet. Furthermore, high brittleness also causes tablet breakage, resulting in waste during handling in the factory.

[0007] Another form of solid soluble composition is a sheet-like article; for example, sheet-like laundry detergent articles that are completely or substantially water-soluble are known in the art. Unlike liquid laundry detergents, these laundry detergent sheets contain little to no water. Furthermore, they are chemically and physically stable during shipment and storage, and have a significantly smaller physical and environmental footprint. In recent years, these sheet-like laundry detergent articles have made remarkable progress in various aspects, such as increasing the surfactant content by using polyvinyl alcohol (PVA) as the main film-forming agent and improving processing efficiency by using a rotary drum drying process. Consequently, these articles are becoming increasingly commercially available and popular among consumers.

[0008] However, such sheet-type laundry detergent articles still suffer from a severe limitation in the types of surfactants that can be used, because only a handful of surfactants (such as alkyl sulfates) can be processed to form sheets in rotary drum dryers. When other surfactants are incorporated into sheet-type laundry detergent articles, the resulting articles may exhibit undesirable properties (e.g., slow dissolution and undesirable solidification). Subsequently, because the choice of surfactants that can be used in sheet-type laundry detergent articles is thus limited, cleaning performance is poor, especially in areas where fabrics or garments are exposed to various types of stains that can only be effectively removed by different surfactants with complementary cleaning powers.

[0009] The chain length distribution used in solid soaps is balanced to achieve both hardness (i.e., solidity) and lathering. Chain lengths from vegetable oils include both saturated C12 and C14 fatty acids, as well as often several unsaturated C18:1 and C18:2 fatty acids. These compositions foam on their own (undesirable for use in washing machines) and, especially in the presence of more than 5% by weight of water, result in liquid, soft, or shapeless compositions. Fatty acids with C14 and unsaturated chain lengths are generally considered insoluble or softening and should be avoided in the solid-solubility compositions described herein. Fatty acid chain lengths from animal oils containing saturated C16 and C18 fatty acids are blended with vegetable oils to produce hard solid soaps. However, these longer-chain fatty acids are generally considered insoluble.

[0010] Conventional solid soap compositions are solid and generally blend various aliphatic sodium carboxylates with different counterions to achieve properties associated with good-performing solid soaps. For example, U.S. Patent No. 5,540,852 describes a mild-foaming solid soap containing a combination of 50% to 80% by weight of NaC14, NaC16, and NaC18, as well as a fraction of magnesium counterion soap. The presence of both very long-chain fatty acids and magnesium ions yields compositions that have a plate-like structure (i.e., are no longer fibrous) and do not completely dissolve during the washing cycle. British Patent Application No. 2243615(A) describes a β-phase solid soap containing long-chain (e.g., high potency) and unsaturated (e.g., high IV value) fatty acid sodium carboxylates that efficiently do not crystallize and result in a composition that does not completely dissolve. U.S. Patent No. 3,926,828 describes a transparent solid soap containing long-chain sodium soaps comprising NaC14, NaC16, and NaC18, triethanolamine counterions, and branched-chain fatty acids, providing a composition having a non-fibrous form that does not efficiently form crystals.

[0011] U.S. Patent Application Publication 2004 / 0097387(A1) describes a solid soap containing C8 and C10 soaps but substantially no C12 soap, and having a substantial amount of a hydrogenation solvent or water-soluble organic solvent, such as propylene glycol, and free, unneutralized fatty acids. The presence of a hydrogenation solvent and unneutralized fatty acids is known to alter the morphology of fatty acid carboxylates. The altered crystalline morphology adversely affects the solubility of the resulting microstructure of the crystalline mass. Furthermore, hydrogenation solvents are hygroscopic. Therefore, crystalline masses incorporating them readily absorb moisture from the air, making the composition tacky and sticky, which inherently makes it susceptible to supply chain instability, both of which are undesirable properties.

[0012] Conventional laundry compositions blend a wide variety of sodium fatty carboxylates to achieve properties associated with good-performing laundry solids. In International Publication 2022 / 122878(A1), a solid laundry soap composition having a substantial amount (85-90 wt%) of C14 or longer-chain soap, a high level of water, and about half fatty acids (i.e., unneutralized), results in non-fibrous acid soap crystals and a composition that does not dissolve completely. U.S. Patent Application Publication 2007 / 0293412(A1) describes a powder soap composition containing a combination of NaC12, NaC14, and NaC16 fatty acid sodium carboxylates and potassium counterions, wherein the extra-long-chain fatty acids result in a composition that does not dissolve completely during the wash cycle, and the potassium ions result in a crystallizer having a plate structure (i.e., no longer fibrous).

[0013] Furthermore, U.S. Patent No. 11,499,123(B2) and U.S. Patent Application Publication No. 2023 / 0037154(A1) describe various water-soluble pellets containing vegetable soap (e.g., coconut soap), freshness activators, and other components to facilitate preparation by extruder processes. For example, the main microstructures present in Example 1 of both specifications are primarily thin-layer sheets and thin-layer-like vesicle structures (Figures 1A and 1B). When vegetable soap is prepared as described herein using methods common to vegetable soap production, multiple phases consistent with conventional soap boiling are obtained (R. G. Laughlin, The Aqueous Phase Behavior of Surfactants, Academic Press, 1994, section 14.4). The presence of thin-layer sheets and thin-layer-like vesicle microstructures has numerous adverse effects on the final composition, including the production of easily deformable soft compositions and high-density pellets. These compositions also exhibit other unacceptable properties, such as susceptibility to humidity.

[0014] Finally, there are compositions designed to be stable in the presence of a considerable amount of water. For example, U.S. Patent Application Publication 2021 / 0315783(A1) describes a composition having NaC14, NaC16, and NaC18 fatty acid carboxylates, wherein the crystallizing agent forms a network that releases water when compressed. U.S. Patent Application Publication 2002 / 0160088(A1) describes C6-C30 aliphatic metal carboxylates that form a fibrous network in the presence of water and seawater to absorb oil. U.S. Patent Application Publication 2021 / 0315784(A1) describes the use of long-chain (C13-C20) sodium carboxylate fatty acids to prepare a composition that squeezes water out when compressed. These compositions require the use of fatty acids with longer chain lengths (i.e., non-water soluble). [Prior art documents] [Patent Documents]

[0015] [Patent Document 1] European Patent No. 264,701(A) [Patent Document 2] U.S. Patent No. 5,540,852 [Patent Document 3] UK Patent Application No. 2243615(A) [Patent Document 4] U.S. Patent No. 3,926,828 [Patent Document 5] U.S. Patent Application Publication No. 2004 / 0097387(A1) [Patent Document 6] International Publication No. 2022 / 122878(A1) [Patent Document 7] U.S. Patent Application Publication No. 2007 / 0293412(A1) [Patent Document 8] U.S. Patent No. 11,499,123(B2) [Patent Document 9] U.S. Patent Application Publication No. 2023 / 0037154(A1) [Patent Document 10] U.S. Patent Application Publication No. 2021 / 0315783(A1) [Patent Document 11] U.S. Patent Application Publication No. 2002 / 0160088(A1) [Patent Document 12] U.S. Patent Application Publication No. 2021 / 0315784(A1) [Non-patent literature]

[0016] [Non-Patent Document 1] RG Laughlin, The Aqueous Phase Behavior of Surfactants, Academic Press, 1994, section 14.4 [Overview of the Initiative] [Problems that the invention aims to solve]

[0017] What is needed is a solid composition that overcomes the shortcomings of conventional technologies, can contain high levels of active substances, dissolves easily, is resistant to temperature and humidity, and enables supply chain stability. [Means for solving the problem]

[0018] A solid soluble composition comprising a crystallizing agent, water, and a group of capsules containing a freshness-enhancing agent, wherein the crystallizing agent is a sodium salt of a saturated fatty acid having 8 to about 12 methylene groups, and the capsules are An oily core containing freshness-enhancing agents, It is a shell that surrounds the core, The first shell component is substantially inorganic, A condensation layer containing the precursor condensation product, A substantially inorganic first shell component comprising a nanoparticle layer containing inorganic nanoparticles, the condensation layer comprising a substantially inorganic first shell component disposed between the core and the nanoparticle layer, A shell comprising a second inorganic shell component surrounding a first shell component, the second inorganic shell component surrounding a nanoparticle layer, The precursor comprises at least one compound of formula (I), (M v O z Y n ) w (Equation I) In the formula, M is one or more of silicon, titanium, and aluminum. v is the valence of M, which is 3 or 4. z is between 0.5 and 1.6. Each Y is independently -OH, -OR 2 Hello,

[0019] [ka] -NH2, -NHR 2 , -N(R 2 )2, and

[0020] [Chemical] selected from, wherein R 2 is C1-C 20 alkyl, C1-C 20 alkylene, C6-C 22 aryl, or a 5-12 member heteroaryl containing 1-3 ring heteroatoms selected from O, N, and S, R 3 is H, C1-C <tmp 20 alkyl, C1-C 20 alkylene, C6-C 22 aryl, or a 5-12 member heteroaryl containing 1-3 ring heteroatoms selected from O, N, and S, n is 0.7-(v-1), w is 2-2000, a solid-soluble composition.

[0021] The solid-soluble composition has a low bulk density, is porous, enhances dissolution, and results in an enhanced and very lightweight product for e-commerce. The composition is also composed of natural, readily available, relatively inexpensive, and sustainable materials that are resistant to humidity and high temperatures to enhance stability in the supply chain.

[0022] A method for producing a solid-soluble composition, comprising solubilizing a crystallization agent in a solid-soluble composition mixture (SDCM) by heating the crystallization agent and an aqueous phase until the crystallization agent is solubilized, adding a population of capsules containing a freshness benefit agent, and forming a rheological solid composition by crystallizing the crystallization agent in the solid-soluble composition mixture by cooling the solid-soluble composition mixture below the crystallization temperature, removing water, and adding any freshness benefit agent to produce the solid-soluble composition, where the capsule has an oily core containing a freshness benefit agent, and a shell surrounding the core, where the shell has a first shell component that is substantially inorganic, and a condensation layer containing a condensation product of a precursor, and A nanoparticle layer containing inorganic nanoparticles, wherein a condensation layer is disposed between the core and the nanoparticle layer, comprising a substantially inorganic first shell component, A shell comprising a second inorganic shell component surrounding a first shell component, the second inorganic shell component surrounding a nanoparticle layer, The precursor comprises at least one compound of formula (I), (M v O z Y n ) w (Equation I) In the formula, M is one or more of silicon, titanium, and aluminum. v is the valence of M, which is 3 or 4. z is between 0.5 and 1.6. Each Y is independently -OH, -OR 2 Hello,

[0023] [ka] -NH2, -NHR 2 , -N(R 2 )2, and

[0024] [ka] Selected from, in the formula, R 2 C1~C 20 Alkyl, C1-C 20 Alkylene, C6~C 22 An aryl or 5-12 membered heteroaryl containing 1-3 ring heteroatoms selected from O, N, and S, R 3 H, C1~C 20 Alkyl, C1-C 20 Alkylene, C6~C 22 An aryl or 5-12 membered heteroaryl containing 1-3 ring heteroatoms selected from O, N, and S, n is 0.7~(v-1), A method is provided where w is between 2 and 2000.

[0025] Fragrance capsules can be added when the mixture is cooled (i.e., mixed) without applying compressive and shear stresses, otherwise the compressive and shear stresses would break the capsule walls and release the fragrance. The fragrance can be optionally added by emulsification during the mixing stage, where fragrance droplets are stabilized by utilizing the surfactant properties of the crystallizing agent before the formation of the fibrous microstructure of the initially formed rheological solid, or it can be optionally added after the drying stage and the formation of the solid-soluble composition to allow for uniform penetration into the fibrous microstructure. [Brief explanation of the drawing]

[0026] This specification concludes with claims that describe in detail and explicitly claim the subject matter to be considered as the disclosure, but a deeper understanding of the disclosure can be gained by reading the following explanatory text in conjunction with the accompanying drawings. Some drawings have been simplified by omitting selected elements for the purpose of more clearly illustrating other elements. Such omission of elements in some drawings does not necessarily indicate the presence or absence of elements in any of the exemplary embodiments, unless explicitly stated in the corresponding written description. None of the drawings are necessarily to a certain scale. [Figure 1A] Representative scanning electron microscope (SEM) images of the microstructure of comparative examples prepared from coconut oil are shown. [Figure 1B] Representative scanning electron microscope (SEM) images of the microstructure of comparative examples prepared from hydrogenated coconut oil are shown. [Figure 2A] This image shows a scanning electron microscope (SEM) photograph of the crystallizing agent crystals in the composition of the present invention. [Figure 2B] This image shows a scanning electron microscope (SEM) of a mesh microstructure prepared from a crystallized crystallizing agent in the DSC domain of the composition of the present invention. [Figure 3A]This image shows a scanning electron microscope (SEM) of a viable fragrance capsule dispersed in a mesh microstructure of DSC domains in Example CB of the present invention, which has a PMC capsule. [Figure 3B] This image shows a scanning electron microscope (SEM) of fragrance capsules dispersed in a mesh microstructure of SDC domains in Example CB of the present invention, which has PMC capsules. [Figure 4] This image shows a scanning electron microscope (SEM) of a flavor capsule that was destroyed as a result of the pressure used to manufacture conventional compressed tablets. [Figure 5A] The image shows a microcomputed tomography (micro-CT) image of the SDC of the present invention, prepared through the process described, leaving a composition with many open pores (black and gray areas) in its microstructure to facilitate dissolution. [Figure 5B] This image shows a microcomputed tomography (micro-CT) scan of a conventional compressed tablet with a complete solid structure. [Figure 6] This graph shows the amount of fragrance in the headspace of a dry, rubbed fabric treated with a viable amount of a commercially available product (approximately 1 gram of fragrance capsule, a heaping cap) and the composition of the present invention (approximately 2.5 grams of fragrance capsule, half a cap) (e.g., similar to sample EO). The composition of the present invention has a much larger amount of fragrance in the air, and a much smaller amount of the product is added to the wash. [Figure 7A] The dissolution behavior of SDC prepared using different combinations of crystallizing agents in commercially available PEG at 37°C, 25°C, and 5°C, respectively, as determined using a dissolution test method, is shown. [Figure 7B] The dissolution behavior of SDC prepared using different combinations of crystallizing agents in commercially available PEG at 37°C, 25°C, and 5°C, respectively, as determined using a dissolution test method, is shown. [Figure 7C] The dissolution behavior of SDC prepared using different combinations of crystallizing agents in commercially available PEG at 37°C, 25°C, and 5°C, respectively, as determined using a dissolution test method, is shown. [Figure 8]This graph shows the stable temperature of the SDC domain for three compositions of the present invention, using a thermal stability test method. [Figure 9] This graph shows the hydration stability of the SDC domain of the present invention (%dm < 5% at 80% RH) by measuring the water uptake at 25°C when exposed to different relative humidities using a humidity test method. This is in contrast to Comparative Example EC30, a commercially available facial cleanser, and Example 1 described in U.S. Patent No. 11,499,123(B2). [Figure 10] This graph shows the dissolution profiles at 25°C, determined by a dissolution test method, as a function of the weight % of the fragrance capsule for four compositions of the present invention (Sample AA, Sample AB, Sample AC, and Sample AD). It demonstrates that the dissolution characteristics are mainly a function of the blend of crystallizing agents and do not depend significantly on the amount of fragrance capsule. [Figure 11] This graph shows the average percentage of mass loss obtained by the dissolution test method for sample AC when dissolved for 1 minute, 2 minutes, 3 minutes, and 4 minutes, respectively. The linearity of the average percentage of mass loss allows for extrapolation to complete the average mass loss up to approximately 13 minutes. [Figure 12] This graph shows the effect of SDCM composition on the possibility of crystallization during the formation stage using a mixture of C12 / C10 crystallizing agents. [Figure 13A] A representative scanning electron microscope (SEM) image of a comparative composition prepared from potassium palmitate (KC16) and exhibiting small plate-like crystals is shown. [Figure 13B] A representative scanning electron microscope (SEM) image of a comparative composition prepared from triethanolamine palmitate (TEA C16) and exhibiting small plate-like crystals is shown. [Modes for carrying out the invention]

[0027] The present invention includes a solid-soluble composition comprising a crystalline mesh. The crystalline mesh ("mesh") comprises a relatively rigid three-dimensional linked crystalline framework of fibrous crystalline particles formed from a crystallizing agent. The solid-soluble composition of the present invention has a crystallizing agent(s), a low water content, a freshness-enhancing agent(s), and is readily soluble in water at or above / below room temperature.

[0028] While not limited to theory, the counterions in the fatty acid compositions of the present invention are thought to contribute to providing the unique performance characteristics of the disclosed compositions, which will be described in more detail below. Sodium counterions result in fibrous crystals of fatty acid carboxylates that form a mesh microstructure. This mesh microstructure provides further advantages for low-density compositions, which are advantageous in ensuring rapid dissolution and reducing transport costs. Together with other counterions such as potassium, magnesium, and triethanolamine, fatty acid carboxylates form plate-like crystals, making dry compositions containing them brittle or difficult to dissolve. Counterions for non-performance solid-solubility compositions can be introduced through the use of strong alkaline agents other than sodium hydroxide (e.g., potassium hydroxide) or separately as additive salts such as potassium chloride or magnesium chloride. The use of counterions other than sodium generally does not produce the mesh structure that provides the performance characteristics of the disclosed compositions.

[0029] The disclosed solid-soluble composition of the present invention contains sodium low-chain (C8-C12) fatty acid carboxylates.

