Thermochromic Temperature Sensor
Temperature sensors with thermochromic color change systems address the need for reliable temperature monitoring of sensitive products by indicating exposure to critical temperatures and recording thermal history visually.
Patent Information
- Application Number
- JP2021558827
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-31
- Filing Date
- 2020-04-01
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2040-04-01
AI Technical Summary
There is a need for a reliable temperature sensor that can be associated with temperature-sensitive products and provide a direct indication of their thermal history, as exposure to certain temperatures can affect the quality and safety of these products.
The development of temperature sensors that incorporate thermochromic color change systems, comprising dyes, developers, and solvents, which undergo a visible color change upon exposure to preselected temperature thresholds, and retain this color change to record thermal history.
These temperature sensors effectively indicate exposure to critical temperature thresholds, ensuring the quality and safety of temperature-sensitive products by providing a visual record of thermal history.
Smart Images

Figure 0007675656000018 
Figure 0007675656000019 
Figure 0007675656000020
Abstract
Description
[Background technology]
[0001] I. Background For temperature sensitive products, it may be necessary to know if the product has been exposed to temperatures below or above a threshold, as that temperature threshold may affect product quality, safety, etc. As just one example, certain vaccines may lose efficacy if exposed to temperatures below about 2°C. As another illustrative example, some foods, such as meat, should not be stored at temperatures above about 8°C to ensure food safety.
[0002] Thus, a need exists for a temperature sensor that (i) can be reliably associated with a temperature sensitive product and (ii) can serve to provide a direct indication of its thermal history. Summary of the Invention [Means for solving the problem]
[0003] II. Summary of the Invention A broad objective of certain embodiments of the present invention may be to provide a temperature sensor including a thermochromic color change system having a dye, a developer, and a solvent, as well as methods of making and using such a temperature sensor. Upon exposure to a preselected temperature threshold, association or dissociation of the dye and developer produces a visible color change. Additionally, the color change system includes a color memory property that promotes retention of the color change to effectively record exposure to the temperature threshold.
[0004] Of course, further objects of the present invention are disclosed throughout other areas of the specification, drawings and claims. [Brief description of the drawings]
[0005] [Figure 1A]FIG. 1A illustrates a low temperature indicator including a particular embodiment of the present temperature sensor securely associated with a temperature sensitive product, such as a vaccine, prior to exposure to a preselected temperature threshold, where the dye and developer have dissociated and the color change system has not undergone a visible color change.
[0006] [Figure 1B] FIG. 1B illustrates a particular embodiment of the temperature sensor shown in FIG. 1A after exposure to a temperature threshold of about 2° C. that promotes association of the dye and developer and the formation of a corresponding visibly colored dye-developer complex, resulting in a visible color change from colorless to a visibly colored state.
[0007] [Figure 1C] FIG. 1C illustrates the particular embodiment of the temperature sensor shown in FIG. 1B after an increase in temperature from the temperature threshold, where the color change system retains a visible color change.
[0008] [Figure 2A] FIG. 2A illustrates a high temperature indicator including a particular embodiment of the present temperature sensor securely associated with a temperature sensitive product such as a food product (i) before activation (as depicted on the left) when the dye and developer are dissociated, and (ii) after exposure to an activation temperature of about −5° C. (as depicted on the right) that promotes association of the dye and developer and the corresponding formation of a visibly colored dye-developer complex.
[0009] [Figure 2B] FIG. 2B illustrates the particular embodiment of the temperature sensor shown in FIG. 2A prior to exposure to a preselected temperature threshold, where the color change system does not undergo a visible color change.
[0010] [Figure 2C] FIG. 2C illustrates a particular embodiment of the temperature sensor shown in FIG. 2B after exposure to a temperature threshold of about 8° C., which promotes dissociation of the dye and developer to give a visible color change from a visibly colored state to colorless.
[0011] [Figure 2D] FIG. 2D illustrates the particular embodiment of the temperature sensor shown in FIG. 2C after the temperature drops below the temperature threshold, and the color change system retains a visible color change.
[0012] [Diagram 3] FIG. 3 illustrates the hysteresis characteristics of certain embodiments of the present color changing systems having color memory properties.
[0013] [Figure 4A] FIG. 4A illustrates a dual temperature indicator comprising a particular embodiment of the present temperature sensor (i) before activation, when the dye and developer of both the first and second color change systems have dissociated (as shown on the left), and (ii) after exposure to an activation temperature that promotes association of the dye and developer of the second color change system and the formation of a corresponding visibly colored dye-developer complex (as shown on the right).
[0014] [Figure 4B] FIG. 4B illustrates a particular embodiment of the temperature sensor shown in FIG. 4A after exposure to a low temperature threshold that promotes association of the dye and developer of the first color change system and formation of a corresponding visibly colored dye-developer complex to provide a visible color change from colorless to a visibly colored state that may be retained as the temperature is increased.
[0015] [Figure 4C] FIG. 4C illustrates a particular embodiment of the temperature sensor shown in FIG. 4A after exposure to a high temperature threshold that promotes dissociation of the dye and developer of the second color change system to provide a visible color change from visibly colored to colorless, which may be retained as the temperature is decreased. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0016] IV. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS 1A-2D, which illustrate certain embodiments of a temperature sensor (1) of the present invention that operates to provide an indication of exposure to a preselected temperature threshold (2), the temperature sensor (1) including a color change system (3) including a dye (4), a developer (5), and a solvent (6). The developer (5) variably interacts with the dye (4) depending on the temperature of the color change system (3), and upon exposure to the temperature threshold (2), the association or dissociation of the dye (4) and developer (5) results in a visible color change that can be visually observed (e.g., by a human, i.e., human readable) or detected (e.g., by a human, i.e., human readable or machine readable).
[0017] For certain embodiments, the color change system (3) comprises a thermochromic color change system capable of producing a temperature regulated color change, typically with a lower temperature resulting in a colored state and a higher temperature resulting in a colorless or substantially colorless state.
[0018] To expand on the above, and with reference to particular embodiments and primarily to Figures 1A-1C, a color change system (3) can be constructed such that exposure to a temperature threshold (2) results in association of the dye (4) and developer (5) to form a visibly colored dye-developer complex (7) that can be visually observed or detected, thereby indicating that the temperature sensor (1) has been exposed to the temperature threshold (2).
[0019] With respect to other specific embodiments, and referring now primarily to Figures 2A-2D, the color change system (3) can be constructed such that exposure to a temperature threshold (2) results in dissociation of the dye (4) and developer (5), and thus dissociation of the colored dye-developer complex (7), and the resulting color change to colorless can be visually observed or detected to indicate that the temperature sensor (1) has been exposed to the temperature threshold (2).
[0020] Thus, a method of use may include detecting whether a color change has occurred, for example, by visually observing the temperature sensor (1), where visual detection of a color change indicates that the temperature sensor (1) has been exposed to the temperature threshold value (2). Conversely, visual detection of the absence of a color change, i.e., no color change has occurred, indicates that the temperature sensor (1) has not been exposed to the temperature threshold value (2).
[0021] With respect to temperature sensitive products (8), there is a need for indicators that (i) can accompany the temperature sensitive product (8), for example during shipping and storage, and (ii) can indicate (preferably via a direct visual indication) the thermal history of the temperature sensitive product (8), in particular whether the temperature sensitive product (8) has been exposed to a temperature threshold (2) that may compromise the quality and / or safety of the temperature sensitive product (8).
[0022] The method of use may then include securely associating the temperature sensor (1) with a temperature sensitive product (8) and thereafter detecting whether a color change has occurred, such that visual detection of a color change indicates that the temperature sensitive product (8) has been exposed to the temperature threshold (2), and visual detection of the absence of a color change indicates that the temperature sensitive product (8) has not been exposed to the temperature threshold (2).
[0023] It should be noted that while temperature sensor (1) may be shown in an extremely simplified form herein for clarity and generality of presentation, it should be understood that temperature sensor (1) may have a more complex structure and / or form part of a larger scale marking or indicium, such as a barcode. definition
[0024] As used herein, the term "sensor" refers to a composition or device that detects or measures a stimulus and responds to the stimulus in a particular manner.
[0025] As used herein, the term "detect" and its forms means to discover or confirm the presence of.
[0026] As used herein, the term "preselected" means predetermined, pre-determined.
[0027] As used herein, the term "threshold" means a point that must be reached or exceeded for a particular phenomenon to occur or be manifested.
[0028] As used herein, the term "dye" refers to a color-changing compound, such as a color former, that can react with the present developer (5) to form a dye-developer complex (7) that exhibits optical properties distinguishable by the human eye.
[0029] As used herein, the term "color developer" refers to a compound capable of reacting with the dye (4) to form a dye-developer complex (7) that exhibits optical properties discernible by the human eye. The term "color developer" may be synonymous with "color developer," both of which refer to a compound that promotes a color change in the dye (4).
[0030] As used herein, the term "solvent" may, but need not, be synonymous with phase change material, which is defined herein as a material that changes from one phase to another.
[0031] As used herein, the term "temperature sensitive product" refers to any product for which it may be beneficial to indicate its thermal history, for example because its quality may be adversely affected if its thermal history includes exposure to a particular temperature or range of temperatures. By way of example only, temperature sensitive products may include foods, pharmaceuticals, chemical materials, biological materials, medical devices, coloring compositions (such as paints and stains), adhesives, and the like.
[0032] As used herein, the term "food" means a commodity, item, or article that may be consumable (e.g., eatable or drinkable) or that may be useful as an ingredient for making a consumable item or article. By way of example only, food may include fruits, juices, vegetables, grains, flour, milk, yogurt, sweetened beverages, meats, processed foods, medicines, and the like.
[0033] Two objects, such as a temperature-sensitive product (8) and a temperature sensor (1), can be "securely associated" if the association between the two objects is expected to be undisturbed by normal processing or processes. Non-limiting examples of such secure associations can include gluing one object to another, bundling two objects together, encasing both objects in a container, printing one object (e.g., the temperature sensor (1) configured as a printing ink) onto a packaging material or container used to encase the other object (e.g., the temperature-sensitive product (8)), affixing one object (e.g., the temperature sensor (1)) to a packaging material or container used to encase the other object (e.g., the temperature-sensitive product (8)), and laminating one object (e.g., the temperature sensor (1)) to a portion of a packaging material used to encapsulate the other object (e.g., the temperature-sensitive product (8)). