Printed Sunlight Exposure Sensor with Fluorescent Toner for Disposable / Single Use
A disposable sunlight exposure sensor using fluorescent toner printing on a substrate with a fading mechanism and scale, addresses the complexity and cost issues of existing sensors, offering a simple and affordable solution for outdoor use.
Patent Information
- Application Number
- JP2021196952
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-12-08
- Filing Date
- 2021-12-03
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2041-12-03
AI Technical Summary
Existing sunlight exposure sensors are complex, costly, and not suitable for easy, inexpensive use by outdoor workers or consumers, lacking simplicity and affordability.
A disposable sunlight exposure sensor using fluorescent toner printing on a substrate, with a fading mechanism correlating to sunlight exposure, accompanied by a scale for evaluation, which can be printed using office products and applied to various substrates, optionally coated for durability.
Provides a simple, inexpensive, and easy-to-use sunlight exposure sensor that indicates exposure levels through color change, suitable for outdoor use and adaptable to different substrates, with optional coatings for protection.
Smart Images

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Abstract
Description
[Background technology]
[0001] Disclosed herein is a disposable or single-use sunlight exposure sensor comprising: a substrate having an upper surface and a lower surface; a sunlight exposure sensing portion disposed on the upper surface of the substrate, the sunlight exposure sensing portion including a fluorescent toner image, the fluorescent toner image gradually fading when exposed to sunlight; a sunlight exposure scale disposed on the upper surface of the substrate, the sunlight exposure scale including an evaluation image for evaluating the amount of fading of the fluorescent toner image; an optional coating layer disposed on all or a portion of the upper surface of the substrate; and an optional backing layer disposed on all or a portion of the lower surface of the substrate.
[0002] Also disclosed is a process for preparing a sunlight exposure sensor, the process including: providing a substrate having an upper surface and a lower surface; disposing a sunlight exposure sensing portion on the upper surface of the substrate, the sunlight exposure sensing portion including a fluorescent toner image that gradually fades when exposed to sunlight; disposing a sunlight exposure scale on the upper surface of the substrate, the sunlight exposure scale including an evaluation image for evaluating the amount of fading of the fluorescent toner image; and optionally disposing a coating layer over all or a portion of the upper surface of the substrate; and optionally disposing a backing layer over all or a portion of the lower surface of the substrate.
[0003] Most currently available ultraviolet (UV) radiation sensors require high-tech, complex devices to operate, such as smartphones or wearable smart technology. Recently, single-use, disposable sunscreen sensors have been introduced to the market. One such sun exposure sensor, reported in the American Chemical Society (ACS), is created by inkjet printing titanium dioxide and food dye onto paper. When sufficient UV radiation hits the sensor, the titanium dioxide discolors the dye, alerting people to excessive sun exposure and warning them to avoid the sun or apply more sunscreen. See Khiabani, et al., "Paper-Based Sensor For Monitoring Sun Exposure," ACS Sens., 2016, 1, 775-780 (incorporated herein by reference in its entirety). Summary of the Invention [Problem to be solved by the invention]
[0004] While currently available sunlight exposure sensors may be suitable for their intended purposes, there is a need for improved sunlight exposure sensors, particularly for use by people who work outdoors or as consumer / safety products for people who enjoy spending time outdoors. Furthermore, there remains a need for improved sunlight exposure sensors that are simple to prepare, easy to use, and inexpensive.
[0005] The appropriate components and process aspects of each of the above U.S. patents and published patent applications may be selected for the present disclosure in its embodiments. Furthermore, throughout this application, various publications, patents, and published patent applications are referenced by specific citations. The disclosures of the publications, patents, and published patent applications referenced in this application are hereby incorporated by reference into this disclosure in order to more fully describe the state of the art to which this invention pertains.
[0006] Disclosed is a disposable or single-use sunlight exposure sensor comprising: a substrate having an upper surface and a lower surface; a sunlight exposure sensing portion disposed on the upper surface of the substrate, the sunlight exposure sensing portion including a fluorescent toner image, the fluorescent toner image gradually fading when exposed to sunlight; a sunlight exposure scale disposed on the upper surface of the substrate, the sunlight exposure scale including an evaluation image for evaluating the amount of fading of the fluorescent toner image; an optional coating layer disposed on all or a portion of the upper surface of the substrate; and an optional backing layer disposed on all or a portion of the lower surface of the substrate.
[0007] Also disclosed is a process for preparing a sunlight exposure sensor, the process including: providing a substrate having an upper surface and a lower surface; disposing a sunlight exposure sensing portion on the upper surface of the substrate, the sunlight exposure sensing portion including a fluorescent toner image that gradually fades when exposed to sunlight; disposing a sunlight exposure scale on the upper surface of the substrate, the sunlight exposure scale including an evaluation image for evaluating the amount of fading of the fluorescent toner image; and optionally disposing a coating layer over all or a portion of the upper surface of the substrate; and optionally disposing a backing layer over all or a portion of the lower surface of the substrate. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a diagram of a sunlight exposure sensor according to this embodiment.
[0009] [Figure 2] FIG. 2 is a diagram of an alternative embodiment of a sunlight exposure sensor according to the present invention.
[0010] [Figure 3] FIG. 3 is a diagram of an alternative embodiment of a sunlight exposure sensor according to the present invention.
[0011] [Figure 4] FIG. 4 is a diagram of color variations of different fluorescent prints according to this embodiment.
[0012] [Figure 5] FIG. 5 is a diagram of the complete range of sun exposure tests for degraded (top) and non-degraded (bottom) patches.
[0013] [Figure 6] FIG. 6 is a diagram of the complete range of sun exposure tests for three different toners that can be used to prepare sensors according to the present embodiments.
[0014] [Figure 7] FIG. 7 is a graph showing light exposure time (minutes) in G155 mode with fluorescent orange toner at 70° C., and color change correlates to percentage of daylight in Arizona.
[0015] [Figure 8] FIG. 8 is a diagram of a sunlight exposure sensor prepared according to this embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0016] A sunlight exposure sensor is provided that is easy to prepare, simple, and inexpensive. The entire sunlight exposure sensor can be printed in a single-pass print job using any office product capable of printing fluorescent toner kits, in embodiments using Xerox® printing technology such as Versant®, and in certain embodiments, Xerox® iGen® printing technology. The sunlight exposure sensor can be prepared with many media types and a variety of finishing operations can be applied to it. In embodiments, the sunlight exposure sensor is a single-use, disposable sunlight exposure sensor.
[0017] The single-use, disposable sunlight exposure sensor of the present invention is based on fluorescent toner printing. The sensor utilizes the fading mechanism of fluorescent printing due to fluorescent dye / colorant decomposition in direct sunlight. The bleaching rate correlates with light exposure intensity; that is, color saturation shifts as exposure time increases during lightfastness studies. The printed sensor described herein indicates to a person how much sunlight exposure they received while outdoors. Exposure can be correlated to, for example, Arizona daytime.
[0018] The printed sensors described herein are fabricated by printing fluorescent toner onto a substrate to form a solid image. Next to the image, a sunlight exposure scale is printed with a regular (non-fluorescent) colored toner that simulates the gradual fading of the fluorescent toner as sunlight exposure increases. The printed scale is sunlight-resistant. The sensor discolors when exposed to direct sunlight. The level of sunlight exposure is easily determined by comparing the faded sensor to the scale. In embodiments, the scale can be printed with a fade indicator from 0 to 8 that correlates to the percentage of daylight in Arizona. The sensors can be prepared in different colors and applied to various substrates according to customer / end-user preference. The substrate can be a disposable substrate such as an adhesive label, wristband, plastic, foil, fabric, etc. If desired, an overcoat can be applied to the sensor to make it water-resistant and scratch-resistant. The overcoat does not affect the sensor's functionality. The sensors provided in this manner are simple, easy to use, and very inexpensive.
[0019] In an embodiment, a disposable or single-use sunlight exposure sensor comprises a substrate having an upper surface and a lower surface; a sunlight exposure sensing portion disposed on the upper surface of the substrate, the sunlight exposure sensing portion including a fluorescent toner image that gradually fades when exposed to sunlight; a sunlight exposure scale disposed on the upper surface of the substrate, the sunlight exposure scale including an evaluation image for evaluating the amount of fading of the fluorescent toner image; an optional coating layer disposed over all or a portion of the upper surface of the substrate; and an optional backing layer disposed over all or a portion of the lower surface of the substrate.
