Soft focus filler

The use of plate-like crystalline titanium phosphate particles addresses the issue of low transmittance and haze in existing fillers, achieving superior transparency and wrinkle blurring effects.

JP7853217B2Active Publication Date: 2026-04-28FUJIMI INCORPORATED
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
FUJIMI INCORPORATED
Filing Date
2021-10-08
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing soft focus fillers do not excel in both transmittance and haze properties.

Method used

A soft focus filler composed of plate-like crystalline titanium phosphate particles with specific size and aspect ratios is used, enhancing both transmittance and haze properties.

Benefits of technology

The filler achieves excellent transmittance and haze properties, providing high transparency and effective wrinkle blurring effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a soft focus filler having excellent transmittance and haze. The soft focus filler of the present invention comprises a powder composed of plate-like crystal particles of titanium phosphate.
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Description

Technical Field

[0001] The present invention relates to a soft focus filler and a cosmetic.

Background Art

[0002] In cosmetics such as foundation and lipstick, a property called soft focus property is required. The soft focus property means that when a cosmetic is applied to the skin to form a cosmetic film, the surface of the skin becomes blurred, making skin spots, freckles, pores or fine wrinkles less visible. A high soft focus property means that, among the light (total irradiation light) hitting the cosmetic coating film, the proportion of the light that diffuses without traveling straight through the cosmetic coating film is large. In order to impart soft focus property to a cosmetic coating film, conventionally, a soft focus filler composed of inorganic powder such as silica has been added to the cosmetic.

[0003] Patent Document 1 describes a cosmetic additive (soft focus filler) having alumina-silica-based particles, wherein the alumina-silica-based particles are composed of cubic primary particles having a side length of 0.3 to 20 μm as observed by a scanning electron microscope, the refractive index by the immersion method is 1.48 to 1.52, the volume-based average particle diameter by the Coulter counter method is 1 to 20 μm, the oil absorption amount by JIS K5101-13-2 is 10 ml / 100 g or more and less than 50 ml / 100 g, and the specific surface area by the BET method is 20 m 2 / g or less, all of which are satisfied.

[0004] Patent Document 2 describes a cosmetic containing spherical organopolysiloxane particles that imparts a smooth feeling, a smoothness and other usability feelings, and stretchability to the cosmetic, and further exhibits an excellent soft focus effect. This cosmetic contains, as a soft focus filler, spherical organopolysiloxane particles having a volume average particle diameter of 0.1 to 30 μm, an average refractive index of 1.44 to 1.57, and 90 mol% or more being organosilsesquioxane units.

[0005] Patent Document 3 describes a composition comprising a particularly physiologically acceptable medium, comprising a) at least one soft-focus filler and b) at least one composite pigment comprising at least one non-spherical aluminum oxide, at least one metal oxide, and at least one surface treatment agent. A talc / TiO2 / alumina / silica composite powder is given as an example of the soft-focus filler.

[0006] Patent document 4 describes a cosmetic product containing barium sulfate doped with a specific amount of rare earth elements as a soft-focus filler. [Prior art documents] [Patent Documents]

[0007] [Patent Document 1] Japanese Patent Publication No. 2019-172648 [Patent Document 2] Japanese Patent Publication No. 2020-75881 [Patent Document 3] Special Publication No. 2018-530580 [Patent Document 4] Japanese Patent Publication No. 2014-88351 [Overview of the Initiative] [Problems that the invention aims to solve]

[0008] However, the soft focus fillers described in Patent Documents 1 to 4 do not excel in both transmittance and haze (scattered light / total light transmittance). The objective of this invention is to provide a soft-focus filler that exhibits excellent transmittance and haze. [Means for solving the problem]

[0009] To solve the above problems, one aspect of the present invention provides a soft focus filler consisting of a powder composed of plate-like crystalline particles of titanium phosphate. [Effects of the Invention]

[0010] This invention makes it possible to provide a soft-focus filler that is excellent in both transmittance and haze. [Brief explanation of the drawing]

[0011] [Figure 1] This graph shows the relationship between total light transmittance and haze for each powder in the examples. [Figure 2] This graph shows the relationship between the volume D50% diameter and the total light transmittance for the titanium phosphate powder obtained in the examples. [Figure 3] This graph shows the relationship between the volume D50% diameter and the haze for the titanium phosphate powder obtained in the examples. [Modes for carrying out the invention]

[0012] The embodiments of this invention will be described below, but this invention is not limited to the embodiments shown below. The embodiments shown below have technically preferred limitations for carrying out this invention, but these limitations are not essential requirements of this invention.