[0030] The present invention may be more readily understood by referring to the detailed description of the following exemplary compositions. It should be understood that the claims are not limited to the specific products, methods, conditions, apparatus, or parameters described herein, and that the terms used herein are not intended to limit the claimed invention.

[0031] As used herein, “Solid Solubility Composition” (SDC) comprises a crystallizing agent of sodium fatty acid carboxylate, which, when processed as described herein, forms an interconnected crystalline mesh of fibers that readily dissolves at a target washing temperature; an optional freshness beneficial agent; and water in an amount of 10% by weight or less. SDC may be in solid form, such as powder, particles, aggregates, flakes, granules, pellets, tablets, lozenges, packs, briquettes, bricks, solid blocks, unit doses, or other solid forms known to those skilled in the art. In this specification, “Beads” refers to a specific solid form having a hemispherical shape with a radius of approximately 2.5 mm.

[0032] When used herein, “Solid Solubility Composition Mixture” (SDCM) comprises components of the solid solubility composition before water removal (e.g., during the mixing or crystallization stage). The SDCM comprises an aqueous phase and further comprises an aqueous support. The aqueous support may be distilled water, deionized water, or tap water. The aqueous support may be present in an amount of about 65% to 99.5% by weight, or about 65% to 90% by weight, or about 70% to 85% by weight, or about 75% by weight of the SDCM.

[0033] As used herein, “rheological solid composition” (RSC) describes the solid form of SDCM after crystallization (crystallization stage) before water removal to obtain SDC, where RSC contains more than approximately 65% ​​by weight of water, and the solid form is derived from a linked “structured” mesh (mesh microstructure) of fibrous crystalline particles from the crystallizing agent.

[0034] The “freshness enhancers” used herein and further described below include materials added to SDCM, RSC, or SDC to impart a freshness effect to fabrics through washing. In some embodiments, the freshness enhancer may be a neat fragrance. In embodiments, the freshness enhancer may be an encapsulated fragrance (fragrance capsule). In embodiments, the freshness enhancer may be a mixture of fragrances and / or fragrance capsules.

[0035] As used herein, “crystallization temperature” is used to describe the temperature at which a crystallizing agent (or combination of crystallizing agents) is completely solubilized in SDCM, or, as used herein, to describe the temperature at which a crystallizing agent (or combination of crystallizing agents) exhibits any crystallization in SDCM.

[0036] As used herein, “dissolution temperature” is used to describe the temperature at which SDC is completely solubilized in water under normal washing conditions.

[0037] As used herein, “stable temperature” is the temperature at which most (or all) of the SDC material is completely melted, such that the composition no longer exhibits a stable solid structure and can be considered a liquid or paste, and the solid soluble composition no longer functions as intended. The stable temperature is the lowest thermal transition temperature determined by a thermal stability test method. In embodiments of the present invention, the stable temperature may be greater than about 40°C, more preferably greater than about 50°C, more preferably greater than about 60°C, and most preferably greater than about 70°C, in order to ensure stability in the supply chain. Those skilled in the art will understand how to measure the lowest thermal transition temperature using differential scanning calorimetry (DSC) equipment.

[0038] As used herein, “humidity stability” is the relative humidity at which a low-moisture composition spontaneously absorbs more than 5% by weight of its original mass in water from the ambient humidity at 25°C. Absorbing small amounts of water when exposed to a humid environment allows for more sustainable packaging. Absorbing large amounts of water risks the composition softening or liquefying and no longer functioning as intended. In embodiments of the present invention, humidity stability may be greater than 70% RH, more preferably greater than 80% RH, more preferably greater than 90% RH, and most preferably greater than 95% RH. Those skilled in the art will understand the method of measuring a 5% weight increase using a dynamic vapor sorption (DVS) apparatus, which is further described in the humidity test method.

[0039] When used herein, “cleaning composition” means, unless otherwise specified, general-purpose or “strong” cleaning agents in the form of granules or powders, in particular cleaning detergents; general-purpose cleaning agents in the form of liquids, gels or pastes, in particular so-called strong liquid types; liquid detergents for delicate fabrics; dishwashing detergents or light dishwashing detergents, in particular highly foaming types; dishwasher detergents, liquid detergents and disinfectants (including antimicrobial handwashing types, cleaning bars, mouthwashes, denture cleaners, toothpastes, car or carpet shampoos, and bathroom cleaners), including various pouches, tablets, granules, liquids and quick-rinsing types for household and commercial use; hair shampoos and hair conditioners; shower gels and foam baths, and metal cleaners; in addition, cleaning aids such as bleaching additives and “stain sticks” or pre-treatment types, dryer additive sheets, dry and wet wipes and pads, nonwoven fabric substrates, and products having substrates such as sponges; in addition, sprays and mists.

[0040] As used herein, “dissolves during normal use” means that a solid-soluble composition dissolves completely or substantially during a washing cycle. Those skilled in the art will recognize that washing cycles have a wide range of conditions (e.g., cycle time, machine type, washing solution composition, temperature). A suitable composition dissolves completely or substantially under at least one of these conditions. Suitable compositions and microstructures exhibit a dissolution rate of more than 5% at a dissolution temperature of 37°C, as determined by a dissolution test method, for the desired dissolution profile under washing conditions. A A more preferable dissolution temperature of 25°C yields a dissolution rate of over 5% M A This makes it possible.

[0041] As used herein, the term "bio-based" material refers to renewable materials.

[0042] As used herein, the term “renewable material” refers to a material produced from a renewable material. As used herein, the term “renewable resource” refers to a resource produced by natural processes at a rate comparable to its consumption rate (e.g., within a 100-year timeframe). This resource may be replenished naturally or by agricultural technology. Non-limiting examples of renewable resources include plants (e.g., sugarcane, beets, maize, potatoes, citrus fruits, woody plants, lignocellulose, hemicellulose, and cellulose waste), animals, fish, bacteria, fungi, and forest products. These resources may be naturally occurring, hybridized, or genetically modified organisms. Natural resources such as crude oil, coal, natural gas, and peat, which take more than 100 years to form, are not considered renewable resources. Since at least a portion of the materials of the present invention are derived from renewable resources that can be decarbonized, the use of these materials can reduce the potential for global warming and fossil fuel consumption.

[0043] As used herein, the term “bio-based content” refers to the amount of carbon in a material derived from renewable resources, as a percentage of the weight (mass) of the total organic carbon in the material, determined using ASTM D6866-10, Method B.

[0044] The term "solid" refers to the physical state of a composition under the expected conditions for storage and use of a solid-soluble composition.

[0045] When used herein, articles such as "a" and "an" are understood to mean one or more of the claims or descriptions when used in the claims.

[0046] As used herein, the terms “include,” “includes,” and “including” are intended to be non-limiting.

[0047] Unless otherwise noted, all concentrations of components or compositions refer to the active portion of that component or composition, excluding impurities that may be present in the commercially available source of such components or compositions, such as residual solvents or by-products.

[0048] All percentages and ratios are calculated on a weight basis unless otherwise specified. All percentages and ratios are calculated based on the total composition unless otherwise specified.

[0049] It should be understood that all maximum numerical limits given throughout this specification include all lower numerical limits as if they were explicitly stated herein. All minimum numerical limits shown throughout this specification include all higher numerical limits as if they were explicitly stated herein. All numerical ranges given throughout this specification include all narrow numerical ranges that fall within such broad numerical ranges as if they were explicitly stated herein.

[0050] The solid soluble composition (SDC) comprises fibrous linked crystals (Figures 2A and 2B) having sufficient crystalline fiber length and concentration to form a mesh microstructure. The mesh allows the SDC to be solid with a relatively small amount of material. The mesh also allows for the capture and protection of particulate activators, such as freshness beneficial agents, such as fragrance capsules (Figures 3A and 3B). In some embodiments, the activator, e.g., freshness beneficial activator, may be discrete particles having a diameter of less than 100 μms, preferably less than 50 μms, and more preferably less than 25 μms, such as fragrance capsules. Furthermore, the activator, e.g., freshness beneficial agent, may be a liquid freshness beneficial agent, such as neat fragrance. The voids in the mesh microstructure allow for the inclusion of very high concentrations of activator. In embodiments, preferably up to about 15% by weight, preferably up to about 15% to about 0.01% by weight, preferably about 15% to about 0.5% by weight, preferably about 15% to about 2% by weight, and most preferably about 15% to about 2% by weight of activator can be added. The voids also provide pathways for water to be incorporated into the microstructure during washing, accelerating dissolution compared to a completely solid composition.

[0051] Remarkably, it is possible to prepare SDCs with high solubility, low water content, moisture resistance, and thermal stability. Sodium salts of long-chain fatty acids (i.e., sodium myristate (NaC14) to sodium stearate (NaC18)) can form fibrous crystals. It is generally understood that the crystal growth pattern resulting in fibrous crystallization reflects the hydrophilic (head group) and hydrophobic (hydrocarbon chain) balance of the NaC14-NaC18 molecules. As disclosed in this application, the crystallizers used have the same hydrophilic contribution but exhibit very different hydrophobicity due to the shorter hydrocarbon chain of the fatty acid sodium carboxylate used. In fact, the carbon chain is about half the length of those previously disclosed (U.S. Patent Application Publication 2021 / 0315783(A1)). Furthermore, those skilled in the art will recognize that many surfactants, such as ethoxylated alcohols with the same chain but different head groups, are susceptible to considerable moisture incorporation and significant temperature-induced changes. The selected group of crystallizers in the present invention enables all of these useful properties.

[0052] Methods for producing solid-soluble compositions offer several advantages over other approaches. Firstly, as previously mentioned, producing similar compositions by compression (e.g., tablet making) and, in some cases, extrusion, has detrimental effects on dispersed flavor capsules. The tablet-making process compresses the solid material, and although not desired to be bound by theory, it introduces significant local strain into the material, rupturing the flavor capsules and releasing the encapsulated flavor (Figure 4). Secondly, the production of similar compositions by compression (e.g., tablet making) also compresses the structure, making them denser and less soluble (Figures 5A and 5B). Thirdly, the main commercially available fabric freshness bead production processes limit the selection of freshness beneficial agents. Polyethylene glycol (PEG), used to form most currently commercially available beads, must be processed at temperatures between 70°C and 80°C, which is higher than the melting point of PEG. Preparing SDC at approximately 25°C allows for a wider variety of neat flavors and flavor capsules. In actual processes, the melting point temperature of PEG must be maintained for several hours, and some fragrance ingredients are highly volatile and evaporate during processing. Inclusion of fragrance oils for SDC is carried out at room temperature, thus broadening the range of fragrance ingredients that can be added as neat fragrances. Finally, many fragrance capsule wall chemistrys cease to function at higher process temperatures, causing the fragrance to release prematurely and thus becoming ineffective as freshness-beneficial activators. By enabling lower temperature process conditions, the SDC compositions described herein allow for the utilization of a wider range of capsule wall chemistrys.

[0053] Currently available water-soluble polymers limit the use of fragrance capsules as fragrance enhancer delivery systems. Fragrance capsules are delivered in aqueous slurry, with the slurry limited to a maximum of 20-30% by weight of the encapsulated fragrance, and the total amount of encapsulated fragrance limited to approximately 1.2% by weight. The use of fragrance capsule concentrations exceeding these limits the active concentration in the fragrance capsule slurry, which also introduces water that prevents the water-soluble carrier from solidifying, thereby limiting fragrance capsule delivery. As a result, consumers generally do not fully enjoy the desired amount of freshness due to limitations on what they can add to their cleaning solutions. The solid-soluble composition of the present invention can construct fragrance capsules with up to over 15% by weight, resulting in approximately 10 times greater freshness delivery compared to current water-soluble polymers. Such high delivery is at least partially enabled by the low water content of the composition, allowing users to experience a significant freshness upgrade over current commercially available fabric freshness beads (Figure 5).

[0054] The improved performance of the present invention's composition compared to current freshness laundry beads is thought to be related to the solubility of the composition's matrix. While not limited to theory, if the composition dissolves in the later stages of the wash cycle, the fragrance capsules are likely to remain on the fabric throughout the wash cycle (TTW), enhancing freshness performance. Optimizing performance is complicated by the wide variety of wash conditions around the world. For example, Japan uses cold water at 4°C, North America uses 25°C, and Russia uses 37°C. Furthermore, North America can utilize top-loading machines with large amounts of water. In much of the world, where highly efficient machines with much less water are used, complete dissolution can be a problem. Current water-soluble polymers used in commercially available fabric freshness beads have limited solubility, set by the limited molecular weight range of polyethylene glycol (PEG) used as the dissolution matrix. As a result, a single PEG bead must function under a certain range of machine and wash conditions, limiting its performance. The solubility of this composition can be adjusted to suit a range of machine and cleaning conditions by adjusting the ratio of the composition components (e.g., sodium laurate (NaL): sodium decanoate (NaD) ratio). (Figures 7A-7C) This allows for the creation of a wide range of compositions useful under many different cleaning conditions, and various SDCs can release freshness beneficial agents at different times during the cleaning cycle. Figure 7A - Different time profiles at 37°C, Figure 7B - Different time profiles at 25°C, and Figure 7C - Different profiles at 4°C for commercially available PEG-based beads.

[0055] Controlling water migration in mixed bead compositions (e.g., low-water-content and high-water-content beads) is difficult with current water-soluble polymers because water migrates to the surface of the high-water-content beads. Since beads are often packaged in encapsulated packages to minimize moisture permeation into and out of the package, moisture trapped on the surface of the high-water-content beads comes into contact with the surface of the low-water-content beads, leading to bead aggregation and product distribution problems. In contrast, the structure of solid-soluble compositions prevents water migration from the SDC and therefore allows the use of water-sensitive materials (e.g., cationic polymers, bleaches).

[0056] As mentioned above, current bead formulations using PEG (and other structured materials) are prone to decomposition when exposed to heat and / or humidity during transport. Therefore, special transport conditions and / or packaging are often required to mitigate such degradation. The SDC of the present invention comprises a crystalline structure that is stable within a range of temperature and humidity conditions. In a preferred embodiment, the SDC essentially does not exhibit a melt transition below 50°C, and in a most preferred embodiment, the SDC essentially does not exhibit a melt transition below 40°C, as determined by a thermal stability test method (Figure 8). As a result, no additional resources are required for refrigeration and plastic packaging during transport to prevent moisture migration. The SDC allows for robust protection of freshness beneficial agents. In a preferred embodiment, the SDC exhibits less than 5% dm at 70% RH at 25°C, as determined by a humidity test method, in a more preferred embodiment, less than 5% dm at 80% RH, and in a most preferred embodiment, less than 5% dm at 90% RH (Figure 9).

[0057] While we do not wish to be limited to theory, it is believed that the high dissolution rate of solid-state compositions is at least partially provided by the mesh microstructure. This is considered important because this porous structure provides the product with both "lightness" and the ability to dissolve rapidly compared to compressed tablets, which allows for easy delivery of the active substance during use. It is considered important that a single crystallizer (or a combination of other crystallizers) forms fibers in the process of preparing the solid-state composition. Fiber formation enables solid-state compositions that can retain the active substance without requiring compression that could break microencapsulation.

[0058] In this embodiment, the fibrous crystals may have a minimum length of 10 μm and a thickness of 2 μm, as determined by a fiber testing method.

[0059] In the embodiment, the freshness beneficial agent may be in the form of particles, which may be a) uniformly dispersed within a mesh microstructure, b) coated on the surface of a mesh microstructure, or c) some of the particles may be dispersed within a mesh microstructure and some of the particles may be coated on the surface of a mesh microstructure. In the embodiment, the freshness beneficial agent may be a) in the form of a soluble film on the upper surface of a mesh microstructure, b) in the form of a soluble film on the bottom surface of a mesh microstructure, or c) in the form of a soluble film on both the bottom and top surfaces of the mesh. The active substance may exist as a combination of a soluble film and particles.

[0060] Crystallizing agent The crystallizing agent is selected from a small group of sodium fatty acid carboxylates having saturated chains and chain lengths in the range of C8 to C12. Within this compositional range, using the described preparation method, such sodium fatty acid carboxylates provide a fibrous mesh microstructure, an ideal solubilization temperature for preparation and use, and, by appropriate blending, the resulting solid soluble compositions can have their properties adjusted to suit various applications and conditions.

[0061] The crystallizing agent may be present in the solid soluble composition mixture in amounts of approximately 5% to approximately 35% by weight, approximately 10% to approximately 35% by weight, and approximately 15% to approximately 35% by weight. The crystallizing agent may also be present in the solid soluble composition in amounts of approximately 50% to approximately 99% by weight, approximately 60% to approximately 95% by weight, and approximately 70% to approximately 90% by weight.

[0062] Suitable crystallizing agents include sodium octanoate (NaC8), sodium decanoate (NaC10), sodium dodecanoate, or sodium laurate (NaC12), and combinations thereof.

[0063] aqueous phase The solid soluble composition mixture and the aqueous phase present in the solid soluble composition consist of an aqueous support of water and other trace components, optionally including a sodium chloride salt. The aqueous phase may also contain minimal amounts of salts with other (non-sodium) cations or hydrogen solvents.

[0064] The aqueous phase may be present in the solid soluble composition mixture in an amount of about 65% to about 95% by weight, about 65% to about 90% by weight, or about 65% to about 85% by weight of the rheological solid formed as an intermediate composition after the crystallization of the solid soluble composition mixture.

[0065] Sodium chloride in the aqueous phase solid solubility composition mixture may be present in amounts of 0% to about 10% by weight, 0% to about 5% by weight, and 0% to about 1% by weight. The most preferred embodiment contains less than 2% by weight of sodium chloride to ensure the best humidity stability.

[0066] Capsule materials The capsule comprises a shell material (an beneficial agent delivery capsule or simply the “capsule”) that encapsulates the beneficial agent within a core. The beneficial agent may be referred to herein as the “beneficial agent” or the “encapsulated beneficial agent.” The encapsulated beneficial agent is enclosed within the core.

[0067] Capsules may be present in the composition in amounts of about 0.05% to about 20% by weight, or about 0.05% to about 10% by weight, or about 0.1% to about 5% by weight, or about 0.2% to about 2% by weight. As discussed herein, the amount or weight percentage of capsules refers to the total of the shell material and the core material.

[0068] The capsule may have an average shell thickness of about 10 nm to about 10,000 nm, preferably about 170 nm to about 1,000 nm, and more preferably about 300 nm to about 500 nm.

[0069] In the various embodiments described herein, the capsules can have a volume-weighted average capsule diameter of about 0.1 μm to about 300 μm, about 0.1 μm to about 200 μm, about 1 μm to about 200 μm, about 10 μm to about 200 μm, or about 10 μm to about 50 μm. Advantageously, the embodiments described herein have proven to provide large capsules (e.g., average diameter of about 10 μm or more) without sacrificing the overall stability of the capsule and / or maintaining good fracture strength.

[0070] In the various embodiments described herein, the capsules can have a volume-weighted average capsule diameter of about 0.1 μm to about 300 μm, about 0.1 μm to about 200 μm, about 1 μm to about 200 μm, about 10 μm to about 200 μm, or about 10 μm to about 50 μm. Advantageously, the embodiments described herein have proven to provide large capsules (e.g., average diameter of about 10 μm or more) without sacrificing the overall stability of the capsule and / or maintaining good fracture strength.

[0071] Surprisingly, it was found that, in addition to the inorganic shell, the volume-to-core-to-shell ratio can also play an important role in ensuring the physical integrity of the capsule. Shells that are too thin relative to the overall size of the capsule (core-to-shell ratio > 98:2) tend to suffer from a lack of self-integration. On the other hand, shells that are extremely thick relative to the capsule diameter (core-to-shell ratio < 80:20) tend to have higher shell permeability in surfactant-rich matrices. While it would intuitively be expected that a thicker shell would result in lower shell permeability (because this parameter affects the average diffusion pathway of the active substance across the shell), surprisingly, it was found that capsules of the present invention having shells with thicknesses exceeding a threshold exhibited higher shell permeability. This upper threshold is thought to depend to some extent on the capsule diameter. The volume-to-core-to-shell ratio is determined according to the method provided in the Test Methods section below.

[0072] The permeability measured by the transmittance test methods described below correlates with the porosity of the capsule shell. In embodiments, a capsule or a group of capsules has a transmittance of about 0.01% to about 80%, about 0.01% to about 70%, about 0.01% to about 60%, about 0.01% to about 50%, about 0.01% to about 40%, about 0.01% to about 30%, or about 0.01% to about 20%, as measured by the transmittance test methods described above. For example, the transmittance may be about 0.01, 0.1, 0.5, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 65, 70, 75, or 80%.

[0073] The capsule may have a volume core-to-shell ratio of 50:50 to 99:1, preferably 60:40 to 99:1, preferably 70:30 to 98:2, and more preferably 80:20 to 96:4.

[0074] It may be desirable to have a specific combination of these capsule characteristics. For example, a capsule may have a volume-core-to-shell ratio of approximately 99:1 to approximately 50:50, an average volume-weighted capsule diameter of approximately 0.1 μm to approximately 200 μm, and an average shell thickness of approximately 10 nm to approximately 10,000 nm. A capsule may have a volume-core-to-shell ratio of approximately 99:1 to approximately 50:50, an average volume-weighted capsule diameter of approximately 10 μm to approximately 200 μm, and an average shell thickness of approximately 170 nm to approximately 10,000 nm. A capsule may have a volume-core-to-shell ratio of approximately 98:2 to approximately 70:30, an average volume-weighted capsule diameter of approximately 10 μm to approximately 100 μm, and an average shell thickness of approximately 300 nm to approximately 1,000 nm.

[0075] In certain embodiments, the average volumetric diameter of the capsule is 1 to 200 micrometers, preferably 1 to 10 micrometers, and more preferably 2 to 8 micrometers. In other embodiments, the shell thickness is 1 to 10,000 nm, 1 to 1,000 nm, or 10 to 200 nm. In further embodiments, the capsule has an average volumetric diameter of 1 to 10 micrometers and a shell thickness of 1 to 200 nm. Capsules having an average volumetric diameter of 1 to 10 micrometers and a shell thickness of 1 to 200 nm have been found to have higher fracture strength.

[0076] While not bound by theory, it is thought that higher fracture strength leads to better persistence during the washing process, and the washing process can cause mechanically weak capsules to rupture prematurely due to mechanical constraints in the washing machine.

[0077] Capsules having an average volume-weighted diameter of 1 to 10 micrometers and a shell thickness of 10 to 200 nm will only be resistant to mechanical constraints if the silica precursor used is carefully selected and fabricated. In some embodiments, the precursor has a molecular weight of 2 to 5 kDa, more preferably 2.5 to 4 kDa. In addition, the concentration of the precursor must be carefully selected, and the concentration is 20 to 60% by weight, preferably 40 to 60% by weight, of the oil phase used during encapsulation.

[0078] While not bound by theory, it is believed that high molecular weight precursors have a much slower migration time from the oil phase to the water phase. This slower migration time is thought to result from a combination of three phenomena: diffusion, distribution, and reaction kinetics. This phenomenon is important in the context of small-sized capsules due to the fact that the total surface area between the oil and water in the system increases as the capsule diameter decreases. A larger surface area leads to greater migration of the precursor from the oil phase to the water phase, which in turn reduces the polymerization yield at the interface. Therefore, to mitigate the effects caused by the increase in surface area and obtain the capsule according to the present invention, a higher molecular weight precursor may be required.

[0079] The method used to manufacture the capsules can produce capsules with a low coefficient of variation in capsule diameter. By controlling the size distribution of the capsules, it is possible to improve the fracture strength of the group and enable the group to have a more uniform fracture strength. The capsule group can have a coefficient of variation in capsule diameter of 40% or less, preferably 30% or less, and more preferably 20% or less.

[0080] For capsules containing a cost-effective core material that functions in consumer goods applications, the capsule should i) be resistant to core diffusion during the product's shelf life (e.g., low leakage or permeability), ii) have the ability to deposit on a targeted surface during application, and iii) have the ability to release the core material by mechanically rupturing the shell at the correct time and place, thereby providing the intended benefit to the end consumer.

[0081] The capsules described herein can have an average fracture strength of 0.1 MPa to 10 MPa, preferably 0.25 MPa to 5 MPa, and more preferably 0.25 MPa to 3 MPa. While conventionally, completely inorganic capsules have inferior fracture strength, the capsules described herein can have a fracture strength exceeding 0.25 MPa, improving stability and allowing them to induce the release of beneficial agents upon receiving a bursting stress of a specified magnitude.

[0082] Preferably, the core is oily. In embodiments, the core may be liquid at the temperature in which it is used in the compound product. The core may be liquid at or near room temperature and may contain one or more beneficial agents.

[0083] The freshness beneficial agent may be at least one of a fragrance mixture, an odor neutralizer, or a combination thereof. In one embodiment, the fragrance delivery technology may include a beneficial agent delivery capsule formed by at least partially surrounding the beneficial agent with a shell material. The beneficial agents are 3-(4-t-butylphenyl)-2-methylpropanal, 3-(4-t-butylphenyl)-propanal, 3-(4-isopropylphenyl)-2-methylpropanal, 3-(3,4-methylenedioxyphenyl)-2-methylpropanal, and 2,6-dimethyl-5-heptenal, α-damascone, β-damascone, γ-damascone, β-damascenone, 6,7-dihydro-1,1,2,3,3-pentamethyl-4(5H)-indanone, methyl-7,3-dihydro-2H-1,5-benzodioxepin-3-one, and 2-[2-(4-methyl-3-cyclohexenyl-1-yl)propyl]cyclopenta Materials may be selected from the group consisting of fragrance raw materials such as n-2-one, 2-sec-butylcyclohexanone, and β-dihydroionone, linalool, ethyllinalool, tetrahydrolinalool, and dihydromyrcenolate; waxes such as silicone oil and polyethylene wax; essential oils such as fish oil, jasmine, camphor, and lavender; skin cooling agents such as menthol and methyl lactate; vitamins such as vitamins A and E; sunscreens; glycerin; catalysts such as manganese catalysts or bleaching catalysts; bleaching particles such as perborates; silicon dioxide particles; antiperspirant active substances; cationic polymers, and mixtures thereof. Suitable beneficial agents can be obtained from Givaudan Corp. (Mount Olive, New Jersey, USA), International Flavors & Fragrances Corp. (South Brunswick, New Jersey, USA), Firmenich Company (Geneva, Switzerland), or Encapsys Company (Wisconsin, USA).As used herein, “fragrance raw materials” means one or more of the following: aromatic essential oils; aromatic compounds; materials supplied with aromatic essential oils, aromatic compounds, stabilizers, diluents, processing agents, and admixtures; and any materials commonly associated with aromatic essential oils and aromatic compounds.

[0084] The core preferably contains fragrance ingredients. The core may contain about 1% to 100% by weight of fragrance based on the total weight of the core. Preferably, the core may contain about 50% to 100% by weight of fragrance based on the total weight of the core, or about 80% to 100% by weight of fragrance based on the total weight of the core. Typically, higher levels of fragrance are preferred for improved delivery efficiency.

[0085] The fragrance raw material may contain one or more, preferably two or more, fragrance raw materials. The term "fragrance raw material" (or "PRM") as used herein means a compound having a molecular weight of at least about 100 g / mol and useful for imparting odor, fragrance, essence, or scent, either alone or in combination with other fragrance raw materials. Typical PRMs include alcohols, ketones, aldehydes, esters, ethers, nightlights, and alkenes such as terpenes.

[0086] PRMs may be characterized by their boiling point (BP), measured at atmospheric pressure (760 mmHg), and their octanol / water partition coefficient (P), which may be described in relation to logP, determined according to the test method described in the Test Methods section. Based on these characteristics, PRMs may be classified as Quadrant I, Quadrant II, Quadrant III, or Quadrant IV fragrances, as described in more detail below. Fragrances with various PRMs from different quadrants may be desirable, for example, to provide aromatic effects at different touchpoints during normal use.

[0087] Fragrance raw materials having a boiling point BP lower than approximately 250°C and a logP lower than approximately 3 are known as Quadrant I fragrance raw materials. Quadrant I fragrance raw materials are preferably limited to less than 30% of the fragrance composition. Fragrance raw materials having a BP higher than approximately 250°C and a logP higher than approximately 3 are known as Quadrant IV fragrance raw materials, fragrance raw materials having a BP higher than approximately 250°C and a logP lower than approximately 3 are known as Quadrant II fragrance raw materials, and fragrance raw materials having a BP lower than approximately 250°C and a logP higher than approximately 3 are known as Quadrant III fragrance raw materials.

[0088] Preferably, the capsule contains a fragrance. Preferably, the fragrance in the capsule contains a mixture of at least three, or more precisely, at least five, or at least seven fragrance ingredients. The fragrance in the capsule may also contain at least ten or at least fifteen fragrance ingredients. The mixture of fragrance ingredients may provide a more complex and desirable aesthetic, and / or better fragrance performance or longevity, for example, at various touchpoints. However, it may be desirable to limit the number of fragrance ingredients in the fragrance in order to reduce or limit the complexity and / or cost of the formulation.

[0089] The fragrance may contain at least one naturally derived fragrance ingredient. Such ingredients may be desirable for sustainability / environmental reasons. The naturally derived fragrance ingredient may contain natural extracts or essences that may contain a mixture of PRMs. Examples of such natural extracts or essences include orange oil, lemon oil, rose extract, lavender, musk, patchouli, balsam essence, sandalwood oil, pine root oil, and cedar.

[0090] The core may include, in addition to the fragrance raw materials, a pro-fragrance that can contribute to improving the lifespan of the freshness effect. The pro-fragrance may include, for example, a non-volatile substance that releases or converts fragrance substances as a result of simple hydrolysis, or it may be a pH-change induced pro-fragrance (e.g., induced by a decrease in pH), or it may be an enzyme-released pro-fragrance, or a photo-induced pro-fragrance. Depending on the selected pro-fragrance, the pro-fragrance may exhibit a variety of release rates.

[0091] The core of the inclusions of this disclosure may contain core modifiers such as distribution modifiers and / or density modifiers. In addition to the fragrance, the core may contain distribution modifiers in an amount of more than 0% to about 80%, preferably more than 0% to about 50%, more preferably more than 0% to about 30%, based on the total weight of the core. The distribution modifiers include vegetable oils, modified vegetable oils, C4-C 24 The material may include a selection of materials from the group consisting of fatty acid monoesters, diesters, and triesters, isopropyl myristate, dodecanophenone, lauryl laurate, methyl behenate, methyl laurate, methyl palmitate, methyl stearate, and mixtures thereof. The partitioning regulator may preferably contain isopropyl myristate or consist of isopropyl myristate. The modified vegetable oil may be esterified and / or brominated. The modified vegetable oil may preferably contain castor oil and / or soybean oil.

[0092] The shell may contain 90% to 100% by weight, preferably 95% to 100% by weight, and more preferably 99% to 100% by weight of inorganic material. Preferably, the inorganic material in the shell includes materials selected from metal oxides, metalloid oxides, metals, minerals, or mixtures thereof. Preferably, the inorganic material in the shell includes materials selected from SiO2, TiO2, Al2O3, ZrO2, ZnO2, CaCO3, Ca2SiO4, Fe2O3, Fe3O4, clay, gold, silver, iron, nickel, copper, or mixtures thereof. More preferably, the inorganic material in the shell includes materials selected from SiO2, TiO2, Al2O3, CaCO3, or mixtures thereof, most preferably SiO2.

[0093] The shell may include a first shell component. Preferably, the shell may include a second shell component surrounding the first shell component. The first shell component may include a condensation layer formed from a condensation product of a precursor. The precursor may include one or more precursor compounds, as described in detail below. The first shell component may include a nanoparticle layer. The second shell component may include an inorganic material.

[0094] The inorganic shell may comprise a first shell component comprising a condensation layer surrounding a core, and may further comprise a nanoparticle layer surrounding the condensation layer. The inorganic shell may further comprise a second shell component surrounding the first shell component. The first shell component comprises an inorganic material, preferably a metal / metalloid oxide, more preferably SiO2, TiO2, and Al2O3, or a mixture thereof, even more preferably SiO2. The second shell component comprises an inorganic material, preferably a material from the group of metal / metalloid oxides, metals, and minerals, more preferably a material selected from the list of SiO2, TiO2, Al2O3, ZrO2, ZnO2, CaCO3, Ca2SiO4, Fe2O3, Fe3O4, clay, gold, silver, iron, nickel, and copper, or a mixture thereof, even more preferably a material selected from SiO2 and CaCO3 or a mixture thereof. Preferably, the material of the second shell component is the same type of chemical as the first shell component to maximize chemical compatibility.

[0095] The first shell component may include a condensation layer surrounding the core. The condensation layer may include condensation products of one or more precursors. The one or more precursors may include at least one compound from the group consisting of formula (I), formula (II), and mixtures thereof, where formula (I) is (M v O z Y n ) w Therefore, equation (II) is (M v O z Y n R 1 p ) w Therefore, the precursor contains only formula (I) and does not contain compounds according to formula (II) (i.e., R 1 It may be preferable to have no base. Formulas (I) and (II) are explained in more detail below.

[0096] One or more of the above precursors may be of formula (I): (M v O z Y n ) w(Equation I) In the formula, M is one or more of silicon, titanium, and aluminum; v is the valence of M, which is 3 or 4; z is 0.5 to 1.6, preferably 0.5 to 1.5; and each Y is -OH, -OR 2 -NH2, -NHR 2 , -N(R 2 ) Selected from 2, R 2 C1~C 20 Alkyl, C1-C 20 Alkylene, C6~C 22 Independently selected from aryl or 5-12 membered heteroaryls containing 1-3 ring heteroatoms selected from O, N, and S, R 3 H, C1~C 20 Alkyl, C1-C 20 Alkylene, C6~C 22 It is a 5-12 membered heteroaryl containing an aryl or 1-3 ring heteroatoms selected from O, N, and S, where n is 0.7-(v-1) and w is 2-2000.

[0097] One or more precursors may be of formula (I), where M is silicon. Y is -OR 2 It may also be -OR. n may be 1 to 3. Y may be -OR 2 And n is preferably 1 to 3. n is at least 2, and one or more of Y are -OR 2 In some cases, it is preferable that one or more of the Y groups be -OH.

[0098] R 2 C1~C 20 Alkyl may also be used. 2 C6~C 22 Alkyl may also be used. 2 This may be one or more of C1 alkyl, C2 alkyl, C3 alkyl, C4 alkyl, C5 alkyl, C6 alkyl, C7 alkyl, and C8 alkyl. 2 R may be a C1 alkyl group. 2 R may be a C2 alkyl group. 2 R may be a C3 alkyl group.2 It may be a C4 alkyl.

[0099] z may be 0.5 to 1.3, 0.5 to 1.1, 0.5 to 0.9, 0.7 to 1.5, 0.9 to 1.3, or 0.7 to 1.3.

[0100] M is silicon, v is 4, each Y is -OR 2 and n is 2 and / or 3, and each R 2 may be a C2 alkyl. The precursor can include a polyalkoxysilane (PAOS). The precursor can include a polyalkoxysilane (PAOS) synthesized via a non-hydrolytic process.

[0101] The precursor can alternatively or further include one or more of the compounds of formula (II): (M <​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​30 Alkylene; a member (e.g., one or more) selected from the group consisting of halogen, -OCF3, -NO2, -CN, -NC, -OH, -OCN, -NCO, alkoxy, epoxy, amino, mercapto, acryloyl, -C(O)OH, -C(O)O-alkyl, -C(O)O-aryl, -C(O)O-heteroaryl, and mixtures thereof, substituted C1-C 30 Alkyl; and a member selected from the group consisting of halogen, -OCF3, -NO2, -CN, -NC, -OH, -OCN, -NCO, alkoxy, epoxy, amino, mercapto, acryloyl, -C(O)OH, -C(O)O-alkyl, -C(O)O-aryl, and -C(O)O-heteroaryl, substituted C1-C 30 Independently selected from the group consisting of alkylene, p is a number greater than 0 up to pmax, and pmax = 60 / [9 * Mw(R 1 ) + 8], where Mw(R 1 ) is the molecular weight of the R 1 group, and w is from 2 to 2000.

[0102] R 1 may be C1-C alkyl substituted with 1 to 4 groups independently selected from halogen, -OCF3, -NO2, -CN, -NC, -OH, -OCN, -NCO, alkoxy, epoxy, amino, mercapto, acryloyl, CO2H (i.e., C(O)OH), -C(O)O-alkyl, -C(O)O-aryl, and -C(O)O-heteroaryl. 30 R may also be C1-C alkylene substituted with 1 to 4 groups independently selected from halogen, -OCF3, -NO2, -CN, -NC, -OH, -OCN, -NCO, alkoxy, epoxy, amino, mercapto, acryloyl, CO2H, C(O)O-alkyl, C(O)O-aryl, and C(O)O-heteroaryl. 1 30

[0103] ​As described above, it may be preferable to reduce or eliminate the presence of the compound according to formula (II) having an R1 group in order to reduce or even eliminate the organic content in the first shell component. The precursor, condensation layer, first shell component, and / or shell do not have to contain the compound according to formula (II).

[0104] The precursors of formula (I) and / or (II) may be characterized by one or more physical properties, namely molecular weight (Mw), degree of branching (DB), and polydispersity index (PDI) of the molecular weight distribution. Selecting a specific Mw and / or DB is considered useful in obtaining capsules that retain their mechanical integrity when dried on a surface and have low shell permeability in a surfactant matrix. The precursors of formula (I) and (II) may be characterized by having a DB of 0 to 0.6, preferably 0.1 to 0.5, more preferably 0.19 to 0.4, and / or an Mw of 600 Da to 100,000 Da, preferably 700 Da to 60,000 Da, more preferably 1,000 Da to 30,000 Da. These characteristics provide useful properties for the precursors in order to obtain the capsules of the present invention. The precursors of formula (I) and / or (II) may have a PDI of 1 to 50.

[0105] The condensation layer containing a metal / metalloid oxide may be formed from a condensation product of a precursor containing at least one compound of formula (I) and / or at least one compound of formula (II), optionally combined with one or more monomer precursors of the metal / metalloid oxide, wherein the metal / metalloid oxide includes TiO2, Al2O3, and SiO2, preferably SiO2. Examples of monomer precursors of the metal / metalloid oxide include those of formula M(Y) V-n R n Compounds of the form (wherein M, Y, and R are as defined in formula (II), and n may be an integer from 0 to 3) may also be given. The monomer precursor of the metal / metallic oxide is preferably one in which M is silicon and the compound has the general formula Si(Y) 4-n R nThe monomers may be in a form having (wherein Y and R are defined as in formula (II), and n may be an integer from 0 to 3). Examples of such monomers are TEOS (tetraethoxyorthosilicate), TMOS (tetramethoxyorthosilicate), TBOS (tetrabutoxyorthosilicate), triethoxymethylsilane (TEMS), diethoxydimethylsilane (DEDMS), trimethylethoxysilane (TMES), and tetraacetoxysilane (TAcS). These are not intended to limit the range of monomers that can be used, and suitable monomers that can be used in combination as described herein will be obvious to those skilled in the art.

[0106] In embodiments, the first shell component may include an arbitrary nanoparticle layer. The nanoparticle layer contains nanoparticles. The nanoparticles in the nanoparticle layer may be one or more of SiO2, TiO2, Al2O3, ZrO2, ZnO2, CaCO3, clay, silver, gold, and copper. Preferably, the nanoparticle layer may contain SiO2 nanoparticles.

[0107] The nanoparticles can have an average diameter of 1 nm to 500 nm, preferably 50 nm to 400 nm.

[0108] The pore size of the capsule can be adjusted by changing the shape of the nanoparticles and / or by using a combination of nanoparticles of different sizes. For example, non-spherical and irregular nanoparticles can be used because they may improve packing when forming a nanoparticle layer, thereby resulting in a higher density shell structure. This may be advantageous when it is necessary to limit permeability. The nanoparticles used may have more regular shapes, such as spherical ones. Any conceivable nanoparticle shape can be used herein.

[0109] Nanoparticles may not contain substantially hydrophobic modifications. Nanoparticles may not contain substantially organic compound modifications. Nanoparticles may contain organic compound modifications. Nanoparticles may be hydrophilic.

[0110] Nanoparticles may include surface modifications, such as linear or branched C1-C 20 Examples of surface modifications include, but are not limited to, alkyl groups, surface amino groups, surface methacrylic groups, surface halogens, or surface thiols. These surface modifications enable the nanoparticle surface to covalently bond organic molecules to itself. Where inorganic nanoparticles are disclosed herein, this means that any or none of the aforementioned surface modifications are included, although not explicitly stated.

[0111] The capsule of the present invention may be defined as comprising a substantially inorganic shell comprising a first shell component and a second shell component. Substantially inorganic means that the first shell component may contain up to 10% by weight or up to 5% by weight of organic content, preferably up to 1% by weight, as defined later in the calculation of organic content. It may be preferable that the first shell component, the second shell component, or both contain an organic content of about 5% by weight or less, preferably about 2% by weight or less, and more preferably about 0% by weight, relative to the weight of the first or shell component.

[0112] The first shell component is useful for constructing a mechanically robust scaffold or skeleton, but can also provide low shell permeability in products containing surfactants, such as laundry detergents, shower gels, and cleansers (see Surfactants in Consumer Products, J. Falbe, Springer-Verlag). The second shell component can significantly reduce shell permeability, improving capsule impermeability in surfactant-based matrices. The second shell component can also significantly improve the mechanical properties of the capsule, such as burst force and fracture strength. While not theoretically bound, the second shell component is thought to contribute to the overall density of the shell by depositing precursors in the pores remaining within the first shell component. The second shell component also adds an additional inorganic layer to the surface of the capsule. These improved shell permeability and mechanical properties provided by the second shell component occur only when used in combination with the first shell component as defined in this invention.

[0113] The capsules of this disclosure may first be formed by mixing a hydrophobic material with one of the condensation layer precursors defined above, thereby forming an oil phase, the oil phase may include oily and / or oil-soluble precursors. The mixture of the precursor and the hydrophobic material is then used together with an aqueous phase as a dispersed phase, and the two phases are mixed and homogenized via methods known to those skilled in the art to form an O / W (oil in water) emulsion. Nanoparticles may be present in the aqueous and / or oil phases, regardless of the desired emulsion type. The oil phase may include oily core modifiers and / or oil-soluble beneficial agents and condensation layer precursors. Suitable core materials used in the oil phase are described herein first.

[0114] Once the emulsion is formed, the following steps may occur: (a) A step in which nanoparticles move to the oil / water interface, thereby forming a nanoparticle layer. (b) A step in which the precursor of the condensation layer, which contains a metal / metallic oxide precursor, begins to undergo hydrolysis / condensation reaction by water at the oil / water interface, thereby forming a condensation layer surrounded by a nanoparticle layer. The precursor of the condensation layer can further react with the nanoparticles in the nanoparticle layer.

[0115] The precursor that forms the condensation layer can be present in an amount of 1% to 50% by weight, preferably 10% to 40% by weight, based on the total weight of the oil phase.

[0116] The oil phase composition may contain any of the compounds defined in the Core section above. The oil phase may contain 10% to about 99% by weight of beneficial agents before emulsification.

[0117] A second shell component can be formed by mixing a capsule having the first shell component with a solution of the second shell component precursor. The solution of the second shell component precursor may contain a water-soluble or oil-soluble second shell component precursor. The second shell component precursor may be one or more of the compounds of formula (I) defined above, tetraethoxysilane (TEOS), tetramethoxysilane (TMOS), tetrabutoxysilane (TBOS), triethoxymethylsilane (TEMS), diethoxydimethylsilane (DEDMS), trimethylethoxysilane (TMES), and tetraacetoxysilane (TAcS). The second shell component precursor is Si(Y) 4-n R nIt may also include one or more silane monomers of type 1 (wherein Y is a hydrolyzable group, R is a non-hydrolyzable group, and n can be an integer from 0 to 3). Examples of such monomers are described earlier in this paragraph, but this does not mean to limit the range of monomers that can be used. The second shell component precursor may include silicates, titanates, aluminates, zirconates, and / or zincates. The second shell component precursor may include carbonates and calcium salts. The second shell component precursor may include salts of iron, silver, copper, nickel, and / or gold. The second shell component precursor may include alkoxides of zinc, zirconium, silicon, titanium, and / or aluminum. The second shell component precursor may include one or more of the following: silicate solutions such as sodium silicate, silicon tetraalkoxide solutions, iron sulfates and iron nitrates, titanium alkoxide solutions, aluminum trialkoxide solutions, zinc dialkoxide solutions, zirconium alkoxide solutions, calcium salt solutions, and carbonate solutions. The second shell component containing CaCO3 can be obtained by using a combination of calcium salt and carbonate. While the second shell component containing CaCO3 can be obtained from calcium salt without adding carbonate, this requires the situ generation of carbonate ions from CO2.

[0118] The second shell component precursor may include any preferred combination of any of the aforementioned compounds.

[0119] A solution of the second shell component precursor can be added dropwise to a capsule containing the first shell component. The solution of the second shell component precursor and the capsule can be mixed together within 1 minute to 24 hours. The solutions of the second shell component precursor and the capsule can be mixed together at room temperature or at a high temperature, for example, between 20°C and 100°C.

[0120] The solution of the second shell component precursor may contain the second shell component precursor in an amount of 1% to 50% by weight, based on the total weight of the solution of the second shell component precursor.

[0121] A capsule having the first shell component can be mixed with a solution of the second shell component precursor at a pH of 1 to 11. The solution of the second shell component precursor may contain an acid and / or a base. The acid may be a strong acid. The strong acid may contain one or more of HCl, HNO3, H2SO4, HBr, HI, HClO4, and HClO3, preferably HCl. In other embodiments, the acid may be a weak acid. In embodiments, the weak acid may be acetic acid or HF. The concentration of the acid in the solution of the second shell component precursor is 10 -7 The concentration can be M to 5M. The base may be an inorganic base or an organic base, preferably an inorganic base. The inorganic base may be a hydroxide such as sodium hydroxide and ammonia. For example, the inorganic base may be about 10 -5 NaOH of M ~ 0.01 M, or about 10 -5 This may be ammonia of M ~ approximately 1 M. The list of acids and bases exemplified above is not intended to limit the scope of the present invention, and other suitable acids and bases that enable control of the pH of the second shell component precursor solution are contemplated herein.

[0122] The process of forming the second shell component may include changing the pH during the process. For example, the process of forming the second shell component may start at an acidic or neutral pH and later increase the pH by adding a base during the process. Alternatively, the process of forming the second shell component may start at a basic or neutral pH and later decrease the pH by adding an acid during the process. Furthermore, the process of forming the second shell component may start at an acidic or neutral pH and further decrease the pH by adding an acid during the process. Furthermore, the process of forming the second shell component may start at a basic or neutral pH and further increase the pH by adding a base during the process. Any suitable pH shift may be used. In addition, any suitable combination of acid and base can be used at any point in the solution of the second shell component precursor to achieve the desired pH. The process of forming the second shell component may include maintaining a stable pH during the process with a deviation of up to ±0.5 pH units. For example, the process of forming the second shell component may be maintained at a basic, acidic, or neutral pH. Alternatively, the process of forming the second shell component can be maintained within a specific pH range by controlling the pH using an acid or base. Any suitable pH range may be used. Furthermore, any suitable combination of acid and base can be used at any point in the solution of the second shell component precursor to maintain a stable pH within a desired range.

[0123] The emulsion can be cured under conditions that solidify the precursor, thereby forming a shell that surrounds the core.

[0124] The reaction temperature for curing can be increased to accelerate the rate at which solidified capsules are obtained. The curing process can induce the condensation of precursors. The curing process can be carried out at room temperature or a temperature higher than room temperature. The curing process can be carried out at a temperature of 30°C to 150°C, preferably 50°C to 120°C, more preferably 80°C to 100°C. The curing process can be carried out over any suitable period of time to allow the capsule shell to be strengthened through the condensation of the precursor material. The curing process can be carried out over a period of 1 minute to 45 days, preferably 1 hour to 7 days, more preferably 1 hour to 24 hours. A capsule is considered cured when it no longer disintegrates. The determination of capsule disintegration is described in detail below. During the curing process, hydrolysis of the Y portion (from formulas (I) and / or (II)) is thought to occur, followed by subsequent condensation of either the -OH group with another -OH group, or the -OH group with another portion of the Y type (wherein the formulas the two Ys are not necessarily the same). The hydrolyzed portion of the precursor initially condenses with the surface portion of the nanoparticle (if the nanoparticle contains such a portion). As shell formation progresses, the precursor portion begins to react with the previously formed shell.

[0125] The emulsion can be cured so that the shell precursor condenses. The emulsion can be cured so that the shell precursor reacts with nanoparticles and condenses. Examples of the hydrolysis and condensation steps described herein for silica-based shells are shown below:

[0126] [ka]

[0127] For example, when a precursor of formula (I) or (II) is used, the following describes the hydrolysis and condensation steps:

[0128] [ka]

[0129] The capsules may be provided as a slurry composition (or simply "slurry" as used herein). The slurry can be formulated into products, such as consumer products.

[0130] Test method For each PRM in the fragrance mixture under test, calculate the log value (logP) of the octanol / water partition coefficient. The logP values ​​for individual PRMs are calculated using the Consensus logP Computational Model, version 14.02 (Linux), available from Advanced Chemistry Development Inc. (ACD / Lab) (Toronto, Canada), yielding dimensionless logP values. The ACD / Labs Consensus logP Computational Model is part of the ACD / Labs model suite.

[0131] Viscosity method The viscosity of the undiluted product is determined using a Brookfield® DV-E rotational viscometer, spindle 2, at 60 rpm and approximately 20-21°C.

[0132] Average shell thickness measurement The capsule shells, containing the first shell component and, if present, the second shell component, are measured in nanometer units for 20 delivery capsules containing the beneficial agent, using a focused ion beam scanning electron microscope (FIB-SEM, Helios Nanolab 650, FEI) or equivalent instrument. A sample is prepared by diluting a small amount of liquid capsule dispersion (20 μL) with distilled water (1:10). The suspension is then deposited onto an ethanol-washed aluminum stub and transferred to a carbon coating apparatus (Leica EM ACE600 or equivalent instrument). The sample is dried in the coating apparatus under vacuum (vacuum level: 10 -5(mbar). Next, a conductive carbon layer is deposited on the sample by flash deposition of 25nm to 50nm carbon. Then, the aluminum stub is transferred to the FIB-SEM to prepare the capsule cross section. The cross section is prepared by ionic grinding using a cross section cleaning pattern with an acceleration voltage of 30kV and an emission current of 2.5nA. Images are acquired at 5.0kV and 100pA using immersion mode (dwell time: approximately 10 microseconds) at a magnification of approximately 10,000x.

[0133] From 20 randomly selected beneficial drug delivery capsules with no size bias, cross-sectional images of the fractured shells are obtained to create a representative sample of the size distribution of the capsules present. The shell thickness of each of the 20 inclusions is measured at three different randomly selected locations using calibrated microscopy software by drawing measurement lines perpendicular to the contact surface of the outer surface of the capsule shell. 60 independent thickness measurements are recorded and used to calculate the average thickness.

[0134] Mean and coefficient of variation of volume-weighted capsule diameter The capsule size distribution is determined by single-particle optical detection (SPOS), also known as optical particle counting (OPC), using an AccuSizer 780 AD instrument or equivalent, and accompanying software CW788 version 1.82 (Particle Sizing Systems, Inc., Santa Barbara, California, USA) or equivalent software. The instrument is configured with the following conditions and options: flow rate = 1 mL / sec; small diameter threshold = 0.50 μm; sensor model number = LE400-05SE or equivalent; auto-dilution = ON; collection time: 60 seconds; number of channels = 512; fluid volume in container = 50 ml; maximum simultaneous count = 9200. The measurement is initiated by cooling the sensor by flushing it with water until the background count is less than 100. Samples of delivery capsules in suspension are introduced, and the capsule density is adjusted as needed via auto-dilution with deionized water so that the capsule count is a maximum of 9200 per mL. The suspension is analyzed over 60 seconds. The size range used was 1 μm to 493.3 μm.

[0135] Volume distribution:

[0136]

number

[0137]

number

[0138] Evaluation of the volumetric core-to-shell ratio The volume-to-core ratio is determined as follows and depends on the average shell thickness measured by the shell thickness test method. For capsules with a measured average shell thickness, the volume-to-core ratio is calculated using the following equation:

[0139]

number

[0140] This ratio can be converted to a core-to-shell fraction value by calculating the core weight percentage using the following formula.

[0141]

number

[0142] Method for determining branching degree The degree of branching of the precursor was determined as follows: The degree of branching is measured using (29Si) nuclear magnetic resonance spectroscopy (NMR).

[0143] Sample preparation Dilute each sample to a 25% solution using deuterated benzene (Benzene-D6 "100%" (D 99.96%, available from Cambridge Isotope Laboratories Inc., Tuekesbury, Massachusetts) or an equivalent). Add 0.015 M chromium(III) acetylacetonate (99.99% purity, available from Sigma-Aldrich, St. Louis, Missouri, or an equivalent) as a paramagnetic relaxation agent. If using glass NMR tubes (Wilmed-LabGlass, Vineland, New Jersey, or an equivalent) for analysis, blank samples must also be prepared by filling the NMR tubes with the same type of deuterated solvent used to dissolve the samples. The same glass tubes must be used for analyzing both the blanks and the samples.

[0144] Sample analysis The branching degree is determined using a Bruker 400 MHz nuclear magnetic resonance (NMR) spectrometer or equivalent instrument. The standard silicon (29Si) method (e.g., from Bruker) is used with default parameter settings, involving a minimum of 1,000 scans and a 30-second relaxation time.

[0145] Sample processing The samples are stored and processed using appropriate system software for NMR spectroscopy, such as MestReNova version 12.0.4-22023 (available from Mestrelab Research) or an equivalent. Phase adjustment and background correction are applied. A large, broad signal extending from -70 to -136 ppm exists, resulting from the use of glass in the glass NMR tube and probe housing. This signal is suppressed by subtracting the spectrum of the blank sample from the spectrum of the synthesized sample, provided that the same tube and method parameters are used to analyze the blank and sample. To further account for slight differences in data acquisition, tubes, etc., the region outside the peak of the region of interest should be integrated and normalized to a consistent value. For example, integrate -117 to -115 ppm and set the integrated value to 4 for all blanks and samples.

[0146] The resulting spectrum generates up to five main peak regions. The first peak (Q0) corresponds to unreacted TAOS. The second set of peaks (Q1) corresponds to terminal groups. The next set of peaks (Q2) corresponds to linear groups. The next broad set of peaks (Q3) represents semi-dendritic units. The final broad set of peaks (Q4) represents dendritic units. When PAOS and PBOS are analyzed, each group falls within a defined ppm range. Typical ranges are shown in the table below.

[0147] [Table 1]

[0148] Polymethoxysilanes have different chemical shifts for Q0 and Q1, overlapping signals for Q2, and remain unchanged for Q3 and Q4, as shown in the table below:

[0149] [Table 2]

[0150] The ppm ranges shown in the table above do not necessarily apply to all monomers. However, other monomers may cause different chemical shifts, but the proper assignment of Q0 to Q4 should not be affected.

[0151] Using MestReNova, we can integrate each group of peaks and calculate the degree of branching using the following formula.

[0152]

number

[0153] Method for determining molecular weight and polydispersity index The molecular weight (weight-average molecular weight (Mw)) and polydispersity index (Mw / Mn) of the condensation layer precursors described herein are determined by size exclusion chromatography with refractive index detection. Mn is the number-average molecular weight.

[0154] Sample preparation The sample is weighed and then diluted to a target concentration of 10 mg / mL with the solvent used in the instrument system. For example, 50 mg of polyalkoxysilane is weighed into a 5 mL volumetric flask, dissolved, and then diluted to the desired volume with toluene. After the sample is dissolved in the solvent, it is passed through a 0.45 μm nylon filter and loaded into the instrument's automatic sampler.

[0155] Sample analysis An HPLC system using an automated sampler (e.g., Waters 2695 HPLC separation module, Waters Corporation, Milford, Massachusetts) connected to a refractive index detector (e.g., Wyatt 2414 refractive index detector, or equivalent) is used for polymer analysis. Separation is performed using three columns, each with an inner diameter of 7.8 mm and a length of 300 mm, packed with 5 μm of polystyrene-divinylbenzene medium, and cutoffs at molecular weights of 1, 10, and 60 kDA, respectively. Preferred columns are TSKGel G1000HHR, G2000HHR, and G3000HHR columns (available from TOSOH Bioscience, King of Prussia, Pennsylvania) or equivalents. The analytical column is protected using a 6 mm inner diameter x 40 mm length, 5 μm polystyrene-divinylbenzene guard column (e.g., TSKgel Guardcolumn HHR-L (TOSOH Bioscience), or equivalent). Toluene (HPLC grade or equivalent) is pumped at a uniform rate of 1.0 mL / min while both the column and detector are maintained at 25°C. 100 μL of the prepared sample is injected for analysis. Sample data is stored and processed using software with GPC computing capabilities (e.g., ASTRA Version 6.1.7.17 software, available from Wyatt Technologies (Santa Barbara, California), or equivalent).

[0156] The system is calibrated using a cubic fit to an Mp-versus-residence time curve, using more than 10 narrowly dispersed polystyrene standards (e.g., Standard ReadyCal Set (e.g., Sigma-Aldrich, PN76552, or equivalent)) with known molecular weights in the range of approximately 0.250–70 kDa.

[0157] The system software is used to calculate and report the weight-average molecular weight (Mw) and polydispersity index (Mw / Mn).

[0158] Method for calculating the organic component content in the first shell component As used herein, the definition of the organic portion in the inorganic shell of a capsule according to this disclosure is: any portion X that cannot be cleaved from the metal precursor supporting the metal M under specified reaction conditions via hydrolysis of the MX bond (where M belongs to a metallic and metalloid group, and X belongs to a nonmetallic group, linking the portion to the inorganic precursor of the metallic or metalloid M) is considered the organic portion. The above reaction conditions are set such that there is a minimum degree of hydrolysis of 1% when exposed to distilled water at a neutral pH for 24 hours without stirring.

[0159] This method allows for the calculation of theoretical organic content by assuming the complete conversion of all hydrolyzable groups. Therefore, it becomes possible to assess the theoretical proportion of organic components for any mixture of silanes, and the results indicate only the organic content of the precursor mixture itself, and not the actual organic content in the first shell component. Thus, if a specific proportion of the organic content of the first shell component is disclosed anywhere in this document, that proportion should be understood as containing any mixture of unhydrolyzed or prepolymerized precursors, which gives a theoretical organic content smaller than the disclosed number according to the following calculation.

[0160] Examples of silanes (but not limited to these; see the last general formula in this section): Each mole fraction Y i Consider a mixture of silanes having the following properties. Here, i is the identification number of each silane. This mixture can be represented as follows: Si(XR) 4-n R n In the formula, XR is a hydrolyzable group under the conditions defined above, and R i ni It is non-hydrolyzable under the above conditions, and n i = 0, 1, 2, or 3.

[0161] Such a mixture of silanes results in a shell having the following general formula.

[0162]

Number

[0163] Next, the weight percentage of the organic moiety as defined above can be calculated as follows. 1) Find the mole fraction of each precursor (including the nanoparticles). 2) Determine the general formula of each precursor (including the nanoparticles). 3) Calculate the general formula of the mixture of the precursors and the nanoparticles based on the mole fractions. 4) Convert to the reacted silane (convert all hydrolyzable groups to oxygen groups). 5) Calculate the weight ratio of the organic moiety to the total mass (assuming 1 mole of Si relative to the framework).

[0164] Example:

[0165]

Table 3

[0166] To calculate the general formula of the mixture, the exponent of each atom in the individual formulas is multiplied by their respective mole fractions. Then, for the mixture, when similar exponents occur, the sum of the fractional exponents is adopted (typically for ethoxy groups).

[0167] Note: The sum of all Si fractions is always 1 in the general formula of the mixture due to the calculation method (the sum of the total mole fractions of Si is 1).

[0168]

Number

[0169] To convert the unreacted equation to the reacted equation, simply divide the exponents of all hydrolyzable groups by 2, and then sum them up (along with any existing oxygen groups, if applicable) to obtain the fully reacted silane. SiO 1.88 Me 0.20

[0170] In this case, the expected result is that the sum of all the exponents must follow the following formula, SiO 1.9 Me 0.2 is: A + B / 2 = 2 In the formula, A is the oxygen atom index, and B is the sum of all non-hydrolyzable indices. Small errors arise from approximations during calculations, which should be corrected. Then, the oxygen atom index is readjusted to satisfy this formula.

[0171] Therefore, the final formula is SiO 1.9 Me 0.2 The weight ratio of the organic components is calculated as follows: Weight ratio=(0.20 * 15) / (28+1.9 * 16+0.20 * 15) = 4.9%

[0172] In general cases: The above formula can be generalized by considering the valence of the metal or metalloid M, and thus the following modified formula can be obtained: M(XR) V-ni R i ni A similar method is used, but the valence V of each metal is taken into consideration.

[0173] Beneficial Agent Permeability Test The permeability test method allows for the determination of the rate of diffusion of a particular molecule from the capsule core to the continuous phase relative to a population of capsules, which can represent the permeability of the capsule shell. The permeability test method is a reference frame related to the shell permeability of a particular molecular tracer, and therefore, its size is fixed and its affinity is fixed toward the continuous phase outside the capsule shell. This is a reference frame used to compare the permeability of various capsules in the art. When both the molecular tracer and the continuous phase are fixed, shell permeability is a single capsule property evaluated under a specific set of conditions.

[0174] The permeability of a capsule shell correlates with the porosity of the shell, as low permeability indicates low shell porosity.

[0175] Capsule permeability is generally given as a function of parameters such as shell thickness, concentration of the active substance in the core, and solubility of the active substance in the core, shell, and continuous phase.

[0176] To diffuse the active substance throughout the entire shell, it must be moved from the core to the shell, and then from the shell to the continuous phase. This latter step is rapid if the solubility of the active substance in the continuous phase is very favorable, in which case the hydrophobic material moves into the surfactant matrix. For example, an active substance present at a concentration of 0.025 wt% in a certain system is very likely to be completely solubilized by 15 wt% of surfactant.

[0177] Considering the above, the limiting step to minimize shell permeability of the active substance in the surfactant matrix is ​​intended to restrict diffusion throughout the shell. In the case of hydrophobic shell materials, hydrophobic active substances readily dissolve in the shell if they can be swollen by the active substance. This degree of swelling can be limited by a high shell crosslink density.

[0178] In the case of hydrophilic shell materials such as silicon dioxide, the hydrophobic material has a limited solubility in the shell itself. Nevertheless, considering the following factors, the active substance can diffuse rapidly: surfactant molecules and micelles can diffuse into the shell and subsequently into the core itself, thereby enabling a pathway from the core into the shell and ultimately into the external matrix.

[0179] Therefore, in the case of hydrophilic shell materials, a high shell crosslink density is required, but the amount of pores in the shell also needs to be reduced. Such pores can lead to a rapid mass transfer of the active substance into the surfactant-based matrix. Thus, there is a clear and obvious link between the overall permeability of the capsule shell and its porosity. In fact, the permeability of the capsule provides insight into the overall shell structure of any given capsule.

[0180] As mentioned above, the diffusion of the active substance is defined by the nature of the active substance, its solubility in the continuous phase, and the shell structure (porosity, crosslink density, and any general defects it may contain). Therefore, by fixing two of the three related parameters, the permeabilities of various shells can be effectively compared.

[0181] The purpose of this permeability test is to provide a framework that enables a direct comparison of the shells of different capsules. Furthermore, it becomes possible to evaluate the characteristics of a large population of capsules and thus not be troubled by distorted results obtained by outliers.

[0182] Therefore, the permeability of the capsule can be defined through the fraction of a given molecular tracer diffused into a given continuous phase within a given time under specific conditions (e.g., 20% tracer diffusion within 7 days).

[0183] The capsules of the present invention have relative transmittances of less than about 80%, less than about 70%, less than about 60%, less than about 50%, less than about 40%, less than about 30%, or less than about 20%, as measured by transmittance testing methods.

[0184] The permeability test method involves determining the shell permeability of a molecular tracer, verzil acetate (CAS#5413-60-5) (manufactured by Vigon), from a capsule containing the tracer within its core, by comparing it to a reference sample representing complete diffusion of the tracer (e.g., 100% permeability).

[0185] First, the capsules are prepared according to any given capsule preparation method. For the transmittance test method, the capsule core must contain, or be supplemented to contain, at least 10% by weight of verzil acetate tracer by the weight of the core. In this test, "weight of the core" refers to the weight of the core after the shell has been formed and the capsule has been manufactured. The capsule core contains the intended components, such as core modifiers and beneficial agents. The capsules can be prepared as a capsule slurry, as is commonly done in the art.

[0186] The capsules are then formulated into a transmittance test sample. The formulation of the transmittance test sample involves thoroughly mixing the capsule slurry with an aqueous solution of sodium dodecyl sulfate (CAS #151-21-3) to achieve a total core oil content of 0.25% by weight ± 0.025% and an SDS concentration of 15% by weight ± 1% by weight, based on the total weight of the test sample. The required amount of capsule slurry can be calculated as follows:

[0187]

number

[0188] The SDS solution can be prepared by dissolving SDS pellets in deionized water. The capsules and SDS solution can be mixed under conditions designed to prevent capsule damage during mixing. For example, the capsules and SDS solution can be mixed by hand or with an overhead mixer, but should not be mixed with a magnetic stirring rod. Mixing with a magnetic stirring rod has been found to often result in capsule damage. A preferred mixing method may include an IKA propeller mixer, mixed at 400 rpm or less, with a total mass of 10 g to 50 g of the mixture containing the SDS solution and capsule slurry. Other suitable mixing apparatuses and conditions for mixing without using a magnetic stirring rod and without damaging a given capsule composition will be readily apparent to those skilled in the art.

[0189] Once the transmittance test sample is prepared, it is placed in a glass vial with a total volume no more than twice the volume of the test sample, and sealed with an airtight lid. The sealed transmittance test sample is stored for 7 days at a temperature of 35°C and a relative humidity of 40%. During storage, the sealed transmittance test sample is not exposed to light and is not opened at any point before measurement.

[0190] A reference sample representing 100% diffusion is also prepared. The reference sample is prepared so that it can be used on the measurement day (i.e., 7 days after the preparation of the transmittance test sample). The reference sample is prepared by combining 15% by weight of an oil-free mixture with 15% aqueous SDS, intended to replicate the composition of the capsule core determined by the mass balance of the capsule prepared for the transmittance test sample (containing the same weight percent of vergyl acetate tracer based on the weight of the core). The oil-free mixture and the SDS solution are homogenized in a magnetic stirrer until the oil-free mixture is completely solubilized, and the container should be sealed during mixing to avoid evaporation of the tracer. If homogenization takes a considerable amount of time, the above should be taken into consideration, and the preparation of the reference sample can be started earlier than 7 days if necessary. Immediately after solubilization, the reference sample is placed in a glass vial with a volume no more than twice the volume of the reference sample and sealed with an airtight lid. The SDS solution can be prepared by dissolving SDS pellets in deionized water, as in the case of the transmittance test sample.

[0191] A predetermined amount of the oil-free mixture is added to achieve a total concentration of 0.25% by weight ± 0.025% of the oil-free mixture in the reference sample, based on the total weight of the reference sample.

[0192]

number

[0193] The permeability of vergyl acetate, expressed by gas chromatography area counting, is analyzed on the same day using the same GC / MS analyzer for both the transmittance test sample (7 days after preparation) and the reference sample. Specifically, for each test and reference sample, a 100 μL aliquot of the sample is transferred to a 20 ml headspace vial (Gerstel SPME vial 20 ml, part number 093640-035-00) and immediately sealed (Gerstel SPME crimp cap, part number 093640-050-00). Three headspace vials are prepared for each sample. The sealed headspace vials are equilibrated. The samples reach equilibrium after 3 hours at room temperature, but can be left for up to 24 hours after sealing the headspace vials without compromising or altering the results. After equilibriumization, the samples are analyzed by gas chromatography-mass spectrometry (GC / MS).

[0194] GS / MS analysis was performed by sampling the headspace of each vial via SPME (50 / 30 μm DVB / Carboxen / PDMS, Sigma-Aldrich part number 57329-U) with a 25 mm vial penetration and a 1 minute extraction time, at room temperature. The SPME fibers were then thermally desorbed online into a GC injector (at 270°C, splitless mode, using a 0.75 mm SPME inlet liner (Restek, part number 23434) or equivalent, with a 300 second desorption time and a 43 mm injector penetration). Verzil acetate was analyzed in full scan mode of a high-speed GC / MS. The headspace response (expressed as area count) of verzil acetate (and its isomers) was calculated using ion extraction of the specific mass of verzil acetate (m / z=66). The headspace responses of the transmittance test sample and the reference sample are referred to herein as the vergil acetate area count for the transmittance test sample and the vergil acetate area count for the reference sample.

[0195] Suitable equipment for use with this method includes an Agilent 7890B GC or equivalent equipped with a 5977MSD, a Gerstel MPS as the SPME (automatic sampler), and an Agilent DB-5 UI 30m x 0.25 x 0.25 column (part number 122-5532UI) as the GC column.

[0196] The analysis of transmittance test samples and reference samples should be performed under the same room temperature conditions, using the same equipment, on the same day, and with minimal time between analyses.

[0197] The transmittance percentage can be calculated based on GC / MS data and the actual known verzil acetate content in the transmittance test sample. The actual verzil acetate content in the transmittance test must be determined to compensate for any losses during capsule manufacturing. The method to be used is specified below. This explains the inefficiencies often encountered when encapsulating the product within the capsule core, and that the total amount of verzil acetate expected to be present during capsule formation is less than that present in the slurry. The following formula can be used to calculate the percentage transmittance.

[0198]

number

[0199] This calculated value represents the percentage transmittance of capsules tested after being stored for 7 days under 40% relative humidity and a temperature of 35°C.

[0200] To evaluate the actual verzil acetate content in the SDS capsule mixture, aliquots must be collected after a specific storage period. Therefore, the obtained mixture is opened on the same day as the first sample is measured to ensure that the vial remains sealed during storage. First, the mixture must be mixed until homogeneous, thereby collecting a representative aliquot containing the correct proportion of the material. Next, 1 g of the homogeneous mixture is placed in a 1 cm diameter flat-bottomed glass vial, and a magnetic stirring rod, more than half the length of the vial's diameter, is placed inside the vial. The homogeneous mixture in the designated wide-mouth vial containing the magnetic stirring rod is sealed and then placed on a magnetic stirring plate, using a 500 rpm mixing speed to ensure that all capsules are crushed by the stirring action of the stirring rod. This completely releases the core material contained within the capsules into the surrounding SDS solution, thus enabling measurement of the actual verzil acetate content. This measurement protocol must be performed on uncrushed capsules. In addition, before the measurement process, the capsules must be observed under an optical microscope to assess whether all capsules have been destroyed. If not all capsules have been destroyed, the capsules must be crushed again, increasing the mixing rate and / or mixing time.

[0201] Neat fragrance ingredients The solid-soluble composition may contain unencapsulated fragrances that provide only a pleasurable effect (i.e., they do not neutralize malodors but provide a pleasant scent). Suitable fragrances are disclosed in U.S. Patent No. 6,248,135. For example, the solid-soluble composition may contain a mixture of volatile aldehydes for neutralizing malodors and fragrance aldehydes for providing pleasure.

[0202] Fragrances other than volatile aldehydes in the odor control components are incorporated into the solid-soluble composition.

[0203] solid soluble composition A consumer product comprising multiple particles used to refresh laundry, comprising a solid-soluble composition having one or more beneficial agents (e.g., fragrance capsules, neat fragrance) dispersed throughout the particles. In one embodiment, the freshness beneficial agent is a fragrance capsule. In another embodiment, the freshness beneficial agent is a neat fragrance. In yet another embodiment, the freshness beneficial agent is a neat fragrance in the form of dispersed droplets. In yet another embodiment, the freshness beneficial agent is a neat fragrance distributed throughout a fibrous microstructure. In yet another embodiment, one freshness beneficial agent is a fragrance capsule and a second freshness beneficial agent is a neat fragrance.

[0204] In one embodiment, the consumer product comprises SDC, which is a solid form of beads, all of which are the same solid soluble composition. In another embodiment, the solid form in the consumer product is one or more solid soluble compositions (e.g., several solid soluble compositions containing PMC, and several solid soluble compositions containing fragrances). The solid form of SDC may be powder, particles, aggregates, flakes, granules, pellets, tablets, lozenges, packs, briquettes, bricks, solid blocks, unit doses, or other solid forms known to those skilled in the art.

[0205] In one embodiment, SDC contains less than about 13% by weight. In another embodiment, SDC contains about 10% by weight and less than 1% by weight of neat flavoring. In yet another embodiment, SDC contains about 8% by weight and less than 2% by weight of neat flavoring.

[0206] In one embodiment, the SDC contains less than about 18% by weight of fragrance capsules. In another embodiment, the SDC contains about 0.01% to about 15% by weight of fragrance capsules, preferably about 0.1% to about 15% by weight, more preferably about 1% to about 15% by weight, and most preferably about 5% to about 15% by weight, based on the total weight of the solid soluble composition.

[0207] The aqueous phase may be present in the solid soluble composition in amounts of 0% to about 10% by weight, 0% to about 9% by weight, 0% to about 8% by weight, or about 5% by weight of the intermediate rheological solid.

[0208] In one embodiment, the consumer product is added directly to the wash drum at the start of the wash cycle. In another embodiment, the consumer product is added to a fabric conditioner cup inside the washing machine. In yet another embodiment, the consumer product is added at the start of the wash cycle. In yet another embodiment, the consumer product is added during the wash cycle.

[0209] In one embodiment, the consumer product is sold in paper packaging; in one embodiment, the consumer product is sold in unit dose packaging; in one embodiment, the consumer product is sold in particles of different colors; in one embodiment, the consumer product is sold in small pouches; in one embodiment, the consumer product is sold in particles of different colors; in one embodiment, the consumer product is sold in a recyclable container.

[0210] Dissolution test method All samples and procedures are maintained at room temperature (25±3°C) before testing and placed in a desiccant chamber (0%RH) for 24 hours or until a constant weight is reached.

[0211] All dissolution measurements are performed at a controlled temperature and a constant stirring rate. A 600 mL jacketed beaker (Cole-Palmer, catalog no. UX-03773-30, or equivalent) is mounted and cooled to the desired temperature by circulating water through the jacketed beaker using a water circulator (Fisherbrand Isotemp 4100, or equivalent) set to the desired temperature. The jacketed beaker is placed in the center of the stirring element of a VWR Multi-Position Stirrer (VWR North American, West Chester, PA, USA catalog no. 12621-046). 100 mL of deionized water (MODEL 18M, or equivalent) and a stirring rod (VWR, Spinbar, catalog no. 58947-106, or equivalent) are added to a second 150 mL beaker (VWR North American, West Chester, PA, USA catalog no. 58948-138, or equivalent). Place the second beaker into the jacketed beaker. Add enough Millipore water to the jacketed beaker so that the water level in the jacketed beaker is higher than that in the second beaker, taking great care to prevent the water in the jacketed beaker from mixing with the water in the second beaker. Set the stirring rod speed to 200 RPM, sufficient to generate a gentle vortex. The temperature is set to reach 25°C or 37°C in the second beaker using the flow from the water circulator, and the relevant temperature is reported in the example. Before conducting the dissolution experiment, measure the temperature in the second beaker with a thermometer.

[0212] All samples were sealed in a desiccator prepared with a fresh desiccant (VWR, Desiccant-Anhydrous Indicating Drierite, stock number 23001, or equivalent) until a certain weight was reached. All test samples had a mass of less than 15 mg.

[0213] A single dissolution experiment is performed by removing a single sample from the desiccator. The sample is weighed within one minute of being removed from the desiccator, and its initial mass (M IMeasure the final mass (M). Add the sample dropwise to the second beaker while stirring. Dissolve the sample for 1 minute. At the end of the minute, carefully remove the sample from the deionized water. F Place the sample back into the desiccator until it reaches ). The percentage of mass loss of the sample in a single experiment is M L =100 * (M I -M F ) / M I It is calculated as follows.

[0214] First, replace 100 ml of water with fresh deionized water, add a new sample from the desiccator for each experiment, and repeat the dissolution experiment described in the previous paragraph to perform nine additional dissolution experiments.

[0215] Average percentage of mass loss for the test (M A ) is calculated as the average percentage of mass loss over 10 experiments, and the mean standard deviation (SD) of mass loss. A ) is the standard deviation of the average percentage of mass loss over 10 experiments.

[0216] This method uses three values: 1) the average mass of the sample (M S 1) the temperature at which the sample dissolves (T), and 2) the average percentage of mass loss (M). A It returns the average percentage of mass loss (M). If this method was not performed on the sample, the method returns "NM" for all values. A ) and the mean standard deviation (SD) of the mean percentage of mass loss A Using ), plot the dissolution curves shared in Figures 7 and 10.

[0217] Humidity Test Method Before testing, all samples and procedures are maintained at room temperature (25±3℃).

[0218] A humidity test method is used to determine the amount of water vapor sorption that occurs in the raw material or composition between drying at 0% RH and drying at various RHs at 25°C. In this method, 10–60 mg of sample is weighed, and the mass change associated with adjustment under different environmental conditions is captured using a dynamic vapor sorption instrument. The resulting mass increase is expressed as a percentage change in mass per unit of the dry sample mass recorded at 0% RH.

[0219] This method utilizes an SPSx Vapor Sorption Analyzer (ProUmid GmbH&Co.KG, Ulm, Germany) with a resolution of 1 μg, or an equivalent dynamic vapor sorbent (DVS) instrument capable of controlling relative humidity (%RH) to within ±3%, temperature to within ±2°C, and measuring mass with an accuracy of ±0.001 mg.

[0220] Disperse 10-60 mg of the raw material or composition sample uniformly in a tare-filled 1-inch diameter aluminum pan. Place the aluminum pan containing the dispersed raw material or composition sample into a DVS (Deep Vase System) apparatus, set the DVS apparatus to 25°C and 0%RH, and record the mass at that point with an accuracy of 0.001 mg or better approximately every 15 minutes. After the sample has been in the DVS under these conditions for a minimum of 12 hours and a constant weight has been achieved, record the mass of the sample m d The amount is recorded with an accuracy of 0.01 mg or higher. Once this step is complete, the instrument is advanced in 10% RH increments up to 90% RH. The sample is held in DVS for a minimum of 12 hours at each step, and the mass of the sample is measured m until a constant weight is reached. n The data is recorded with an accuracy of 0.001 mg or higher at each stage.

[0221] For a specific sample, constant weight can be defined as the change in continuous mass weighing that does not differ by more than 0.004%. For a specific sample, the change in mass % (%dm) per unit of dry sample mass is defined as follows:

[0222]

number

[0223] The percentage change in mass per unit of dry sample mass is reported in units of 0.01%.

[0224] Thermal stability test method All samples and procedures are maintained at room temperature (25±3°C) and at a relative humidity of 40±10% for 24 hours prior to testing.

[0225] In the thermal stability test method, differential scanning calorimetry (DSC) is performed on a 20 mg ± 10 mg sample of the sample composition. Simple scanning is performed between 25°C and 90°C, and the temperature at which the maximum peak is observed is considered the stable temperature and reported in the nearest °C.

[0226] The sample is filled into the DSC dish. All measurements are performed using a high-volume stainless steel dish set (TA part number 900825.902). The dish, lid, and gasket are weighed using a Mettler Toledo MT5 analytical microbalance (or equivalent, Mettler Toledo, LLC., Columbus, OH) to determine the tare weight. The sample is filled into the dish to a target weight of 20 mg (+ / - 10 mg) according to the manufacturer's specifications, taking care to ensure that the sample is in contact with the bottom of the dish. The dish is then sealed with a TA High Volume Die Set (TA part number 901608.905). The final assembly is weighed to obtain the weight of the sample. The sample is filled into a TA Q Series DSC (TA Instruments, New Castle, DE) according to the manufacturer's instructions. The DSC procedure uses the following settings: 1) Equilibrate at 25°C; 2) Mark the end of cycle 1; 3) Increase temperature to 90.00°C at 1.00°C / min; 4) Mark the end of cycle 3; then 5) End method; press Run.

[0227] Moisture Test Method All samples and procedures are maintained at room temperature (25±3°C) and at a relative humidity of 40±10% for 24 hours prior to testing.

[0228] The moisture content test method is used to quantify the weight percentage of water in a composition. In this method, Karl Fischer (KF) titration is performed on each of three similar samples of the sample composition. The titration is performed using a volumetric KF titrator and a one-component solvent system. The sample is 0.3 ± 0.05 g in mass and is dissolved in the titration vessel for 2.5 minutes before titration. The average (arithmetic mean) moisture content of the three test specimen replicas is reported in units of 0.1 wt% of the sample composition.

[0229] The sample composition should be prepared at 25±3°C and 40±10.0%RH for at least 24 hours before measurement. One suitable example of the apparatus and specific procedure is as follows:

[0230] To measure the water content of the sample, a Mettler Toledo V30S Volumetric KF Titrator is used. The instrument is equipped with Honeywell Fluka Hydraanal Solvent (catalog no. 34800-1L-US) for dissolving the sample, Honeywell Fluka Hydraanal Titrant-5 (catalog no. 34801-1L-US) for titrating the sample, and three drying tubes (titration bottle, solvent bottle, and waste bottle) filled with Honeywell Fluka Hydraanal Molecular sieve 3nm (catalog no. 34241-250g) to preserve the effectiveness of the anhydrous material.

[0231] The method used to measure the samples was type "KF vol", ID "U8000", and title "KFVol 2-comp 5", each having eight lines in which the method functions.

[0232] Line 1, Title has the following selected: Type is set to Karl Fischer Titration Vol.; Compatibility is set to V10S / V20S / V30S / T5 / T7 / T9; ID is set to U8000; Title is set to KFVol 2-comp 5; Author is set to Administrator; Date and time are defined along with Modified on and Modified by when the method was created; Protection is set to no and SOP is set to None.

[0233] Line 2, Sample has two options: Sample and Concentration. When the Sample option is selected, the following fields are defined as follows: Set the number of IDs to 1. Set ID1 to -- and select Entry Type as Weight. Set the Lower Limit to 0.0 g. Set the Upper Limit to 5.0 g. Set the Density to 1.0 g / mL. Set the Correction Factor to 1.0. Set the Temperature to 25.0 °C. Select Auto Start and set Entry as After Addition. When the Concentration option is selected, the following fields are defined as follows: Select Titrator to KF 2-comp 5. Set Nominal Concentration to 5 mg / mL. Select Standard to Water-Standard 10.0. Select Entry Type as Weight. Set the Lower Limit to 0.0 g. Set the Upper Limit to 2.0 g. Set the Temperature to 25.0 °C. Set the Mixing Time to 10 seconds. Select Auto Start. Select Entry as After Addition. The lower limit of the concentration is set at 4.5 mg / mL, and the upper limit of the concentration is set at 5.6 mg / mL.

[0234] Line 3, the titration stand (KF stand), has fields defined as follows: Set the type to KF stand. Select the titration stand to KF stand. Select the drift source to online. Set the maximum starting drift to 25.0 μg / min.

[0235] Line 4, the mixing time, has a field defined as follows: Set the duration to 150 seconds.

[0236] Line 5, Titration (KF Volume)[1] has six options: Titrate, Sensor, Agitation, Pre-distribution, Control, and Termination. When the Titrate option is selected, the following fields are defined as follows: Select Titrate to KF 2-comp 5. Set Nominal concentration to 5 mg / mL and Reagent type to 2-comp. When the Sensor option is selected, the following fields are defined as follows: Set Type to Polarization. Select Sensor to DM143-SC. Set Unit to mV. Set Indicator to Voltammetry and Ipol to 24.0 μA. When the Agitation option is selected, the following fields are defined as follows: Set Speed ​​to 50%. When the Pre-distribution option is selected, the following fields are defined as follows: Select Mode to None. Set Wait Time to 0 seconds. When the Control option is selected, the following fields are defined as follows: Set Endpoint to 100.00 mV. Set Control Bandwidth to 400.00 mV. Set the maximum infusion rate to 3 mL / min. Set the infusion rate (minutes) to 100 μL / min and select Start successfully. When the End option is selected, the following fields are defined as follows: Select Type as Drift Stop Relative. Set Drift to 15.0 μg / min. Vmax is 15 mL; Minimum time is set to 0 seconds and maximum time is set to ∞ seconds.

[0237] Line 6, the calculation has fields defined as follows: The result type is selected as predefined. Set the result to content. Set the result unit to %. Set the expression to R1=(VEQ * CONC-TIME * Set D...). Set the constant C to 0.1. Set the decimal part to 2. Do not select result limits. Select record statistics. Do not select extra statistical functions.

[0238] Line 7, the record has fields defined as follows: Select Result No. Select Raw Result No. Select Table of Measurements No. Select Sample Data No. Select Resource Data No. Select EV No. Select Et No. Select Vt No. Select H2O-t No. Select Drift-t No. Select H2O-t&Drift-t No. Select Vt&Drift-t No. Select Method No., Select Series Data No.

[0239] Line 8, the end of the sample, has a field defined as follows: Select Open Series.

[0240] Once a method is selected, pressing Start defines the following fields: Set Type to Method. Set Method ID to U8000. Set Sample Quantity to 1. Set ID1 to -- and Sample Size to 0g. Press the Start option again. The instrument measures the maximum drift and, once steady state is reached, allows the user to select sample addition. At this point, the user adds the 3-hole adapter, removes the stopper, places the sample in the titration beaker, replaces the 3-hole adapter and stopper, and enters the sample mass in grams on the touchscreen. The reported value is the weight percentage of water in the sample. Repeat this measurement three times for each sample and report the average of the three measurements.

[0241] Fiber testing methods The fiber testing method is used to determine whether a solid dissolution composition crystallizes under process conditions and contains fiber crystals. A simple definition of fiber is "a thread or a thread-like structure or object." Fibers have a long length in only one direction (e.g., Figures 2A and 2B). This is different from other crystalline forms such as plates or lamellae that have long lengths in two or more directions (e.g., Figures 13A and 13B). Only solid dissolution compositions containing fibers are within the scope of this invention.

[0242] A sample approximately 4 mm in diameter is placed on an SEM sample shuttle and stub (Quorum Technologies, AL200077B and E7406) having a pre-coated slit containing a 1:1 mixture of Scigen Tissue Plus optimal cutting temperature (OCT) compound (Scigen 4586) and colloidal graphite (agar scientific G303E). The placed sample is plunge-frozen in a liquid nitrogen slush bath. Next, the frozen sample is inserted into a Quorum PP 3010 Tcryo prep chamber (Quorum Technologies PP3010T) or equivalent and equilibrated to -120°C before freeze-fracturing. Freeze-fracturing is performed by cutting off the top of the vitreous sample using a cryogenic built-in knife in the cryoprep chamber. Additional sublimation is performed at -90°C for 5 minutes to remove any residual ice on the sample surface. The sample is further cooled to -150°C and sputter-coated with a Pt layer that is present in the cryo-prep chamber for 60 seconds to reduce static charge.

[0243] High-resolution imaging is performed using a Hitachi Ethos NX5000 FIB-SEM (Hitachi NX5000) or an equivalent device.

[0244] To determine the fibrous morphology of the sample, imaging is performed at a magnification of 20,000x. At this magnification, individual crystals of the crystallizing agent can be observed. The magnification may be slightly adjusted to a lower or higher value until individual crystals are observed. Those skilled in the art can evaluate the longest dimension of a representative crystal in the image. If this longest dimension is about 10 times or more the other orthogonal dimensions of the crystal, these crystals are considered fibers and are within the scope of the present invention. [Examples]

[0245] The present invention relates to a solid soluble composition (SDC) comprising a mesh microstructure formed from a dry sodium fatty acid carboxylate compound containing an activator such as a high concentration of freshness-enhancing agent, which dissolves during normal use and delivers remarkable freshness to the fabric.

[0246] The examples illustrate compositions of the present invention that can often be filled with higher concentrations of freshness-enhancing agents, including fragrance capsules and neat fragrances, than currently available in commercially available products.

[0247] In summary, Example 1 shows a composition of the present invention having fragrance capsules of various concentrations, Example 2 shows a composition of the present invention having fragrances of various concentrations, Example 3 shows a composition of the present invention having various combinations of crystallizers, Example 4 shows a comparative composition having a long-chain crystallizer, Example 5 shows a composition of the present invention having a blend of fragrance capsules and neat fragrance, and Example 6 shows a composition of the present invention using sodium chloride as a processing aid for crystallization in the formation stage of the process. Example 7 shows a composition of the present invention prepared on a pilot plant scale, allowing for higher concentrations of crystallizers in the formation process, where the crystallizer is supplied as a fatty acid and neutralized during production. Finally, Example 8 shows a composition of the present invention having fragrance capsules with different capsule chemistry.

[0248] All examples are prepared using the following three manufacturing steps. 1. Mixing - The crystallizing agent is completely soluble in water. 2. Formation - The composition from the mixing step is formed to the desired SDC size and dimensions by techniques including crystallization, partial drying, salt addition, or viscosity increase. 3. Drying - The amount of water is reduced to ensure the desired performance, including solubility, hydration, and thermal stability.

[0249] The activator is generally added to the SDC during the mixing process or after the drying process.

[0250] Tables 1 to 16 provide examples of the composition and performance parameters of the SDC and comparative SDC of the present invention.

[0251] The SDCM upper section provides all amounts of materials used in the mixing to produce the Solid Solubility Composition Mixture (SDCM). Calculate the following other items: "%CA" is the weight percentage of all crystallizing agents in the SDCM.

[0252] The SDC-Central Section provides the weight corresponding to the amount in the final solid soluble composition (SDC) from which all unbound water has been removed. Calculate the following other items: "%CA" is the percentage of all crystallizing agents in the SDC. "Retardant CA%" is the percentage of the crystallizing agent that dissolves more slowly (i.e., longer chain length) if the sample contains a mixture of crystallizing agents. "Fragrance Capsules" is the percentage of fragrance capsules in the dried SDC. "Fragrance" is the percentage of neat fragrance in the dried SDC. "AA" is the total amount of fragrance capsules and neat fragrance, if both are present.

[0253] Dissolving performance - In the section below, "M S "T" and "M A This is the output of the dissolution test method. A value of "NM" means that the performance could not be measured.

[0254] material (1) Water: Millipore, Burlington, MA (18m-ohm resistance) (2) Sodium caprate (sodium octanoate, NaC8): TCI Chemicals, catalog number 00034 (3) Sodium caprate (sodium decanoate, NaC10): TCI Chemicals, catalog number D0024 (4) Sodium laurate (sodium dodecanoate, NaC12): TCI Chemicals, catalog number L0016 (5) Sodium myristate (sodium tetradecanoate, NaC14): TCI Chemicals, catalog number M0483 (6) Sodium palmitate (sodium hexadecanate, NaC16): TCI Chemicals, catalog number P00007 (7) Sodium stearate (sodium octadecanoate, NaC18): TCI Chemicals, catalog number S0031 (8) Fragrance capsule slurry: Encapsys, encapsulated fragrance #1, melamine formaldehyde wall chemical reaction, fragrance encapsulant #1 (31% active). (9) Neat Fragrance: International Flavors and Fragrances, Neat Fragrance Oil #1 (10) Sodium Chloride: VWR BDH Chemical, Catalog No. BDH9286-500g (11) Fatty acid blend: C810L, Procter & Gamble Chemicals, Sample code: SR26399 (12) Lauric acid: Peter Cremer, Catalog No. FA-1299, Lauric acid (13) Sodium hydroxide (50% by weight solution): Fisher Scientific, catalog number SS254-4 (14) Fragrance capsule slurry: Encapssys, encapsulated fragrance #2, polyacrylate wall chemical action, 21% by weight active (15) Fragrance capsule slurry: Encapssys, encapsulated fragrance #3 high core wall, polyacrylate wall chemical action, 21% wt% active (16) Fragrance capsule slurry: Encapsys, encapsulated fragrance #4, polyurea wall chemical action, 32% by weight active (17) Fragrance capsule slurry: Encapssys, encapsulated fragrance #5, silica-based wall chemistry, 6.2% wt% activity

[0255] (Example 1) Example 1 shows a composition of the present invention having different levels of fragrance capsules, all of which are added during mixing. Such a combination provides consumers with remarkable dry fabric freshness.

[0256] Samples AA to AL represent the compositions of the present invention that form a fibrous mesh microstructure using two combinations of sodium fatty acid carboxylate crystallizers. Samples AA to AD (Table 1) were prepared with a nAl:nAl ratio of 70:30. NaD containing a crystallizer that dissolves more slowly in the composition is more suitable for washing at higher temperatures and / or for releasing fragrance capsules in the later stages of the washing cycle. They contain 25% by weight of the crystallizer in the SDCM and 85.0 to 97.25% by weight in the final SDC composition. Samples AE to AL (Tables 2 and 3) were prepared with a nAl:nAl ratio of 60:40. NaD containing a crystallizer that does not dissolve as slowly in the composition is more suitable for washing at higher temperatures than those shown in Table 1 (Figure 7) and / or for releasing fragrance capsules in the earlier stages of the washing cycle. They contain 25% by weight of the crystallizer in the SDCM and 82.5 to 98.9% by weight in the final SDC composition. Finally, the data from Tables 2 and 3 show that dissolution is determined not by the amount of fragrance capsules in the composition, but essentially by the composition of the crystallizer (Figure 10).

[0257] Preparation of solid soluble compositions The composition was prepared as follows:

[0258] (Mixing) A 250 ml stainless steel beaker (Thermo Fischer Scientific, Waltham, MA) was placed on a hot plate (VWR, Radnor, PA, 7×7 CER Hotplate, catalog number NO97042-690). Water (Milli-Q Academic) and crystallizer were added to the beaker. A temperature probe was placed in the composition. An overhead mixer (IKA Works Inc, Wilmington, NC, model RW20 DMZ) and a mixing device including a 3-blade impeller design were assembled, and the impeller was placed in the composition. The heater was set to 80°C and the impeller was set to rotate at 250 rpm, and the composition was heated to 80°C until all the crystallizer was solubilized and the composition became clear. The composition was then poured into a Max100 Mid Cup, covered, and allowed to cool to 25°C. The fragrance capsules were added to a cooled solution and homogenized into the composition using a Speedmixer (Flack Tek.Inc, Landrum, SC, model DAC 150.1FVZ-K) at a speed of 3000 rpm for 3 minutes. The composition was transferred to a polymer mold containing a 5 mm diameter hemispherical pattern, uniformly dispersed using a rubber baking spatula, and excess material was scraped from the top of the mold.

[0259] The mold was placed in a refrigerator (VWR Door Solid Lock F Refrigerator 115V, 76300-508, or equivalent) equilibrated at 4°C for 24 hours to allow the crystallizing agent to crystallize.

[0260] If the (dried) preparation crystallized, the mold was placed in a convection oven (Yamato, DKN400, or equivalent) set to 25°C with air circulation for an additional 24 hours. The beads were then removed from the mold and collected. When measured by the moisture content test method, the beads contained less than 5% by weight of water.

[0261] [Table 4]

[0262] [Table 5]

[0263] [Table 6]

[0264] (Example 2) Example 2 illustrates a fast-dissolving composition of the present invention having different levels of neat fragrance. Such a combination provides consumers with remarkable wet fabric freshness. This example provides several approaches to adding neat fragrance to increase the fragrance filling amount.

[0265] Samples BA to BG (Tables 4 and 5) represent compositions of the present invention that form a mesh microstructure when neat fragrance is emulsified in the mixing step. Samples BA to BF are prepared by formation through crystallization of a crystallizing agent. Unexpectedly, sample BG (Table 5) does not crystallize at 4°C when more than about 12.7% by weight of fragrance is emulsified, so it is prepared by formation by partial drying of the composition. Samples BH to BK (Table 6) show that the compositions are prepared by formation by crystallization in the absence of emulsified neat fragrance, and further by drying, where the fragrance can be added later to produce a viable SDC even at fragrance levels far exceeding 15% by weight. The samples contain 25-30% by weight of crystallizing agent in the SDCM and about 29.0% to 99.0% by weight of crystallizing agent in the final SDC composition.

[0266] Preparation of solid soluble compositions Samples BA to BG were prepared as follows (Tables 4-5).

[0267] (Mixing) A 250 ml stainless steel beaker (Thermo Fischer Scientific, Waltham, MA) was placed on a hot plate (VWR, Radnor, PA, 7×7 CER Hotplate, catalog number NO97042-690). Water (Milli-Q Academic) and crystallizer were added to the beaker. A temperature probe was placed in the composition. An overhead mixer (IKA Works Inc, Wilmington, NC, model RW20 DMZ) and a mixing device including a 3-blade impeller design were assembled, and the impeller was placed in the composition. The heater was set to 80°C and the impeller was set to rotate at 250 rpm, and the composition was heated to 80°C until all the crystallizer was solubilized and the composition became clear. The composition was then poured into a Max100 Mid Cup, covered, and allowed to cool to 25°C. Neat fragrance was added to a cooled solution and homogenized into the composition using a Speedmixer (Flack Tek.Inc, Landrum, SC, model DAC 150.1FVZ-K) at a speed of 3000 rpm for 3 minutes. The composition was transferred to a polymer mold containing a 5 mm diameter hemispherical pattern, uniformly dispersed using a rubber baking spatula, and excess material was scraped from the top of the mold.

[0268] The mold was placed in a refrigerator (VWR Door Solid Lock F Refrigerator 115V, 76300-508, or equivalent) equilibrated at 4°C for 24 hours to allow the crystallizing agent to crystallize. If the composition did not crystallize, it had to be partially dried until crystallization occurred.

[0269] If the (dried) preparation crystallized, the mold was placed in a convection oven (Yamato, DKN400, or equivalent) set to 25°C with air circulation for an additional 24 hours. The SDC was then removed from the mold and collected. The beads contained less than 5% by weight of water, as measured by the moisture content test method.

[0270] Samples BH to BK were prepared using the same procedure, except that the neat fragrance was added after the drying stage instead of being omitted during the mixing stage of preparation, and the resulting SDC was removed from the mold and recovered. In these non-limiting cases, sample BH was prepared by adding small droplets of neat fragrance three times to the flat side of the mold. Sample B1 was prepared by adding small droplets of neat fragrance three times to the round side of the mold. Sample BJ was prepared by spraying / blowing a small amount of fragrance onto the mold. Finally, sample BK was prepared by brushing small droplets of neat fragrance twice onto the round side of the mold.

[0271] [Table 7]

[0272] [Table 8]

[0273] [Table 9]

[0274] (Example 3) Example 3 shows compositions of the present invention having different combinations of crystallizing agents (Tables 7 to 11). Such combinations provide consumers with compositions that dissolve at different times during the washing cycle to optimize the freshness performance of the fabric. Fragrance and fragrance capsule activator were added after drying.

[0275] Samples CA to CD (Table 7) were prepared using only the single-chain length of the crystallizer. All four samples were prepared by mixing the crystallizer in water, but the formation of CB to CD was carried out by crystallization in a refrigerator at 4°C, while sample CA was formed by partial drying followed by formation in a refrigerator at 4°C. These compositions exhibit a wide range of different dissolutions with time and temperature, allowing for the release of active substances at different times and washing conditions in the washing cycle. The samples contain 20% to 35% by weight of the crystallizer in SDCM.

[0276] Samples CE to CO (Tables 8, 9, and 10) were prepared from blends of C10 and C12 chain length crystallizers, covering a much wider range than in Examples 1 and 2. Formation in all compositions except CO was carried out by crystallization at 4°C. Formation in sample CO was carried out by partial drying followed by crystallization at 4°C. These samples demonstrate that by carefully blending the chain lengths of the crystallizers, a very different solubility of 18.4% to 86.0% as determined by the solubility test method was achieved. The samples contain 7.0% to 35% by weight of crystallizer in SDCM.

[0277] Samples CQ to CR (Table 11) were prepared from blends of C8 and C12 chain length crystallizers, which also covered a much wider range than in Examples 1 and 2. Formation in samples CQ and CR was carried out by crystallization at 4°C. Formation in samples CS and CT was carried out by partial drying followed by crystallization at 4°C. By carefully blending the chain lengths of the crystallizers, a very different range of dissolution, from 29.4% to 45.3%, was achieved, as determined by the dissolution test method. The samples contained 15% to 35% by weight of the crystallizer in SDCM.

[0278] Preparation of solid soluble compositions The composition was prepared as follows:

[0279] (Mixing) A 250 ml stainless steel beaker (Thermo Fisher Scientific, Waltham, MA) was placed on a hot plate (VWR, Radnor, PA, 7×7 CER Hotplate, catalog number NO97042-690). Water (Milli-Q Academic) and crystallizer were added to the beaker. A temperature probe was placed in the composition. An overhead mixer (IKA Works Inc, Wilmington, NC, model RW20 DMZ) and a mixing device including a 3-blade impeller design were assembled, and the impeller was placed in the composition. The heater was set to 80°C and the impeller was set to rotate at 250 rpm, and the composition was heated to 80°C until all the crystallizer was solubilized and the composition became clear. The composition was then poured into a Max100 Mid Cup, covered, and allowed to cool to 25°C. The composition was transferred to a polymer mold containing a 5mm diameter hemispherical pattern, dispersed evenly using a rubber baking spatula, and any excess material was scraped off from the top of the mold.

[0280] The (forming) mold was placed in a refrigerator (VWR Door Solid Lock F Refrigerator 115V, 76300-508, or equivalent) equilibrated at 4°C for 24 hours to allow the crystallizing agent to crystallize. If the composition did not crystallize, it was partially dried by blowing air over it to remove some water, and then crystallized at 4°C.

[0281] If the (dried) preparation crystallized, the mold was placed in a convection oven (Yamato, DKN400, or equivalent) for an additional 24 hours. The beads were then removed from the mold and collected. When measured by a moisture content test method, the beads contained less than 5% by weight of water.

[0282] [Table 10]

[0283] [Table 11]

[0284] [Table 12]

[0285] [Table 13]

[0286] [Table 14]

[0287] (Example 4) Example 4 shows a comparative composition having a long-chain long-crystallizing agent. A fragrance and a fragrance capsule activator were added after drying. Such compositions do not completely dissolve during the washing cycle.

[0288] Samples DA to DC (Table 12) contain comparative compositions containing a long-chain sodium fatty acid carboxylate crystallizer. Sample DA contains C14, sample DB contains C16, and sample DC contains C18. Formation in all of these compositions was carried out by crystallization at 4°C. In these compositions, the activator was added after drying.

[0289] All samples exhibited very low solubility, as measured by the dissolution test method. In fact, the average percentage of mass loss was not measured at 25°C. Repeated measurements were reported at 37°C, a temperature preferred over the one used to increase solubility, but this still only showed an average percentage of mass loss of less than 5% in each case. Ultimately, even under the most favorable conditions for solubilization, these combinations are not viable for complete dissolution during the washing cycle. Indeed, in washing tests conducted with these compositions, hundreds of insoluble particle compositions were dispersed throughout the washing machine.

[0290] Preparation of solid soluble compositions The composition was prepared as follows:

[0291] (Mixing) A 250 ml stainless steel beaker (Thermo Fisher Scientific, Waltham, MA) was placed on a hot plate (VWR, Radnor, PA, 7×7 CER Hotplate, catalog number NO97042-690). Water (Milli-Q Academic) and crystallizer were added to the beaker. A temperature probe was placed in the composition. An overhead mixer (IKA Works Inc, Wilmington, NC, model RW20 DMZ) and a mixing device including a 3-blade impeller design were assembled, and the impeller was placed in the composition. The heater was set to 80°C and the impeller was set to rotate at 250 rpm, and the composition was heated to 80°C until all the crystallizer was solubilized and the composition became clear. The composition was then poured into a Max100 Mid Cup, covered, and allowed to cool to 25°C. The composition was transferred to a polymer mold containing a 5mm diameter hemispherical pattern, dispersed evenly using a rubber baking spatula, and any excess material was scraped off from the top of the mold.

[0292] The mold was placed in a refrigerator (VWR Door Solid Lock F Refrigerator 115V, 76300-508, or equivalent) equilibrated at 4°C for 24 hours to allow the crystallizing agent to crystallize.

[0293] The (dry) mold was placed in a convection oven (Yamato, DKN400, or equivalent) for a further 24 hours. The beads were then removed from the mold and collected. When measured by a moisture content test method, the beads contained less than 5% by weight of water.

[0294] [Table 15]

[0295] (Example 5) Example 5 shows a non-limiting sample of the present invention having blends of fragrance capsules and neat fragrance at various concentrations. Such combinations provide consumers with the opportunity for overall freshness, having both dry and wet fabric freshness, within a single SDC composition.

[0296] Sample EA contains both a low concentration of fragrance and fragrance capsules. Sample EB contains a high concentration of fragrance and low concentration of fragrance capsules to enhance wet fabric freshness. Sample EC contains a low concentration of fragrance and high concentration of fragrance capsules to enhance long-term fabric freshness. Sample ED contains both a high concentration of fragrance and fragrance capsules to meet the needs of consumers seeking a highly fresh product with a fragrance. The samples contain approximately 25% by weight of crystallizing agent in SDCM.

[0297] Preparation of solid soluble compositions The composition was prepared as follows:

[0298] (Mixing) A 250 ml stainless steel beaker (Thermo Fisher Scientific, Waltham, MA) was placed on a hot plate (VWR, Radnor, PA, 7×7 CER Hotplate, catalog number NO97042-690). Water (Milli-Q Academic) and crystallizer were added to the beaker. A temperature probe was placed in the composition. An overhead mixer (IKA Works Inc, Wilmington, NC, model RW20 DMZ) and a mixing device including a 3-blade impeller design were assembled, and the impeller was placed in the composition. The heater was set to 80°C and the impeller was set to rotate at 250 rpm, and the composition was heated to 80°C until all the crystallizer was solubilized and the composition became clear. The composition was then poured into a Max100 Mid Cup, covered, and allowed to cool to 25°C. The fragrance capsules and neat fragrance were added to a cooled solution and homogenized into a composition using a Speedmixer (Flack Tek.Inc, Landrum, SC, model DAC 150.1FVZ-K) at a speed of 2700 rpm for 3 minutes. The composition was transferred to a polymer mold containing a 5 mm diameter hemispherical pattern, uniformly dispersed using a rubber baking spatula, and excess material was scraped from the top of the mold.

[0299] The mold was placed in a refrigerator (VWR Door Solid Lock F Refrigerator 115V, 76300-508, or equivalent) equilibrated at 4°C for 24 hours to allow the crystallizing agent to crystallize.

[0300] The (dry) mold was placed in a convection oven (Yamato, DKN400, or equivalent) for a further 24 hours. The beads were then removed from the mold and collected. When measured by a moisture content test method, the beads contained less than 5% by weight of water.

[0301] [Table 16]

[0302] (Example 6) Example 6 shows compositions of the present invention having different crystallizing agents, in which sodium chloride was added in the formation of SDC. In these compositions, fragrances and fragrance capsule activators were added after drying.

[0303] Sample FA contained only C8 chain lengths that were too short to be formed by crystallization at 4°C; instead, the composition was partially dried and then crystallized at 4°C. Sample FB demonstrates that the same composition can be formed directly by adding sodium chloride to the composition and then crystallizing at 4°C. Samples FC and FD exhibited the same behavior, while SDC consisted of C10 and C10 with sodium chloride, respectively.

[0304] Preparation of solid soluble compositions The composition was prepared as follows:

[0305] (Mixing) A 250 ml stainless steel beaker (Thermo Fisher Scientific, Waltham, MA) was placed on a hot plate (VWR, Radnor, PA, 7×7 CER Hotplate, catalog number NO97042-690). Water (Milli-Q Academic) and crystallizer were added to the beaker. A temperature probe was placed in the composition. An overhead mixer (IKA Works Inc, Wilmington, NC, model RW20 DMZ) and a mixing device including a 3-blade impeller design were assembled, and the impeller was placed in the composition. The heater was set to 80°C and the impeller was set to rotate at 250 rpm, and the composition was heated to 80°C until all the crystallizer was solubilized and the composition became clear. The composition was then poured into a Max100 Mid Cup, covered, and allowed to cool to 25°C. The fragrance capsules were added to a cooled solution and homogenized into the composition using a Speedmixer (Flack Tek.Inc, Landrum, SC, model DAC 150.1FVZ-K) at a speed of 2700 rpm for 3 minutes. The composition was transferred to a polymer mold containing a 5 mm diameter hemispherical pattern, uniformly dispersed using a rubber baking spatula, and excess material was scraped from the top of the mold.

[0306] (Formation) Formation by crystallization was carried out in a mold placed for 8 hours in a refrigerator (VWR Door Solid Lock F Refrigerator 115V, 76300-508, or equivalent) equilibrated at 4°C, allowing the crystallizing agent to crystallize. Formation by partial drying, followed by crystallization, was carried out in a mold after some water had been removed by blowing air, and then crystallized in the refrigerator.

[0307] If the (dried) preparation crystallized, the mold was placed in a convection oven (Yamato, DKN400, or equivalent) for an additional 8 hours. The beads were then removed from the mold and collected. When measured by the moisture content test method, the beads contained less than 5% by weight of water.

[0308] [Table 17]

[0309] (Example 7) Example 7 shows a composition of the present invention prepared on a pilot plant scale, which allows for a higher concentration of crystallizing agent in formation, where the crystallizing agent is supplied as a fatty acid and neutralized with sodium hydroxide during mixing.

[0310] Sample FE shows the composition of the present invention prepared in a single batch tank by mixing fatty acids, sodium hydroxide, and fragrance capsules, forming a single flow by crystallization, and drying under ambient conditions. Sample FF shows the preparation of the present invention by combining and mixing flows from a fatty acid melting tank and a sodium hydroxide flow, then combining this with a flow of fragrance capsule slurry, forming a final single flow by crystallization, and drying under ambient conditions. Sample FG shows the composition of the present invention prepared by the same process as Sample FF, but with a crystallizing agent of 38.5% by weight, and formation is achieved by viscosity increase. The activator is added after drying. Sample FH shows the composition of the present invention prepared by the same process as Sample FF, but with a crystallizing agent of 50.5% by weight, and formation is achieved by viscosity increase, and the activator is added after drying. The samples contain approximately 26% to 50% by weight of crystallizing agent in SDCM.

[0311] In these samples, C8 and C10 originate from the fatty acid raw material (11).

[0312] [Table 18]

[0313] (Example 8) Example 8 shows a composition of the present invention having fragrance capsules with different capsule chemistry properties. The ability to prepare compositions of the present invention with different capsule chemistry properties allows for a wider variety of freshness characteristics for consumers.

[0314] Sample FI is prepared using fragrance capsules with a polyacrylate wall chemical structure. Sample FJ is prepared using fragrance capsules with a high core-to-wall ratio polyacrylate chemical structure. Sample FK is prepared using fragrance capsules with a polyurea wall chemical structure. Sample FL is prepared using fragrance capsules with a silica wall chemical structure.

[0315] Preparation of solid soluble compositions The composition was prepared as follows:

[0316] (Mixing) A 250 ml stainless steel beaker (Thermo Fisher Scientific, Waltham, MA) was placed on a hot plate (VWR, Radnor, PA, 7×7 CER Hotplate, catalog number NO97042-690). Water (Milli-Q Academic) and crystallizer were added to the beaker. A temperature probe was placed in the composition. An overhead mixer (IKA Works Inc, Wilmington, NC, model RW20 DMZ) and a mixing device including a 3-blade impeller design were assembled, and the impeller was placed in the composition. The heater was set to 45°C and the impeller was set to rotate at 250 rpm, and the composition was heated to 45°C until all the crystallizer was solubilized and the composition became clear. The composition was then poured into a Max100 Mid Cup, covered, and allowed to cool to 25°C. The fragrance capsules were added to a cooled solution and homogenized into the composition using a Speedmixer (Flack Tek.Inc, Landrum, SC, model DAC 150.1FVZ-K) at a speed of 2700 rpm for 3 minutes. The composition was transferred to a polymer mold containing a 5 mm diameter hemispherical pattern, uniformly dispersed using a rubber baking spatula, and excess material was scraped from the top of the mold.

[0317] (Formation) Formation by crystallization was carried out in a mold placed for 8 hours in a refrigerator (VWR Door Solid Lock F Refrigerator 115V, 76300-508, or equivalent) equilibrated at 4°C, allowing the crystallizing agent to crystallize. Formation by partial drying, followed by crystallization, was carried out in a mold after some water had been removed by blowing air, and then crystallized in the refrigerator.

[0318] If the (dried) preparation crystallized, the mold was placed in a convection oven (Yamato, DKN400, or equivalent) for an additional 8 hours. The beads were then removed from the mold and collected.

[0319] [Table 19]

[0320] The dimensions and values ​​disclosed herein should not be understood as being strictly limited to the exact numerical values ​​listed. Instead, unless otherwise specified, each such dimension is intended to mean both the listed value and the functionally equivalent range encompassing that value. For example, a dimension disclosed as "40 mm" is intended to mean "approximately 40 mm."

[0321] All documents referenced herein, including any patents or patent applications that are cross-referenced or related, and any patent applications or patents on which this application claims priority or benefit thereof, are incorporated herein by reference in their entirety unless explicitly stated to be excluded or limited. No reference to any document shall be deemed prior art to any invention disclosed or claimed herein, nor shall it be deemed to teach, suggest or disclose any such invention, either alone or in combination with any other reference. Furthermore, if any meaning or definition of a term in this document conflicts with any meaning or definition of the same term in any document incorporated by reference, the meaning or definition given to the term in this document shall apply.

[0322] While specific embodiments of the present invention have been illustrated and described, it will be apparent to those skilled in the art that various other changes and modifications can be made without departing from the spirit and scope of the invention. Therefore, it is intended that all such changes and modifications within the scope of the invention be covered in the appended claims. The inventions disclosed herein are as follows: [ 1] Crystallizing agent, Water and, A solid soluble composition comprising a group of capsules containing a freshness-enhancing agent, The crystallizing agent is a sodium salt of a saturated fatty acid having 8 to about 12 methylene groups. The aforementioned capsule An oily core containing freshness-enhancing agents, A shell surrounding the core, The first shell component is substantially inorganic, A condensation layer containing the precursor condensation product, A nanoparticle layer comprising inorganic nanoparticles, wherein the condensation layer is disposed between the core and the nanoparticle layer, comprising a substantially inorganic first shell component, A shell comprising an inorganic second shell component surrounding the first shell component, the second inorganic shell component surrounding the nanoparticle layer, The precursor comprises at least one compound of formula (I), (M v O z Y n ) w (Equation I) In the formula, M is one or more of silicon, titanium, and aluminum. v is the valence of M, which is 3 or 4. z is between 0.5 and 1.6. Each Y is independently -OH, -OR 2 Hello,

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[10] The inorganic second shell component is SiO 2 , TiO 2 、Al 2 O 3 CaCO 3 Ca 2 SiO 4 Fe 2 O 3 Fe 3 O 4 It comprises at least one of iron, silver, nickel, gold, copper, or clay, and preferably the second inorganic shell component is SiO 2 or CaCO 3 A solid soluble composition according to any one of [1] to [9], comprising at least one of the following.

[11] The solid soluble composition according to any one of [1] to

[10] , wherein the capsule has an average volume-weighted capsule diameter of about 0.1 μm to about 200 μm, and preferably the capsule has an average volume-weighted capsule diameter of about 10 μm to about 190 μm.

[12] A solid soluble composition according to any one of [1] to

[11] , wherein the shell has a thickness of about 10 nm to about 10,000 nm.

[13] A solid soluble composition according to any one of [1] to

[12] , wherein the compound of formula (I) has a polystyrene equivalent weight-average molecular weight (Mw) of about 700 Da to about 30,000 Da, and preferably the compound of formula (I) has a branching degree of 0.2 to about 0.6.

[14] A solid soluble composition according to any one of [1] to

[13] , wherein the compound of formula (I) has a molecular weight polydispersity index of about 1 to about 20.

[15] The precursor comprises at least one compound of formula (II), (M v O z Y n R 1 p ) w (Formula II) In the formula, M is one or more of silicon, titanium, and aluminum. v is the valence of M, which is 3 or 4. z is between 0.5 and 1.6. Each Y is independently -OH, -OR2 Hello,

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Claims

1. Crystallizing agent, Water and, A solid soluble composition comprising a group of capsules containing a freshness-enhancing agent, The crystallizing agent is composed of one or more sodium salts of saturated fatty acids C8, C10, and C12. The aforementioned capsule is An oily core containing freshness-enhancing agents, The oily core includes a shell that surrounds the oily core, The aforementioned shell is The first shell component is substantially inorganic, The first shell component is surrounded by an inorganic second shell component, The first shell component is, A condensation layer containing the precursor condensation product, A nanoparticle layer containing inorganic nanoparticles is included. The condensation layer is disposed between the oily core and the nanoparticle layer. The precursor comprises at least one compound of formula (I), (M v O z Y n ) w (Equation I) In the formula, M is one or more of silicon, titanium, and aluminum. v is the valence of M, which is 3 or 4. z is between 0.5 and 1.

6. Each Y is independently -OH, -OR 2 Hello, 【Chemistry 1】 -NH 2 、-NHR 2 、-N(R 2 ) 2 、and 【Chemistry 2】 Selected from, in the formula, R 2 C 1 ~C 20 Alkyl, C 1 ~C 20 Alkylene, C 6 ~C 22 A 5-12 membered heteroaryl containing an aryl or 1-3 ring heteroatoms selected from O, N, and S, R 3 H, C 1 ~C 20 Alkyl, C 1 ~C 20 Alkylene, C 6 ~C 22 A 5-12 membered heteroaryl containing an aryl or 1-3 ring heteroatoms selected from O, N, and S, n is between 0.7 and (v-1), A solid soluble composition in which w is 2 to 2000.

2. The solid solubility composition according to claim 1, wherein the sodium salt of the saturated fatty acid in the crystallizing agent comprises 50% to 70% by weight of C12, 15% to 25% by weight of C10, and 15% to 25% by weight of C8.

3. The solid soluble composition according to claim 1, wherein the sodium salt of the saturated fatty acid contains 30% to 80% of a delayed crystallizing agent (% delayed CA).

4. The solid soluble composition according to claim 1, wherein the crystallizing agent is the form of a fiber determined by a fiber testing method.

5. The solid soluble composition according to claim 1, wherein the amount of water is less than 50% by weight of the final solid soluble composition when determined by a moisture content test method.

6. The solid soluble composition according to claim 1, wherein, when determined by a dissolution test method, the solid soluble composition has a dissolution rate of more than 5% at 37°C.

7. The solid soluble composition according to claim 1, wherein the freshness beneficial agent is at least one of a neat fragrance or an odor neutralizer.

8. The solid soluble composition according to claim 1, wherein the inorganic nanoparticles of the first shell component include at least one of metal nanoparticles, mineral nanoparticles, metal oxide nanoparticles, or metalloid oxide nanoparticles.

9. The inorganic nanoparticles are SiO 2 , TiO 2 Al 2 O 3 Fe 2 O 3 Fe 3 O 4 CaCO 3 The solid soluble composition according to claim 1, comprising at least one of clay, silver, gold, or copper.

10. The inorganic second shell component is SiO 2 , TiO 2 Al 2 O 3 CaCO 3 Ca 2 SiO 4 Fe 2 O 3 Fe 3 O 4 The solid soluble composition according to claim 1, comprising at least one of iron, silver, nickel, gold, copper, or clay.

11. The solid soluble composition according to claim 1, wherein the capsule has an average volume-weighted capsule diameter of 0.1 μm to 200 μm.

12. The solid soluble composition according to claim 1, wherein the shell has a thickness of 10 nm to 10,000 nm.

13. The solid solubility composition according to claim 1, wherein the compound of formula (I) has a polystyrene equivalent weight-average molecular weight (Mw) of 700 Da to 30,000 Da.

14. The solid solubility composition according to claim 1, wherein the compound of formula (I) has a molecular weight polydispersity index of 1 to 20.

15. The precursor comprises at least one compound of formula (II), (M v O z Y n R 1 p ) w (Formula II) In the formula, M is one or more of silicon, titanium, and aluminum. v is the valence of M, which is 3 or 4. z is between 0.5 and 1.

6. Each Y is independently -OH, -OR 2 Hello, 【Transformation 3】 -NH 2 , - NHR 2 , -N(R 2 ) 2 , and 【Chemistry 4】 Selected from, in the formula, R 2 C 1 ~C 20 Alkyl, C 1 ~C 20 Alkylene, C 6 ~C 22 A 5-12 membered heteroaryl containing an aryl or 1-3 ring heteroatoms selected from O, N, and S, R 3 H, C 1 ~C 20 Alkyl, C 1 ~C 20 Alkylene, C 6 ~C 22 A 5-12 membered heteroaryl containing an aryl or 1-3 ring heteroatoms selected from O, N, and S, n is 0 to (v-1), Each R 1 Independently, C 1 ~C 30 Alkyl, C 1 ~C 30 Alkylene, halogen, -OCF 3 , -NO 2 -CN, -NC, -OH, -OCN, -NCO, alkoxy, epoxy, amino, mercapto, acryloyl, CO 2 H, CO 2 C substituted with one or more alkyl, aryl, and heteroaryl groups 1 ~C 30 Alkyl and halogen, -OCF 3 , -NO 2 -CN, -NC, -OH, -OCN, -NCO, alkoxy, epoxy, amino, mercapto, acryloyl, CO 2 H, CO 2 C substituted with one or more alkyl, aryl, and heteroaryl groups 1 ~C 30 Selected from, p exists in a maximum amount of pmax, w is between 2 and 2000. pmax=60 / [9*Mw(R 1 ) + 8] and Mw(R 1 ) is R 1 The solid soluble composition according to claim 1, wherein the molecular weight of the group is...

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