[0020] The fluorescent toner image can be of any suitable or desired shape or configuration, hi embodiments, the fluorescent toner image comprises a solid print image in the shape of a rectangle, square, circle, or any other desired shape.
[0021] The sun exposure scale assessment image can be any suitable or desired image. In embodiments, the sun exposure scale includes a series of numbered shapes, e.g., circles from 0 to 8, each circle indicating a gradual fading equivalent to the fading of the fluorescent toner image with increasing sun exposure. In other embodiments, the sun exposure scale can include any suitable or desired image that can provide reference points for assessing the fading of the fluorescent image. For example, the sun exposure scale can be a printed image of gradual fading corresponding to the color loss of the fluorescent toner image with increasing sun exposure. The sun exposure scale can include several discrete reference points or can be a gradual fading image.
[0022] FIG. 1 shows a side view of one possible embodiment of a sunlight exposure sensor according to the present embodiments. The sunlight exposure sensor 100 shown in FIG. 1 includes a substrate 112 having an upper surface 114 and a lower surface 116. A fluorescent toner image 118 for sensing sunlight exposure is disposed on the upper surface 114 of the substrate 112. A sunlight exposure scale / non-fading evaluation image 120 is disposed on the upper surface 114 of the substrate 112 adjacent to the fluorescent toner image 118. A coating layer 122 is optionally disposed on the upper surface 114 of the substrate 112, covering the fluorescent toner image 118 and the evaluation image 120. The coating layer 112 may be a clear coating. In an embodiment, the coating layer is a water-resistant overcoat layer. In an embodiment, the coating layer is an abrasion-resistant overcoat layer. In an embodiment, the overcoat layer is a water-resistant and abrasion-resistant overcoat layer. Any suitable or desired coating layer can be selected. Suitable coating layers include acrylic coatings known in the art. Suitable coatings can include, for example, KRYLON®, Plutonium™ Clear Coat Gloss Spray, Rust-Oleum® Spray Paint, and Aleene® Spray Gloss Finish Acrylic Sealer.
[0023] An optional adhesive layer 124 is disposed on the lower surface 116 of the substrate 112. The optional adhesive layer can be any suitable or desired material, including an adhesive, a hook-and-loop closure type material, or other means for adhering the sensor to a surface. The adhesive can be any of a wide variety of readily available adhesives, including adhesives commonly used in the medical industry. In embodiments, a backing layer is present and includes a hook-and-loop layer, an adhesive layer, a gel pad, and combinations thereof.
[0024] In embodiments, no adhesive layer is present, and the substrate itself comprises a wearable article such as a wristband, a garment, or other substrate, including those described herein. Optionally, a backing layer 126 is disposed over all or a portion of the lower surface 116 of the substrate 112. Alternatively, in embodiments in which an adhesive layer is present, the backing layer 126 is disposed over all or a portion of the adhesive layer 124. The backing layer can be any suitable or desired layer that covers the bottom of the substrate or adhesive layer. In embodiments, the backing layer comprises a cellulose or plastic layer that can be peeled from the adhesive layer 124 immediately prior to use.
[0025] FIG. 2 shows a top view of a sensor according to this embodiment. The sensor 200 shown in FIG. 2 includes a substrate 210. A fluorescent toner image 212 is printed on the substrate 210. A sun exposure scale / rating image 214 is printed with regular, non-fluorescent toner on the substrate 210 adjacent to the fluorescent toner image 212. An optional coating layer, not shown, can be disposed over the fluorescent toner image and the rating image to cover all or part of the substrate surface. An optional adhesive and backing layer, not shown, can be disposed on the substrate surface opposite the sensor printing surface.
[0026] In an embodiment, a sunlight exposure sensor may include two components: a first substrate having an upper surface and a lower surface; a sunlight exposure sensing portion disposed on the upper surface of the first substrate, the sunlight exposure sensing portion including a fluorescent toner image that gradually fades when exposed to sunlight; a second substrate having an upper surface and a lower surface; a sunlight exposure scale disposed on the upper surface of the second substrate, the sunlight exposure scale including an evaluation image for evaluating the amount of fading of the fluorescent toner image; an optional coating layer disposed on all or a portion of the upper surface of the first substrate; an optional coating layer disposed on all or a portion of the upper surface of the second substrate; an optional backing layer disposed on all or a portion of the lower surface of the first substrate; and an optional backing layer disposed on all or a portion of the lower surface of the second substrate.
[0027] FIG. 3 shows a top view of a sensor according to this embodiment, in which a sunlight exposure sensing portion including a fluorescent toner image is disposed on a first substrate and a sunlight exposure scale evaluation image is disposed on a second, separate substrate. The sensor 300 shown in FIG. 3 includes a substrate 310 including a fluorescent toner image 312 printed thereon. A sunlight exposure scale / evaluation image 316 is printed with regular, non-fluorescent toner on a separate substrate 314. The materials comprising the substrate 310 and the sub-condition 314 can be the same or different. In this embodiment, the sunlight exposure sensing portion including the substrate 310 with the printed fluorescent toner image 310 can be worn or placed on a sun-exposed surface, while the evaluation portion including the printed scale 316 on the substrate 314 can be carried separately in a wallet, pocket, or other location that can be accessed as needed to compare the fading of the scale evaluation image 316 and the fluorescent toner image 312. In this embodiment, the sunlight exposure sensor portion being separate from the evaluation portion allows for a smaller overall sunlight exposure sensor.
[0028] The fluorescent toner image forming the sunlight exposure sensor portion can be prepared using any suitable or desired fluorescent toner. In embodiments, the fluorescent toner image of the sunlight exposure sensor portion is printed with a fluorescent toner covering a reflectance spectrum from 400 nm to 700 nm. In embodiments, the fluorescent toner image of the sunlight exposure sensor portion is printed with a fluorescent toner selected from the group consisting of yellow fluorescent toner, magenta fluorescent toner, orange fluorescent toner, pink toner, green fluorescent toner, red fluorescent toner, blue fluorescent toner, and combinations thereof.
[0029] In a particular embodiment, the fluorescent toner image of the sunlight exposure sensitive portion is printed with fluorescent yellow toner.
[0030] In certain embodiments, the fluorescent toner selected is a high visibility fluorescent yellow toner as described in U.S. Patent Application No. 16 / 676,971, the entire contents of which are incorporated herein by reference. Accordingly, in one particular embodiment, the fluorescent toner image of the sunlight exposure sensing portion is a fluorescent yellow toner comprising a core comprising a first Solvent Yellow 160-doped amorphous polyester, a second Solvent Yellow 160-doped amorphous polyester, and a crystalline polyester, wherein the first amorphous polyester and the second amorphous polyester are different, and a shell disposed on the core, the shell comprising at least one amorphous polyester, wherein the toner has an L of greater than 90. * Values of approximately -40 to approximately -20 * value, and b above 75 * The image is printed with fluorescent yellow toner, providing a printed image with a value.
[0031] The fluorescent toner selected for the sensors described herein can include a resin, a fluorescent colorant, an optional wax, and other optional toner additives. The toner may optionally include a core-shell configuration. The toner resin includes a combination of an amorphous resin and a crystalline resin. In embodiments, the toner includes a core-shell configuration, where the core includes a combination of an amorphous polyester and a crystalline polyester, and the shell includes at least one amorphous polyester. In embodiments, the toner includes a core-shell configuration, as described in U.S. Patent Application No. 16 / 676,971, where the core includes a combination of first and second Solvent Yellow 160-added amorphous resins and a crystalline polyester (a crystalline resin not added with Solvent Yellow 160), and the shell includes at least one amorphous polyester.
[0032] crystalline resin
[0033] The toner herein may include a crystalline resin. The crystalline resin herein may be a polyester resin formed by reacting a diol with a diacid in the presence of an optional catalyst. Suitable organic diols for forming the crystalline polyester include aliphatic diols having from about 2 to about 36 carbon atoms, such as 1,2-ethanediol, 1,3-propanediol, 1,4-butanediol, 1,5-pentanediol, 2,2-dimethylpropane-1,3-diol, 1,6-hexanediol, 1,7-heptanediol, 1,8-octanediol, 1,9-nonanediol, 1,10-decanediol, 1,12-dodecanediol, and combinations thereof, including structural isomers. The aliphatic diol can be selected in an amount of, for example, about 40 to about 60 mole percent of the resin, about 42 to about 55 mole percent of the resin, or about 45 to about 53 mole percent of the resin, and the second diol can be selected in an amount of about 0 to about 10 mole percent of the resin, or about 1 to 4 mole percent of the resin.
[0034] Examples of organic diacids or diesters, including vinyl diacids or vinyl diesters, selected for preparing crystalline resins include oxalic acid, succinic acid, glutaric acid, adipic acid, suberic acid, azelaic acid, sebacic acid, fumaric acid, dimethyl fumarate, dimethyl itaconate, cis-1,4-diacetoxy-2-butene, diethyl fumarate, diethyl maleate, phthalic acid, isophthalic acid, terephthalic acid, naphthalene-2,6-dicarboxylic acid, naphthalene-2,7-dicarboxylic acid, cyclohexanedicarboxylic acid, malonic acid, and mesaconic acid, as well as their diesters or anhydrides. The organic diacid may be selected in an amount of, for example, about 40 to about 60 mole percent of the resin, about 42 to about 52 mole percent of the resin, or about 45 to about 50 mole percent of the resin, and the second diacid may be selected in an amount of about 0 to about 10 mole percent of the resin.
[0035] Polycondensation catalysts that can be utilized to form crystalline (as well as amorphous) polyesters include tetraalkyl titanates, dialkyl tin oxides such as dibutyltin oxide, tetraalkyl tins such as dibutyltin dilaurate, and dialkyl tin oxide hydroxides such as butyltin oxide hydroxide, aluminum alkoxides, alkyl zincs, dialkyl zincs, zinc oxide, stannous oxide, or combinations thereof. Such catalysts can be utilized, for example, in amounts of about 0.01 mole percent to about 5 mole percent based on the starting diacid or diester used to produce the polyester resin.
[0036] Examples of the crystalline resin include polyester, polyamide, polyimide, polyolefin, polyethylene, polybutylene, polyisobutyrate, ethylene-propylene copolymer, ethylene-vinyl acetate copolymer, polypropylene, and mixtures thereof. Specific crystalline resins include poly(ethylene adipate), poly(propylene adipate), poly(butylene adipate), poly(pentylene adipate), poly(hexylene adipate), poly(octylene adipate), poly(ethylene succinate), poly(propylene succinate), poly(butylene succinate), poly(pentylene succinate), poly(hexylene succinate), poly(octylene succinate), poly(ethylene sebacate), poly(propylene sebacate), poly(butylene sebacate), poly(pentylene sebacate), poly(hexylene sebacate), poly(octylene sebacate), The polymer may be based on polyesters such as poly(ethylene decanoate), poly(ethylene dodecanoate), poly(nonylene sebacate), poly(nonylene decanoate), copoly(ethylene fumarate)-copoly(ethylene sebacate), copoly(ethylene fumarate)-copoly(ethylene decanoate), copoly(ethylene fumarate)-copoly(ethylene dodecanoate), copoly(ethylene fumarate)-copoly(ethylene dodecanoate), copoly(2,2-dimethylpropane-1,3-diol-decanoate)-copoly(nonylene decanoate), poly(octylene adipate), and mixtures thereof. Examples of polyamides include poly(ethylene-adipamide), poly(propylene-adipamide), poly(butylene-adipamide), poly(pentylene-adipamide), poly(hexylene-adipamide), poly(octylene-adipamide), poly(ethylene-succinimide), poly(propylene-sebacamide), and mixtures thereof.Examples of polyimides include poly(ethylene-adipimide), poly(propylene-adipimide), poly(butylene-adipimide), poly(pentylene-adipimide), poly(hexylene-adipimide), poly(octylene-adipimide), poly(ethylene-succinimide), poly(propylene-succinimide), poly(butylene-succinimide), and mixtures thereof.
[0037] In embodiments, the crystalline polyester is of the formula: [ka]
[0038] Each of a and b may range from 1 to 12, from 2 to 12, or from 4 to 12, and further, p may range from 10 to 100, from 20 to 80, or from 30 to 60. In embodiments, the crystalline polyester is poly(1,6-hexylene-1,12-dodecanoate), which may be produced by the reaction of dodecanedioic acid with 1,6-hexanediol.
[0039] The designations "CX:CY," "CX:Y," "X:Y," and "X:Y" and their variations, as used herein, refer to crystalline resins, where C is carbon, X is a positive, non-zero integer specifying the number of methylene groups in the acid / ester monomers used to form the crystalline polyester (CPE), and Y is a positive, non-zero integer specifying the number of methylene groups in the alcohol monomers used to form the CPE. Thus, for example, C10 can represent, for example, dodecanedioic acid, and C6 can represent, for example, hexanediol. X and Y are each 10 or less. In embodiments, the sum of X and Y is 16 or less. In certain embodiments, the sum of X and Y is 14 or less.
[0040] In embodiments, the crystalline polyester is a C10:9 resin, which comprises a polyester made from dodecanedioic acid (C10) and 1,9-nonanediol (C9).
[0041] As noted above, crystalline polyesters can be prepared by a polycondensation process by reacting a suitable organic diol with a suitable organic diacid in the presence of a polycondensation catalyst. A stoichiometric equimolar ratio of the organic diol to the organic diacid can be used; however, if the organic diol has a boiling point of about 180°C to about 230°C, an excess of a diol, such as about 0.2 to 1 molar equivalent of ethylene glycol or propylene glycol, can be used and removed by distillation during the polycondensation process. The amount of catalyst used can vary and can be selected, for example, from about 0.01 to about 1 or from about 0.1 to about 0.75 mole percent of the crystalline polyester resin.
[0042] The crystalline resin may be present in any suitable or desired amount. In embodiments, the crystalline resin may be present in an amount of, for example, from about 1 to about 85% by weight of the toner, from about 5 to about 50% by weight of the toner, or from about 10 to about 35% by weight of the toner.
[0043] The crystalline resin may have various melting points, such as about 30°C to about 120°C, about 50°C to about 90°C, or about 60°C to about 80°C. The crystalline resin may have a number average molecular weight (Mn) of, for example, about 1,000 to about 50,000, about 2,000 to about 25,000, or about 5,000 to about 20,000, as measured by gel permeation chromatography (GPC), and a weight average molecular weight (Mw) of, for example, about 2,000 to about 100,000, about 3,000 to about 80,000, or about 10,000 to about 30,000, as determined by GPC. The molecular weight distribution (Mw / Mn) of the crystalline resin may be, for example, about 2 to about 6, about 3 to about 15, about 5, or about 2 to about 4.
[0044] Amorphous resin
[0045] The toner herein can be an amorphous resin. The amorphous resin can be an amorphous polyester resin formed by reacting a diol with a dibasic acid in the presence of an optional catalyst. Examples of diacids or diesters, including vinyl diacids or vinyl diesters, that can be used to prepare the amorphous polyester include terephthalic acid, phthalic acid, isophthalic acid, fumaric acid, trimellitic acid, dimethyl fumarate, dimethyl itaconate, cis-1,4-diacetoxy-2-butene, diethyl fumarate, diethyl maleate, maleic acid, succinic acid, itaconic acid, succinic acid, succinic anhydride, dodecyl succinic acid, dodecyl succinic anhydride, glutaric acid, glutaric anhydride, Examples of suitable dicarboxylic acids or diesters include adipic acid, pimelic acid, suberic acid, azelaic acid, dodecanedioic acid, dimethyl terephthalate, diethyl terephthalate, dimethyl isophthalate, diethyl isophthalate, dimethyl phthalate, phthalic anhydride, diethyl phthalate, dimethyl succinate, dimethyl fumarate, dimethyl maleate, dimethyl glutarate, dimethyl adipate, dimethyl dodecyl succinate, and combinations thereof. The organic dibasic acid or diester may be present in an amount of, for example, about 40 to about 60 mole percent of the resin, about 42 to about 52 mole percent of the resin, or about 45 to about 50 mole percent of the resin.