[0013] The soft focus filler in this embodiment consists of a powder composed of plate-like crystalline titanium phosphate particles. Using image analysis, the longest diagonal of the plate surface of this plate-like crystal was measured as the primary particle diameter, and the value calculated as the volume-based cumulative 50% primary particle diameter (volume D50% diameter) was between 0.1 μm and 7.5 μm. In addition, the thickness of the side surface of this plate-like crystal was measured, and the value calculated as the volume-based cumulative 50% thickness (volume D50% thickness) was between 0.01 μm and 1.00 μm, and the aspect ratio (volume D50% diameter divided by volume D50% thickness) was 5 or greater.

[0014] The soft-focus filler in this embodiment consists of a powder composed of plate-like crystalline titanium phosphate particles, resulting in excellent transmittance and haze properties. In addition, the soft focus filler of this embodiment is composed of tabular crystal particles of titanium phosphate, and the volume D50% diameter of the powder is 0.10 μm or more and 7.5 μm or less, the volume D50% thickness is 0.01 μm or more and 1.00 μm or less, and the aspect ratio is 5 or more. Therefore, it can satisfy both a total light transmittance of 80% or more and a haze of 55% or more. Also, since the aspect ratio is 5 or more, it has excellent slipperiness.

[0015] The soft focus filler of this embodiment is preferably composed of powder with a volume D50% diameter of the tabular crystal particles of titanium phosphate being 0.1 μm or more and 3.0 μm or less. Thereby, it can satisfy both a total light transmittance of 80% or more and a haze of 80% or more. Note that if the volume D50% thickness of the crystal particles is less than 0.01 μm, tabular particles are not formed.

[0016] The soft focus filler of this embodiment is composed of powder made of tabular crystal particles of titanium phosphate, and this powder can be obtained, for example, by the following method. First, an aqueous solution of titanyl sulfate and an aqueous solution of phosphoric acid are mixed at a ratio such that the ratio [P] / [Ti] of the molar concentration [P] of phosphorus to the molar concentration [Ti] of titanium is 5 or more and 21 or less to obtain a mixed solution. Next, this mixed solution is placed in a sealed container, and the temperature is maintained at a value within the range of 100°C or more and 160°C or less and reacted for a predetermined time (for example, 5 hours or more). That is, hydrothermal synthesis is performed. Note that the pressure inside the sealed container is a pressure of atmospheric pressure or more that is naturally determined by the pressurization temperature. Thereby, a slurry containing crystal particles of titanium phosphate is obtained.

[0017] Next, after cooling the obtained slurry, the solid content (crystal particles of titanium phosphate) is separated from the slurry. The obtained solid content is washed with a cleaning liquid composed of water or aqueous ammonia (ammonium hydroxide) and then dried.

[0018] [Regarding cosmetics] Examples of cosmetics containing a soft focus filler (hereinafter referred to as "cosmetic composition") include makeup cosmetics such as foundation, face powder, blush, and lipstick. In addition, the soft focus filler according to one aspect of the present invention may be used after being subjected to various polymer treatments or the following treatments in order to improve cosmetic properties and pigment properties. Examples of these treatment methods include fluorine treatment, silicon treatment, alkylsilane treatment, alkyl titanate treatment, metal soap treatment, lauroyl lysine treatment, ester treatment, and amino acid treatment. In the amino acid treatment, proline, hydroxyproline, alanine, glycine, sarcosine, aspartic acid, and glutamic acid can be used.

[0019] The cosmetic containing the soft focus filler according to one aspect of the present invention can contain other components as necessary within a range that does not impair the effects of the present invention. Examples of other components include those commonly used in cosmetics, such as solvents, oils, surfactants, moisturizers, organic ultraviolet absorbers, antioxidants, thickeners, fragrances, colorants, physiologically active components, and antibacterial agents. These other components may be used alone or in combination of two or more. The content of the other components is not particularly limited and can be appropriately set according to the purpose. The content rate of the soft focus filler according to one aspect of the present invention contained in the cosmetic is preferably 0.1% by mass or more and 50% by mass or less based on the total amount of the cosmetic.

Examples

[0020] [Preparation of powder] <No.1> First, an aqueous titanium sulfate solution and an aqueous phosphoric acid solution were mixed at a ratio such that the ratio [P] / [Ti] of the molar concentration [P] of phosphorus to the molar concentration [Ti] of titanium was 9.0 to obtain a mixed solution. Next, this mixed solution was placed in a 1.4 L autoclave, the temperature was maintained at 110°C, and the reaction was carried out for 5 hours. After the reaction, the lid was opened and the slurry in the container was cooled to room temperature. Then, it was removed from the container and the solid component was separated from the slurry by filtration. This solid component was washed with water and then dried (at 105°C for 24 hours) to obtain a powder. Analysis of the obtained powder using an X-ray diffractometer confirmed that the particles constituting the powder are crystalline titanium phosphate with the structural formula Ti(HPO4)2·H2O.

[0021] Observation of the obtained powder using a scanning electron microscope revealed that the particles constituting the powder were plate-shaped, and that many of them were hexagonal plate-shaped. By analyzing the scanning electron microscope images using "Mac-View ver.4," image analysis software manufactured by Mountec Co., Ltd., the volume D50% diameter and volume D50% thickness of the crystalline particles constituting the obtained powder were measured. The volume D50% diameter was found to be 0.29 μm, and the volume D50% thickness was found to be 0.030 μm. Furthermore, calculations using the measured values ​​of volume D50% thickness and volume D50% diameter (0.29 / 0.030) showed that the aspect ratio of the crystalline particles constituting the obtained powder was 10.

[0022] <No.2> First, an aqueous solution of titanyl sulfate and an aqueous solution of phosphoric acid were mixed in a ratio [P] / [Ti] such that the molar concentration of phosphorus [P] to the molar concentration of titanium [Ti] was 10.7 to obtain a mixture. Next, this mixture was placed in a 1.4 L autoclave and reacted for 5 hours while maintaining the temperature at 110°C. After the reaction, the lid was opened and the slurry in the container was cooled to room temperature. Then, it was removed from the container and the solid component was separated from the slurry by filtration. This solid component was washed with water and then dried (at 105°C for 24 hours) to obtain a powder. Analysis of the obtained powder using an X-ray diffractometer confirmed that the particles constituting the powder are crystalline titanium phosphate with the structural formula Ti(HPO4)2·H2O.

[0023] When the obtained powder was observed with a scanning electron microscope, it was confirmed that the particles constituting the powder were plate-shaped, and that many of them were hexagonal plate-shaped. Furthermore, using the same method as in No. 1, the volume D50% diameter and volume D50% thickness of the crystalline particles constituting the obtained powder were measured, and the volume D50% diameter was 0.53 μm, and the volume D50% thickness was 0.065 μm. Furthermore, calculations using the measured values ​​of volume D50% thickness and volume D50% diameter (0.53 / 0.065) showed that the aspect ratio of the crystalline particles constituting the obtained powder was 8.

[0024] <No.3> First, an aqueous solution of titanyl sulfate and an aqueous solution of phosphoric acid were mixed in a ratio [P] / [Ti] such that the molar concentration of phosphorus [P] to the molar concentration of titanium [Ti] was 10.4 to obtain a mixture. Next, this mixture was placed in a 1.4 L autoclave and reacted for 5 hours while maintaining the temperature at 110°C. After the reaction, the lid was opened and the slurry in the container was cooled to room temperature. Then, it was removed from the container and the solid component was separated from the slurry by filtration. This solid component was washed with water and then dried (at 105°C for 24 hours) to obtain a powder. Analysis of the obtained powder using an X-ray diffractometer confirmed that the particles constituting the powder are crystalline titanium phosphate with the structural formula Ti(HPO4)2·H2O.

[0025] When the obtained powder was observed with a scanning electron microscope, it was confirmed that the particles constituting the powder were plate-shaped, and that many of them were hexagonal plate-shaped. Furthermore, using the same method as in No. 1, the volume D50% diameter and volume D50% thickness of the crystalline particles constituting the obtained powder were measured, and the volume D50% diameter was 0.74 μm, and the volume D50% thickness was 0.090 μm. Furthermore, calculations using the measured values ​​of volume D50% thickness and volume D50% diameter (0.74 / 0.090) showed that the aspect ratio of the crystalline particles constituting the obtained powder was 8.

[0026] <No.4> First, an aqueous solution of titanyl sulfate and an aqueous solution of phosphoric acid were mixed in a ratio [P] / [Ti] such that the molar concentration of phosphorus [P] to the molar concentration of titanium [Ti] was 10.2 to obtain a mixture. Next, this mixture was placed in a 200 L autoclave and reacted for 5 hours while maintaining the temperature at 110°C. After the reaction, the lid was opened and the slurry in the container was cooled to room temperature. Then, it was removed from the container and the solid component was separated from the slurry by filtration. This solid component was washed with 29% aqueous ammonia (aqueous solution of ammonium salt), and then dried (at 105°C for 24 hours) to obtain a powder. Analysis of the obtained powder using an X-ray diffractometer confirmed that the particles constituting the powder are crystalline titanium phosphate with the structural formula Ti(HPO4)2·H2O.

[0027] When the obtained powder was observed with a scanning electron microscope, it was confirmed that the particles constituting the powder were plate-shaped, and that many of them were hexagonal plate-shaped. Furthermore, using the same method as in No. 1, the volume D50% diameter and volume D50% thickness of the crystalline particles constituting the obtained powder were measured, and the volume D50% diameter was 1.11 μm, and the volume D50% thickness was 0.143 μm. Furthermore, calculations using the measured values ​​of volume D50% thickness and volume D50% diameter (1.11 / 0.143) showed that the aspect ratio of the crystalline particles constituting the obtained powder was 8.

[0028] <No.5> First, an aqueous solution of titanyl sulfate and an aqueous solution of phosphoric acid were mixed in a ratio [P] / [Ti] such that the molar concentration of phosphorus [P] to the molar concentration of titanium [Ti] was 6.9 to obtain a mixture. Next, this mixture was placed in a 1.4 L autoclave and reacted for 5 hours while maintaining the temperature at 120°C. After the reaction, the lid was opened and the slurry in the container was cooled to room temperature. Then, it was removed from the container and the solid component was separated from the slurry by filtration. This solid component was washed with water and then dried (at 105°C for 24 hours) to obtain a powder. Analysis of the obtained powder using an X-ray diffractometer confirmed that the particles constituting the powder are crystalline titanium phosphate with the structural formula Ti(HPO4)2·H2O.

[0029] When the obtained powder was observed with a scanning electron microscope, it was confirmed that the particles constituting the powder were plate-shaped, and that many of them were hexagonal plate-shaped. Furthermore, using the same method as in No. 1, the volume D50% diameter and volume D50% thickness of the crystalline particles constituting the obtained powder were measured, and the volume D50% diameter was 2.07 μm, and the volume D50% thickness was 0.302 μm. Furthermore, calculations using the measured values ​​of volume D50% thickness and volume D50% diameter (2.07 / 0.302) showed that the aspect ratio of the crystalline particles constituting the obtained powder was 7.

[0030] <No.6> First, an aqueous solution of titanyl sulfate and an aqueous solution of phosphoric acid were mixed in a ratio [P] / [Ti] such that the molar concentration of phosphorus [P] to the molar concentration of titanium [Ti] was 10.8 to obtain a mixture. Next, this mixture was placed in a 200 L autoclave and reacted for 5 hours while maintaining the temperature at 130°C. After the reaction, the lid was opened and the slurry in the container was cooled to room temperature. Then, it was removed from the container and the solid component was separated from the slurry by filtration. This solid component was washed with water and then dried (at 105°C for 24 hours) to obtain a powder. Analysis of the obtained powder using an X-ray diffractometer confirmed that the particles constituting the powder are crystalline titanium phosphate with the structural formula Ti(HPO4)2·H2O.

[0031] When the obtained powder was observed with a scanning electron microscope, it was confirmed that the particles constituting the powder were plate-shaped, and that many of them were hexagonal plate-shaped. Furthermore, using the same method as in No. 1, the volume D50% diameter and volume D50% thickness of the crystalline particles constituting the obtained powder were measured, and the volume D50% diameter was 7.44 μm, and the volume D50% thickness was 0.856 μm. Furthermore, calculations using the measured values ​​of volume D50% thickness and volume D50% diameter (7.44 / 0.856) showed that the aspect ratio of the crystalline particles constituting the obtained powder was 9.

[0032] <No.7> A commercially available titanium dioxide powder with a volume D50% diameter of 0.29 μm was prepared.

[0033] <No.8> A commercially available boron nitride powder with a volume D50% diameter of 9.94 μm was pulverized in a pot mill to obtain boron nitride powder with a volume D50% diameter of 4.24 μm and a volume D50% thickness of 0.395 μm. Calculations using the measured volume D50% thickness and volume D50% diameter (4.24 / 0.395) showed that the aspect ratio of the crystalline particles constituting this powder was 11.

[0034] <No.9> A commercially available boron nitride powder was prepared with a volume D50% diameter of 9.75 μm and a volume D50% thickness of 0.966 μm. The aspect ratio of the crystalline particles constituting this powder is 10(9.75 / 0.966).

[0035] <No.10> A commercially available boron nitride powder was prepared with a volume D50% diameter of 9.94 μm and a volume D50% thickness of 2.088 μm. The aspect ratio of the crystalline particles constituting this powder is 5 (9.94 / 2.088).

[0036] [Measurement of total light transmittance and haze] The total light transmittance and haze of each powder from No. 1 to No. 10 were measured using the following method. First, each powder and KP-545, an acrylic silicone film-forming agent manufactured by Shin-Etsu Chemical Co., Ltd. (film component: (acrylates / dimethicone) copolymer), were weighed in a mass ratio of powder:KP-545 = 10:90 and mixed in a homomixer to obtain a slurry of each powder. An appropriate amount of each slurry was taken onto a glass slide, coated to a film thickness of 25 μm, and dried to obtain test samples of each powder. Each test sample was subjected to a haze meter to measure the total light transmittance and haze.

[0037] [Checking the wrinkle blurring effect] As mentioned above, soft focus refers to the property of cosmetics that, when applied to the skin to form a cosmetic film, blur the skin's surface, making blemishes, freckles, pores, or fine wrinkles less visible. Therefore, in order to evaluate the soft focus properties of each powder from No. 1 to No. 10, 0.005g of each powder was placed on a 5cm square piece of black artificial leather and spread with a sponge. The wrinkle-blurring effect of each powder was then investigated by having 10 people visually observe the result.

[0038] Specifically, 10 people who viewed the product were asked to rate the wrinkle-blurring effect on a scale of 1 to 5 (5: very high, 4: high, 3: moderately high, 2: moderately low, 1: low). The total score was categorized as follows: "very high" if it was between 43 and 50 points, "high" if it was between 35 and 42 points, "moderately high" if it was between 27 and 34 points, "moderately low" if it was between 19 and 26 points, and "low" if it was between 10 and 18 points. These results, along with the composition of each powder, are shown in Table 1. Furthermore, the relationship between total light transmittance and haze for each powder is shown graphically in Figure 1. Additionally, for each titanium phosphate powder obtained in the examples, the relationship between volume D50% diameter and total light transmittance is shown in Figure 2, and the relationship between volume D50% diameter and haze is shown in Figure 3.

[0039] [Table 1]

[0040] From these results, we can conclude the following: The titanium phosphate powders No. 1 to No. 6, which consist of plate-like crystalline titanium phosphate particles, had a volume D50% diameter of 0.1 μm to 7.5 μm and an aspect ratio of 5 or more, and exhibited a total light transmittance of 85.1% to 91.4% and a haze of 59.3% to 95.3%. In other words, they satisfied both a total light transmittance of 85.0% or more and a haze of 59.0% or more.

[0041] Furthermore, among these, titanium phosphate powders No. 1 to No. 5, which had a volume D50% diameter of plate-like crystalline particles of 0.1 μm or more and an aspect ratio of 5 or more, had a total light transmittance of 85.1% or more and 90.3% or less, and a haze of 85.7% or more and 95.3% or less. In other words, they satisfied both the requirements of a total light transmittance of 85.0% or more and a haze of 85.0% or more. In contrast, titanium dioxide powder No. 7 had a high haze of 94.6%, but a low total light transmittance of 56.4% (below 60%). Boron nitride powders No. 8 to No. 10 had either a total light transmittance or haze of less than 80%, with boron nitride powder No. 10 having a particularly low haze of 50.8%.

[0042] Furthermore, regarding the wrinkle-blurring effect, we consider the following: Titanium phosphate powders No. 1 to No. 5, whose plate-like crystalline particles have a volume D50% diameter of 0.1 μm to 3.0 μm and an aspect ratio of 5 or more, satisfy both a total light transmittance of 85.0% or more and a haze of 85.0% or more, resulting in high transparency and wrinkle blurring effects. Among these, powders No. 2 and No. 3 showed particularly high wrinkle blurring effects. In other words, titanium phosphate powders No. 1 to No. 5 exhibited excellent properties as soft-focus fillers.

[0043] Titanium phosphate powder No. 6, with a volume D50% diameter of 7.44 μm and an aspect ratio of 9, had a high total light transmittance of 91.4%, resulting in high transparency. However, its haze was 59.3%, leading to a moderate evaluation of its wrinkle-blurring effect. In other words, titanium phosphate powder No. 6 was suitable for use as a soft-focus filler. Titanium dioxide powder No. 7, which is not plate-shaped crystal but has a volume D50% diameter of 0.29 μm, has a high haze of 94.6% but a low total light transmittance of 56.4%. As a result, the powder settles into the wrinkles of artificial leather, making the wrinkles more noticeable, and thus it was evaluated as having a low wrinkle-blurring effect. In other words, titanium dioxide powder No. 7 is not suitable for use as a soft-focus filler.

[0044] Boron nitride powder No. 8, with a volume D50% diameter of 4.24 μm and an aspect ratio of 11, had a high haze of 97.9%, but a relatively low total light transmittance of 74.6%. As a result, the powder settled into the wrinkles of the artificial leather, making the wrinkles more noticeable, and thus its wrinkle-blurring effect was evaluated as low. In other words, boron nitride powder No. 8 is not suitable for use as a soft-focus filler.

[0045] Boron nitride powders No. 9 and No. 10 had high transparency due to their high total light transmittance of 84.8% and 88.7%, and their high volume D50% diameter of 9.75 μm and 9.94 μm prevented the powder from getting into the wrinkles of the artificial leather. However, their haze was low at 79.0% and 50.8%, resulting in a somewhat low wrinkle blurring effect. In other words, boron nitride powders No. 9 and No. 10 are not very suitable for use as soft-focus fillers.

[0046] [Formulation of cosmetic compositions] When cosmetic compositions containing each of the No. 1 to No. 10 powders as white pigments were prepared, the titanium phosphate powders No. 1 to 5, titanium dioxide powder No. 7, and boron nitride powder No. 8, which had a haze content of 80% or more, showed a high soft-focus effect. However, among these, titanium dioxide powder No. 7 and boron nitride powder No. 8 had a total light transmittance of less than 80%, resulting in poor transparency. Furthermore, while the No. 6 titanium phosphate powder did not exhibit a particularly high soft-focus effect due to its haze content of slightly less than 60%, it had high transparency with a total light transmittance exceeding 91%. Furthermore, because the titanium phosphate powders No. 1 to 6 have a plate-like crystal structure (aspect ratio of 5 or more), the resulting cosmetic compositions also exhibited excellent lubricity.

Claims

1. It consists of a powder composed of plate-like crystalline titanium phosphate particles. The volume-based cumulative 50% primary particle diameter (volume D50% diameter) of the aforementioned plate-like crystalline particles is 0.53 μm or more and 3.0 μm or less. A soft-focus filler in which the aspect ratio, which is the value obtained by dividing the volume-based cumulative 50% primary particle diameter of the plate-like crystalline particles by the volume-based cumulative 50% thickness (volume D50% thickness), is between 5 and 8.

2. The soft focus filler according to claim 1, wherein the plate-like crystalline particles are hexagonal plate-like crystalline particles.

Citation Information

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