[0046] Examples of diols that can be utilized in producing amorphous polyesters include 1,2-propanediol, 1,3-propanediol, 1,2-butanediol, 1,3-butanediol, 1,4-butanediol, pentanediol, hexanediol, 2,2-dimethylpropanediol, 2,2,3-trimethylhexanediol, heptanediol, dodecanediol, bis(hydroxyethyl)-bisphenol A, bis(2-hydroxypropyl)-bisphenol A, 1,4-cyclohexanedimethanol, 1,3-cyclohexanedimethanol, xylene dimethanol, cyclohexanediol, diethylene glycol, bis(2-hydroxyethyl)oxide, dipropylene glycol, dibutylene, and combinations thereof. The amount of organic diol selected can vary; for example, the organic diol can be present in an amount of about 40 to about 60 mole percent of the resin, about 42 to about 55 mole percent of the resin, or about 45 to about 53 mole percent of the resin.
[0047] Examples of suitable amorphous resins include polyesters, polyamides, polyimides, polyolefins, polyethylene, polybutylene, polyisobutyrate, ethylene-propylene copolymers, ethylene-vinyl acetate copolymers, polypropylene, and the like, and mixtures thereof.
[0048] Unsaturated amorphous polyester resins may be utilized as the resin. Examples of such resins include those disclosed in U.S. Patent No. 6,063,827, the disclosure of which is incorporated herein by reference in its entirety. Exemplary unsaturated amorphous polyester resins include, but are not limited to, poly(propoxylated bisphenol co-fumarates), poly(ethoxylated bisphenol co-fumarates), poly(butyloxylated bisphenol co-fumarates), poly(copropoxylated bisphenol co-ethoxylated bisphenol co-fumarates), poly(1,2-propylene fumarate), poly(propoxylated bisphenol co-maleates), poly(ethoxylated bisphenol co-maleates), poly(butyloxylated bisphenol co-maleate), poly(copropoxylated bisphenol co-ethoxylated bisphenol co-maleate), poly(1,2-propylene maleate), poly(propoxylated bisphenol co-itaconate), poly(ethoxylated bisphenol co-itaconate), poly(butyloxylated bisphenol co-itaconate), poly(copropoxylated bisphenol co-ethoxylated bisphenol co-itaconate), poly(1,2-propylene itaconate), and combinations thereof.
[0049] Suitable polyester resins may be amorphous polyesters such as poly(propoxylated bisphenol A co-fumarate) resins. Examples of such resins and processes for their manufacture include those disclosed in U.S. Patent No. 6,063,827, the disclosure of which is incorporated herein by reference in its entirety.
[0050] Suitable polyester resins include amorphous acid polyester resins. The amorphous acid polyester resins may be based on any combination of propoxylated bisphenol A, ethoxylated bisphenol A, terephthalic acid, fumaric acid, and dodecenyl succinic anhydride, such as poly(propoxylated bisphenol-co-terephthalate-fumarate-dodecenyl succinate). Another amorphous acid polyester resin that can be used is poly(propoxylate-ethoxylated bisphenol-co-terephthalate-dodecenyl succinic acid-trimellitic anhydride).
[0051] An example of a linear propoxylated bisphenol A fumarate resin that can be used as the resin is available under the trade name SPAM II from Resana S / A Industrias Quimicas, Sao Paulo, Brazil. Other commercially available propoxylated bisphenol A fumarate resins that can be used include GTUF and FPESL-2 from Kao Corporation, Japan, and EM181635 from Reichhold, Research Triangle Park, NC.
[0052] The crystalline resin or combination of crystalline resins may be present in an amount of, for example, from about 5 to about 95% by weight of the toner, from about 30 to about 90% by weight of the toner, or from about 35 to about 85% by weight of the toner.
[0053] The amorphous resin or combination of amorphous resins may have a glass transition temperature of about 30°C to about 80°C, about 35°C to about 70°C, or about 40°C to about 65°C. The glass transition temperature may be measured using differential scanning calorimetry (DSC). The amorphous resin may have an Mn of, for example, about 1,000 to about 50,000, about 2,000 to about 25,000, or about 1,000 to about 10,000, as measured by GPC, and an Mw of, for example, about 2,000 to about 100,000, about 5,000 to about 90,000, about 10,000 to about 90,000, about 10,000 to about 30,000, or about 70,000 to about 100,000, as determined by GPC.
[0054] One, two, or more resins may be used. When two or more resins are used, the resins may be in any suitable ratio (e.g., weight ratio), such as, for example, about 1% (first resin) / 99% (second resin) to about 99% (first resin) / 1% (second resin), or about 10% (first resin) / 90% (second resin) to about 90% (first resin) / 10% (second resin). When the resin includes a combination of an amorphous resin and a crystalline resin, the resins may be in a weight ratio, for example, about 1% (crystalline resin) / 99% (amorphous resin) to about 99% (crystalline resin) / 1% (amorphous resin), or about 10% (crystalline resin) / 90% (amorphous resin) to about 90% (crystalline resin) / 10% (amorphous resin). In some embodiments, the weight ratio of the resins is about 80% to about 60% amorphous resin and about 20% to about 40% crystalline resin, In such embodiments, the amorphous resin may be a combination of amorphous resins, for example, a combination of two amorphous resins.
[0055] fluorescent toner
[0056] In certain embodiments, the amorphous resin comprises a Solvent Yellow 160 loaded amorphous resin, such as that described in US Patent Application No. 16 / 676,971.
[0057] In a particular embodiment, the fluorescent yellow toner comprises a core comprising a first Solvent Yellow 160-doped amorphous polyester, a second Solvent Yellow 160-doped amorphous polyester, and a crystalline polyester, wherein the first amorphous polyester and the second amorphous polyester are different, and a shell disposed on the core, the shell comprising at least one amorphous polyester, wherein the toner has an L of greater than 90 as described in U.S. patent application Ser. No. 16 / 676,971. * Values of approximately -40 to approximately -20 * value, and b above 75 *The fluorescent yellow toner, when combined with the amorphous polyester, provides a printed image with a specific inherent L * a * b * The toner provides a coordinated color. The colorant can be Solvent Yellow 160 and derivatives thereof. In embodiments, the colorant is selected from the group consisting of Solvent Yellow 160, Solvent Yellow 160:1, and combinations thereof. In a specific embodiment, the colorant is Solvent Yellow 160. In a specific embodiment, the colorant is Solvent Yellow 160:1. The fluorescent yellow colorant is combined with a first amorphous polyester in a latex containing the fluorescent yellow colorant and the first amorphous polyester, and the latex is then used to form a toner. The fluorescent yellow colorant is combined with a second amorphous polyester in a latex containing the fluorescent yellow colorant and the second amorphous polyester, and the latex is then used to form a toner.
[0058] Non-fluorescent toner
[0059] The conventional non-fluorescent toner used to prepare the scale portion of the sensor of the present invention can be any suitable or desired toner. The toner may optionally have a core-shell configuration. The toner may comprise a resin or combination of resins, including those described above for the fluorescent toner.
[0060] Colorants selected for conventional non-fluorescent toners according to the present disclosure include pigments, dyes, mixtures of pigments and dyes, mixtures of pigments, mixtures of dyes, etc. The colorant may be, for example, carbon black, cyan, yellow, magenta, red, orange, brown, green, blue, violet, or mixtures thereof.
[0061] In embodiments where the colorant is a pigment, the pigment may be, for example, carbon black, phthalocyanine, quinacridone or Rhodamine B™ type, red, green, orange, brown, violet, yellow, or the like.
[0062] Toner Preparation
[0063] Fluorescent toners and conventional non-fluorescent toners can be formed by any suitable or desired method known in the art. In embodiments, any of the resins described above may be provided as an emulsion, for example, by using a solvent-based phase inversion emulsification process. The emulsion can then be utilized as a raw material to form a toner, for example, by using an emulsion aggregation and coalescence (EA) process.
[0064] wax
[0065] Optionally, waxes may also be combined with fluorescent or non-fluorescent colorants and resins to form toner particles. The wax may be provided in a wax dispersion, which may include a single type of wax or a mixture of two or more different waxes. For example, a single wax may be added to improve a particular toner property, such as toner particle shape, the presence and amount of wax on the toner particle surface, charging and / or fusing properties, gloss, stripping, offset properties, etc. Alternatively, a combination of waxes may be added to provide multiple properties to the toner composition.
[0066] If a wax is included, the wax may be present in an amount of, for example, from about 1% to about 25% by weight of the toner, or from about 5% to about 20% by weight of the toner.
[0067] Waxes that can be selected include, for example, waxes having an average molecular weight of about 500 to about 20,000, or about 1,000 to about 10,000. Waxes that can be used include, for example, polyethylenes, including linear polyethylene waxes and branched polyethylene waxes, polypropylenes, including linear polypropylene waxes and branched polypropylene waxes, polymethylene waxes, polyethylene / amides, polyethylene tetrafluoroethylene, polyethylene tetrafluoroethylene / amides, and polybutene waxes, such as POLYWAX™ polyethylene waxes, available from Baker Petrolite, wax emulsions available from Michaelman, Inc. and Daniels Products Company, EPOLENE N-15™, available from Eastman Chemical Products, Inc., and Sanyo Kasei KKVISCOL 550-P™, a low weight average molecular weight polypropylene available from VISCOL, vegetable waxes such as carnauba wax, rice wax, candelilla wax, sumac wax, and jojoba oil; animal waxes such as beeswax; microcrystalline waxes such as montan wax, ozokerite, ceresin, paraffin wax, and waxes derived from the distillation of crude oil; mineral and petroleum waxes such as silicone wax, mercapto wax, polyester wax, and urethane wax; modified polyolefin waxes (such as carboxylic acid-terminated polyethylene wax or carboxylic acid-terminated polypropylene wax); Fischer-Tropsch wax; higher fatty acid and higher alcohol waxes such as stearyl stearate and behenyl behenate. ester waxes obtained from higher fatty acids and monohydric or polyhydric lower alcohols such as butyl stearate, propyl oleate, glyceride monostearate, glyceride distearate, and pentaerythritol tetrabehenate; ester waxes obtained from higher fatty acids and polyhydric alcohol multimers such as diethylene glycol monostearate, dipropylene glycol distearate, diglyceryl distearate, and triglyceryl tetrastearate; sorbitan higher fatty acid ester waxes such as sorbitan monostearate; and cholesterol higher fatty acid ester waxes such as cholesteryl stearate. Examples of functionalized waxes that can be used include, for example, amines, amides, such as AQUA SUPERSLIP 6550™, SUPERSLIP 6530™ available from Micro Powder Inc., fluorinated waxes, such as POLYFLUO 190™, POLYFLUO 200™, POLYSILK 9™, POLYSILK 14™ available from Micro Powder Inc., mixed fluorinated amide waxes such as aliphatic polar amide functionalized waxes, esters of hydroxylated unsaturated fatty acids, such as POLYSILK 14™, also available from Micro Powder Inc.Examples of suitable waxes include MICROSPERSION 19™, available from SC Johnson Wax; imide, ester, quaternary amine, carboxylic acid, or acrylic polymer emulsions, such as JONCRYL 74™, 89™, 130™, 537™, and 538™, all available from SC Johnson Wax; and chlorinated polypropylene and polyethylene, available from Allied Chemical and Petrolite Corporation and SC Johnson Wax. Mixtures and combinations of the foregoing waxes may also be used in embodiments. Waxes may be included, for example, as fuser roll release agents. In embodiments, the wax may be crystalline or amorphous.
[0068] In embodiments, the wax may be incorporated into the toner in the form of one or more aqueous dispersions of solid waxes in water, and the particle size of the solid waxes may range from about 100 to about 300 nanometers (nm).
[0069] In embodiments, the toner of the present invention is prepared by an emulsion aggregation (EA) process, for example, a process comprising aggregating a mixture of one or more emulsions, each emulsion comprising a resin, a fluorescent or non-fluorescent colorant, and optionally a wax, and then combining the mixtures. In embodiments, the crystalline polyester is provided in a separate emulsion. In embodiments, the crystalline polyester comprises a C10:C9 polyester.
[0070] In embodiments, the process herein includes combining one or more amorphous polyesters, water, and a fluorescent or non-fluorescent colorant to prepare a latex, optionally adding an aggregating agent to the latex, heating the latex to form aggregate particles, adding a shell resin to the aggregated toner particles, the shell optionally comprising at least one amorphous polyester, heating to coalesce the particles to form coalesced toner particles, and collecting the coalesced toner particles.
[0071] The mixture may be homogenized, which may be achieved by any suitable or desired process, such as by mixing at about 600 to about 6,000 revolutions per minute. Homogenization may be achieved by any suitable means, including, for example, using an IKA ULTRA TURRAX TSO probe homogenizer.
[0072] Any suitable flocculant may be utilized in the process. Suitable flocculants may include, for example, an aqueous solution of a divalent agent, such as a polyaluminum halide, e.g., polyaluminum chloride (PAC), or an inorganic cationic flocculant, e.g., the corresponding bromide, fluoride, or iodide; a polyaluminum silicate, e.g., polyaluminum sulfosilicate (PASS); or a water-soluble metal salt, including aluminum chloride, aluminum nitrite, aluminum sulfate, potassium aluminum sulfate, calcium acetate, calcium chloride, calcium nitrite, calcium oxyacid, calcium sulfate, magnesium acetate, magnesium nitrate, magnesium sulfate, zinc acetate, zinc nitrate, zinc sulfate, zinc chloride, zinc bromide, magnesium bromide, copper chloride, and copper sulfate, or a combination thereof. The flocculant may be selected from a group consisting of an aqueous solution of a divalent agent, a polyaluminum halide, a polyaluminum chloride (PAC), a polyaluminum silicate, a polyaluminum sulfosilicate (PASS), a polyaluminum silicate, a polyaluminum chloride (PASS), a polyaluminum silicate, ... g The flocculant may be added to the mixture at a temperature below 100°C. The flocculant may be added to the mixture under homogenization.
[0073] The flocculant may be added to the mixture in any suitable or desired amount, in embodiments, for example, from about 0% to about 10% by weight of the resin, from about 0.2% to about 8% by weight of the resin, or from about 0.5% to about 5% by weight of the resin.
[0074] The particles of the mixture may be aggregated until a predetermined desired particle size is achieved. The predetermined desired size refers to the desired particle size as determined prior to formation, and the particle size is monitored during the growth process until such particle size is reached. Samples may be taken during the growth process and analyzed for volume average particle size, for example, with a Coulter Counter. Thus, aggregation may proceed by maintaining an elevated temperature, or by maintaining the temperature, for example, in embodiments, from about 30°C to about 100°C, in embodiments from about 30°C to about 80°C, or in embodiments, from about 30°C to about 50°C. The temperature may be maintained with stirring for a period of about 0.5 hours to about 6 hours, or in embodiments, from about 1 hour to about 5 hours, to provide aggregated particles. Once the predetermined desired particle size is reached, a shell may be added. The volume average particle size of the particles before application of the shell may be, for example, from about 3 micrometers (μm) to about 10 μm, in embodiments, from about 4 μm to about 9 μm, or from about 6 μm to about 8 μm.
[0075] Shell Resin
[0076] In an embodiment, after aggregation but before coalescence, a resin coating may be applied to the aggregated particles to form a shell thereon. Any of the resins described above may be utilized in the shell. In an embodiment, an amorphous polyester resin is utilized in the shell. In an embodiment, the shell comprises a first amorphous polyester and a second amorphous polyester. In an embodiment, the shell comprises a first amorphous polyester and a second amorphous polyester, and no other resins. In an embodiment, two amorphous polyester resins are utilized in the shell, for example, in substantially equal amounts. In an embodiment, a crystalline polyester resin and two different types of amorphous polyester resins are utilized in the core, and the same two types of amorphous polyester resins are utilized in the shell.
[0077] In certain embodiments, the shell comprises a first amorphous polyester comprising poly(propoxylated bisphenol-co-terephthalate-fumarate-dodecenyl succinate) and a second amorphous polyester comprising poly(propoxylated-ethoxylated bisphenol-co-terephthalate-dodecenyl succinate-trimellitic anhydride).
[0078] The shell may be applied to the aggregated particles by using a shell resin in the form of an emulsion, as described above. Such an emulsion may be combined with the aggregated particles under conditions sufficient to form a coating on the aggregated particles. For example, formation of the shell on the aggregated particles may occur while heating to a temperature of about 30°C to about 80°C, or about 35°C to about 70°C. Shell formation may occur over a period of about 5 minutes to about 10 hours, or about 10 minutes to about 5 hours.
[0079] Once the desired toner particle size is achieved, the pH of the mixture may be adjusted with a pH control agent, using a base, to a value of from about 3 to about 10, or in embodiments, from about 5 to about 9. The pH adjustment may be used to freeze to stop toner growth. The base used to stop toner growth may include any suitable base, such as an alkali metal hydroxide, such as sodium hydroxide, potassium hydroxide, ammonium hydroxide, or combinations thereof. In embodiments, a chelating agent, such as ethylenediaminetetraacetic acid (EDTA), may be added to assist in adjusting the pH to the desired value. Other chelating agents may also be used.
[0080] In embodiments, the size of the core-shell toner particles (before coalescence) may be from about 3 μm to about 10 μm, from about 4 μm to about 10 μm, or from about 6 μm to about 9 μm.
[0081] Combine
[0082] Following aggregation to the desired particle size and optional application of a shell, the particles may then be coalesced into the desired final shape, for example, by heating the mixture to a temperature of about 45°C to about 150°C, about 55°C to about 99°C, or about 60°C to about 90°C (which may be above the glass transition temperature of the resin used to form the toner particles). Heating may be continued, or the pH of the mixture may be adjusted (e.g., reduced) over a period of time to achieve the desired circularity. This period may be about 1 hour to about 5 hours, or about 2 hours to about 4 hours. Various buffers may be used during coalescence. The total duration of coalescence may be about 1 hour to about 9 hours, about 1 hour to about 8 hours, or about 1 hour to about 5 hours. Agitation may be used during coalescence, for example, at about 20 rpm to about 1000 rpm, or about 30 rpm to about 800 rpm.
[0083] After aggregation and / or coalescence, the mixture may be cooled to room temperature. Cooling may be rapid or slow, as desired. A suitable cooling process may include introducing cold water into a jacket around the reactor. After cooling, the toner particles may be sieved through a sieve of the desired size, filtered, washed with water, and then dried. Drying may be accomplished by any suitable drying process, including, for example, freeze-drying.
[0084] Other additives
[0085] In embodiments, the toner of the present invention may also contain other optional additives. For example, the toner may include a positive or negative charge control agent. Surface additives may also be used. Examples of surface additives include metal oxides such as titanium oxide, silicon oxide, aluminum oxide, cerium oxide, tin oxide, and mixtures thereof; metal salts of fatty acids such as AEROSIL®, zinc stearate, calcium stearate, and magnesium stearate, and mixtures thereof; long-chain alcohols such as UNILIN® 700; and mixtures thereof.
[0086] These surface additives may be present in amounts of from about 0.1% to about 5% by weight of the toner, or from about 0.25% to about 3% by weight of the toner. In embodiments, the toner may include, for example, from about 0.1% to about 5% by weight of the toner titania, from about 0.1% to about 8% by weight of the toner silica, from about 0.1% to about 5% by weight of the toner colloidal silica, from about 0.05% to about 4% by weight of the toner zinc stearate, and from about 0.1% to about 4% by weight of the toner cerium oxide.
[0087] Developer and carrier
[0088] The toner of the present invention may be formulated into a developer composition. The developer composition can be prepared by mixing the toner of the present disclosure with known carrier particles, including coated carriers such as steel, ferrite, etc. Such carriers include those disclosed in U.S. Pat. Nos. 4,937,166 and 4,935,326, the entire disclosures of each of which are incorporated herein by reference.
[0089] The toner may be present in the carrier in an amount of about 1% to about 15% by weight, about 2% to about 8% by weight, or about 4% to about 6% by weight. The carrier particles may also include a core having a polymer coating, such as polymethylmethacrylate (PMMA), with a conductive component, such as conductive carbon black, dispersed therein. Carrier coatings include silicone resins such as methylsilsesquioxane, fluoropolymers such as polyvinylidene fluoride, mixtures of resins that are not adjacent in the triboelectric series, such as polyvinylidene fluoride and acrylic, thermosetting resins such as acrylic, combinations of these, and other known components.
[0090] Applicable
[0091] The toner of the present invention can be used in various electrophotographic processes with various electrophotographic printers. Electrophotographic imaging processes include, for example, preparing an image in an electrophotographic printer comprising a charging component, an imaging component, a photoconductive component, a developing component, a transfer component, and a fixing component. In embodiments, the developing component may comprise a developer prepared by mixing a carrier with any of the toners described herein. Electrophotographic printers may include high-speed printers, high-speed black and white printers, color printers, and the like. Once an image is formed with the toner / developer, the image can then be transferred to an image receiving medium such as paper. A fuser roll member can be used to fuse the toner to the image receiving medium by using heat and pressure. Using the toner of the present invention in an electrophotographic printing process can achieve the brightness and L described herein. * a * b * Fluorescent printed images can be provided having the characteristics described herein, including coordinate values.
[0092] Toners of the present invention find use in other applications such as powder coating applications in which a powder spray gun (e.g., a tribo gun) containing any of the toners of the present invention is used to deliver the toner to a substrate.
[0093] In embodiments, provided herein is a process for printing fluorescent and non-fluorescent toners using one or more of a Xerox® iGen® Press, in embodiments a Xerox® iGen® 5 Press, or a combination of a Xerox® iGen® Press. The sun exposure sensor is printed with fluorescent toner. The sun exposure scale is printed with non-fluorescent toner.
[0094] Accordingly, processes are provided herein for preparing a sunlight exposure sensor using fluorescent and non-fluorescent toners. In embodiments, the process for preparing a sunlight exposure sensor includes providing a substrate having an upper surface and a lower surface, disposing a sunlight exposure sensing portion on the upper surface of the substrate, the sunlight exposure sensing portion including a fluorescent toner image that gradually fades when exposed to sunlight, disposing a sunlight exposure scale on the upper surface of the substrate, the sunlight exposure scale including an evaluation image for evaluating the amount of fading of the fluorescent toner image, optionally disposing a coating layer over all or a portion of the upper surface of the substrate, and optionally disposing a backing layer over all or a portion of the lower surface of the substrate.
[0095] In an embodiment, the disposing includes printing one or more of the fluorescent toner image, the sun exposure assessment image, the optional coating layer, and the optional backing layer using an electrophotographic printer.
[0096] In an embodiment, the disposing includes printing one or more of the fluorescent toner image, the sun exposure assessment image, the optional coating layer, and the optional backing layer using an electrophotographic printer in an in-line process.
[0097] Any additional suitable substrate, recording sheet, or removable support, stage, platform, etc. can be used to prepare the sunlight exposure sensors herein, including plain paper such as XEROX® 4024 paper, XEROX® Image Series paper, Courtland 4024DP paper, lined notebook paper, bond paper, etc.; silica-coated paper such as Sharp Company silica-coated paper, JuJo paper, and HAMMERMILL LASERPRINT® paper; gloss-coated paper such as XEROX® Digital Color Gloss and Sappi Warren Papers LUSTROGLOSS®; and inorganic substrates such as transparent materials, fabrics, textiles, plastics, polymeric films, glass, glass plates, metals, and wood, as well as meltable or dissolvable substrates (for removable supports such as freestanding objects) such as wax or salt. In certain embodiments, the substrate is selected from the group consisting of paper, plastic, polymeric film, cardboard, paperboard, folded paperboard, kraft paper, fabric, glass, glass plates, wood, metal, and combinations thereof. In embodiments, the substrate is a label. The label can be selected from any of the types of substrates described above. In some embodiments, the substrate includes food packaging, medical packaging, etc. In some embodiments, the substrate includes one of the group consisting of food packaging, medical packaging, medical devices, cosmetic packaging, cosmetic tools, cosmetics, and combinations thereof. In further embodiments, the substrate includes a wearable device such as a wristband. In embodiments, the substrate includes a wristband, an armband, an ankle band, a hat, a shirt, a pair of pants, a pair of shorts, a shoe, sneakers, a patch, a scarf, a pair of gloves, a sticker on the surface of an object, a sticker on the surface of a golf club, eyeglasses or sunglasses, or a cell phone case. The sensor may be disposed on or made of a portion of any other item, as suitable or desired.
[0098] The substrate can be any suitable or desired color, including darker colors that may absorb more energy and accelerate fading or lighter colors, hi certain embodiments, the substrate is a white substrate. [Example]
[0099] The following examples are presented to further define the various classes of the present disclosure. These examples are intended for illustration only and are not intended to limit the scope of the present disclosure. Also, unless otherwise stated, parts and percentages are by weight.
[0100] Toners were prepared using fluorescent colorants as follows. Example 1
[0101] FY-O, Optic Yellow. Preparation of Solvent Yellow 160-added amorphous polyester emulsion. A mixture of 240 grams of amorphous polyester resin (propoxylated bisphenol A fumarate / terephthalate) and 4.9 grams of Solvent Yellow 160 was dissolved in a mixture of methyl-ethyl ketone, isopropyl alcohol, and aqueous ammonia in a ratio of (145 / 48 / 40 grams) in a 2-L reactor at 50°C. Additional ammonia solution may be required to fully neutralize the polyester resin. To this solution, 320 grams of deionized water-containing surfactant (Calfax® DB-45 manufactured by Pilot Chemical Company) was added to form an emulsion. The reactor was filled with a distillation column, and the organic solvent was distilled off. Finally, the resulting emulsion was filtered through a 25 μm sieve. The average particle size of the emulsion was 203 nanometers, and the solids content was approximately 41%. The content of Solvent Yellow 160 in the emulsion was about 2%. Example 2
[0102] FP49-M A magenta polyester emulsion was prepared in the same manner as Solvent Yellow in Example 1, except that Solvent Red 49 Magenta was used instead of Solvent Yellow 160. Example 3
[0103] FP49-O, Optic. A polyester emulsion was prepared in the same manner as Solvent Yellow in Example 1, except that a mixture of Solvent Yellow 160 and Solvent Red 149 was used instead of Solvent Yellow 160. Example 4
[0104] FP149-O, Optic. An orange polyester emulsion was prepared in the same manner as Solvent Yellow in Example 1, except that a mixture of Solvent Yellow 160 and Solvent Red 49 was used instead of Solvent Yellow 160. Example 5
[0105] FB Blue A blue polyester emulsion was prepared in the same manner as Solvent Yellow in Example 1, except that Pacific Blue or 3-carboxy-6,8-difluoro-7-hydroxycoumarin was used instead of Solvent Yellow 160. Example 6
[0106] FG, Green. A green polyester emulsion was prepared in the same manner as Solvent Yellow in Example 1, except that Solvent Yellow 160 was replaced by a mixture of Solvent Yellow 160 and cyan pigment (PB15:4). Example 7
[0107] Preparation of fluorescent toner particles using Solvent Yellow 160-added emulsion. Fluorescent emulsion (225.2 grams) made according to Example 1 was mixed with one type of amorphous polyester emulsion (132.4 grams, 40% solids), another type of amorphous polyester emulsion (132.4 grams, 40% solids), another emulsion containing crystalline polyester (47.4 grams, 43% solids), and deionized water (920.8 grams). The mixture was acidified, and then aluminum sulfate solution was slowly added while homogenizing. The resulting highly viscous mixture was transferred to a 2-L reactor, and aggregation was initiated by raising the temperature to approximately 45°C. When the particle size reached 7.2 μm, emulsions containing two amorphous polyesters (107.2 grams each) were acidified to pH 4.5 and then added to form a shell on the particles, allowing the particles to continue growing to approximately 8.5 μm. The particles were frozen by adding EDTA and aqueous sodium hydroxide solution. The reaction temperature was increased until coalescence began at approximately 84°C. Heating was stopped when the particle circularity reached 0.965±0.005. The particle slurry was quenched by lowering the temperature to below 40°C, then sieved through a 20 μm sieve and filtered under vacuum. The resulting particles were washed with deionized water and dried. Example 8
[0108] Preparation of fluorescent toner particles using FP49, M-added emulsion Fluorescent toner particles were prepared in the same manner as in Example 7, except that the FP49, M emulsion of Example 2 was used. Example 9
[0109] Preparation of Fluorescent Toner Particles Using FP49, Q-Optic Added Emulsion Fluorescent toner particles were prepared in the same manner as in Example 7, except that the FP49, Q-Optic emulsion of Example 3 was used. Example 10
[0110] Preparation of Fluorescent Toner Particles Using FP1490, O-Optic Added Emulsion Fluorescent toner particles were prepared in the same manner as in Example 7, except that the FP1490, O-Optic emulsion of Example 4 was used. Example 11
[0111] Preparation of fluorescent toner particles using emulsion containing FB Blue Fluorescent toner particles were prepared in the same manner as in Example 8, except that F0149 blue emulsion from Example 5 was used. Example 12
[0112] Preparation of fluorescent toner particles using emulsion containing FG and Green: Fluorescent toner particles were prepared in the same manner as in Example 8, except that the emulsion containing FG and Green of Example 6 was used.
[0113] Lightfastness test
[0114] A series of images printed using Xerox® iGen® and different fluorescent toners were lightfastness tested using an Atlas CPS+Suntest® instrument. The fluorescent toners tested were as follows:
[0115] FY-O, Optic Yellow, Example 7.
[0116] FP49-M, Example 8.
[0117] FP49-O, Optic, Example 9.
[0118] FP149-O, Optic, Example 10.
[0119] FB, Blue, Example 11.
[0120] FG, Green, Example 12.
[0121] In embodiments, the printed sensor herein is calibrated by printing fluorescent toner onto a substrate to form a solid image, and next to the image, a sunlight exposure scale is printed with a regular colored toner that simulates the color that the fluorescent toner gradually fades to. The printed scale is robust to sunlight. The printed scale has negligible or minimal fading. The portion of the sensor printed with the fluorescent toner discolors when exposed to direct sunlight. The sunlight exposure level is easily found by comparing the amount of fading of the fluorescent toner image to the scale. In embodiments, the scale is numbered from 0 to 8, indicating a gradual fading that correlates to the percentage of daylight in Arizona. The printed scale can be finer to cover the full range of sunlight exposure, as shown in Figures 5 and 6.
[0122] Color prints containing solid images on a paper substrate were prepared using a Xerox® iGen® with each of the fluorescent color toners of Examples 7-12.
[0123] The printed images were tested using an Atlas CPS+Suntest® instrument. Test conditions were followed by a 240 minute (4 hour) exposure in G155 mode. Color Lab was sampled every 15 minutes of exposure.
[0124] Table 1 shows the conditions for the reset tests G155 and 4892-1. [Table 1]
[0125] EW / m2 = irradiance (E) measured as watts per square meter
[0126] BST - Black Standard Temperature.
[0127] FIG. 4 shows the color change of fluorescent prints prepared with toner examples 7, 8, 9, 10 and 12 under exposure times of 0, 120 and 240 minutes.
[0128] The full range of sunlight exposure for different color prints is shown in Figures 5 and 6. In Figure 5, at the top, are separation patches of toner prints made with FY-O, Optic Yellow, Toner Example 7. In Figure 5, at the bottom, are undegraded patches (bottom) of toner prints made with regular pigment CMYK toners that do not fade in sunlight.
[0129] Figure 6 shows three different toner formulations that can be used to construct a sensor. In Figure 6, printed patches of the optical yellow toner of Example 7 are shown at 0-240 minutes of exposure according to the Atlas CPS+Suntest in G155 mode. In the middle row of Figure 6, printed patches of the color toner of Example 8 are shown at 0-240 minutes of exposure. In the bottom row of Figure 6, printed patches of the color toner of Example 10 are shown at 0-240 minutes of exposure.
[0130] FIG. 7 shows the exposure time associated with color change of fluorescent orange toner prints prepared with the toner of Example 10 as a function of the percentage of daylight in Arizona.
[0131] Figure 8 shows a sunlight exposure sensor prepared with a scale printed with the fluorescent toner of Example 10, regular toner, and Xerox® CMYK toner. Using the fluorescent toner of Example 10, a sensing strip was printed on a substrate using Xerox® iGen®. Adjacent to the fluorescent toner strip, a scale was printed using fluorescent Xerox® toner. The scale includes images of circles numbered consecutively from 0 to 8 to indicate increasing exposure, with 0 being the least exposure and 8 being the most exposure. As indicated by the arrows, after one sun exposure equivalent to an Arizona day, the sensor strip changed color to match the faded scale color, indicating the amount of sun exposure.
[0132] Thus, a single-use, disposable sunlight exposure sensor is provided based on fluorescent toner prints. The sensor has a sunlight exposure scale that indicates a color change. The sensor can correlate sunlight exposure to Arizona daytime. The sensor is simple, easy to use, and inexpensive. The entire sunlight exposure sensor can be printed in a single-pass print job, utilizing all of the features and advantages of the printer, from its many media type capabilities to various finishing operations. Compared to currently available disposable sensors, the sensor of the present invention can be prepared with simpler materials and made robust against weather and abrasion.
[0133] It will be understood that various of the above-disclosed and other features and functions, or alternatives thereof, may be desirably combined into many other different systems or applications. Also, various presently unforeseen or unprecedented substitutions, modifications, variations, or improvements may occur to those skilled in the art, which are also intended to be encompassed by the following claims. Unless specifically recited in a claim, no particular order, number, position, size, shape, angle, color, or material of the steps or components of the claims should be implied or implied from this specification or any other claim.
Claims
1. 1. A disposable or single use sunlight exposure sensor comprising: a substrate having an upper surface and a lower surface; a sunlight exposure sensitive portion disposed on the top surface of the substrate, the sunlight exposure sensitive portion including a fluorescent toner image, the fluorescent toner image gradually fading upon exposure to sunlight; a sun exposure scale disposed on the upper surface of the substrate, the sun exposure scale including an evaluation image for evaluating an amount of fading of the fluorescent toner image; The sunlight exposure sensing portion is printed with fluorescent yellow toner, and the fluorescent yellow toner is a core comprising a first Solvent Yellow 160-doped amorphous polyester, a second Solvent Yellow 160-doped amorphous polyester, and a crystalline polyester, wherein the first amorphous polyester and the second amorphous polyester are different; a shell disposed over the core, the shell comprising at least one amorphous polyester; The toner has an L of more than 90 * a value of less than about −40 to about −20 * value, and b above 75 * A sunlight exposure sensor that provides a printed image having a value.
2. 10. The sunlight exposure sensor of claim 1, wherein the substrate is selected from the group consisting of paper, plastic, polymer film, cardboard, paperboard, folded paperboard, kraft paper, fabric, glass, glass plate, wood, metal, and combinations thereof.
3. The sunlight exposure sensor of claim 1 , wherein the substrate is white.
4. 2. The sunlight exposure sensor of claim 1, wherein the fluorescent toner image of the sunlight exposure sensing portion is printed with a fluorescent toner selected from the group consisting of yellow fluorescent toner, magenta fluorescent toner, orange fluorescent toner, pink fluorescent toner, green fluorescent toner, red fluorescent toner, blue fluorescent toner, and combinations thereof.
5. The sun exposure sensor of claim 1 , wherein the sun exposure scale is printed with a non-fluorescent toner.
6. 10. The sunlight exposure sensor of claim 1, further comprising a coating layer disposed over all or a portion of the top surface of the substrate, the coating layer comprising a water-resistant overcoat layer.
7. 10. The sunlight exposure sensor of claim 1, further comprising a coating layer disposed over all or a portion of the lower surface of the substrate, the coating layer comprising a scratch-resistant overcoat layer.
8. The sunlight exposure sensor of claim 1 , further comprising a backing layer, wherein the backing layer comprises a hook-and-loop layer, an adhesive layer, a gel pad, or a combination thereof.
9. The sunlight exposure sensor of claim 1 , wherein the substrate comprises a wearable device.
10. 10. The sunlight exposure sensor of claim 1, wherein the substrate is a wristband, an armband, an ankle band, a hat, a shirt, a pair of pants, a pair of shorts, a shoe, a sneaker, a patch, a scarf, a pair of gloves, a sticker on the surface of an object, a sticker on the surface of a golf club, eyeglasses or sunglasses, or a cell phone case.
11. 10. The sunlight exposure sensor of claim 1, further comprising a coating layer disposed over all or a portion of the upper surface of the substrate, a backing layer disposed over all or a portion of the lower surface of the substrate, or a combination thereof.
12. 1. A disposable or single use sunlight exposure sensor comprising: a first substrate having an upper surface and a lower surface; a sunlight exposure sensitive portion disposed on the top surface of the first substrate, the sunlight exposure sensitive portion including a fluorescent toner image, the fluorescent toner image gradually fading upon exposure to sunlight; a second substrate having an upper surface and a lower surface; a sun exposure scale disposed on the upper surface of the second substrate, the sun exposure scale including an evaluation image for evaluating an amount of fading of the fluorescent toner image; The sunlight exposure sensing portion is printed with fluorescent yellow toner, and the fluorescent yellow toner is a core comprising a first Solvent Yellow 160-doped amorphous polyester, a second Solvent Yellow 160-doped amorphous polyester, and a crystalline polyester, wherein the first amorphous polyester and the second amorphous polyester are different; a shell disposed over the core, the shell comprising at least one amorphous polyester; The toner has an L of more than 90 * a value of less than about −40 to about −20 * value, and b above 75 * A sunlight exposure sensor that provides a printed image having a value.
13. 13. The sunlight exposure sensor of claim 12, further comprising at least one of a coating layer disposed on all or a portion of the top surface of the first substrate, a coating layer disposed on all or a portion of the top surface of the second substrate, a backing layer disposed on all or a portion of the bottom surface of the first substrate, a backing layer disposed on all or a portion of the bottom surface of the second substrate, or a combination thereof.
14. 1. A process for preparing a sunlight exposure sensor, comprising: providing a substrate having an upper surface and a lower surface; disposing a sunlight exposure sensitive portion on the upper surface of the substrate, the sunlight exposure sensitive portion including a fluorescent toner image, the fluorescent toner image gradually fading upon exposure to sunlight; disposing a sun exposure scale on the upper surface of the substrate, the sun exposure scale including an evaluation image for evaluating an amount of fading of the fluorescent toner image; The sunlight exposure sensing portion is printed with fluorescent yellow toner, and the fluorescent yellow toner is a core comprising a first Solvent Yellow 160-doped amorphous polyester, a second Solvent Yellow 160-doped amorphous polyester, and a crystalline polyester, wherein the first amorphous polyester and the second amorphous polyester are different; a shell disposed over the core, the shell comprising at least one amorphous polyester; The toner has an L of more than 90 * a value of less than about −40 to about −20 * value, and b above 75 * A process for providing a printed image having a value.
15. 15. The process of claim 14, wherein disposing comprises printing one or more of the fluorescent toner image, the evaluation image, the coating layer, and the backing layer using an electrophotographic printer.
16. 15. The process of claim 14, wherein disposing comprises printing one or more of the fluorescent toner image, the evaluation image, the coating layer, and the backing layer using an electrophotographic printer in an in-line process.
17. 15. The process of claim 14, wherein the fluorescent toner image of the sunlight exposure sensitive portion is printed with a fluorescent toner selected from the group consisting of yellow fluorescent toner, magenta fluorescent toner, orange fluorescent toner, pink fluorescent toner, green fluorescent toner, red fluorescent toner, blue fluorescent toner, and combinations thereof.
18. 15. The process of claim 14, wherein the substrate is selected from the group consisting of paper, plastic, polymeric film, cardboard, paperboard, folded paperboard, kraft paper, glass, glass plate, wood, metal, and combinations thereof.
19. The process of claim 14 wherein the substrate is white.
20. 15. The process of claim 14, further comprising disposing at least one of a coating layer over all or a portion of the upper surface of the substrate, a backing layer disposed over all or a portion of the lower surface of the substrate, or a combination thereof.
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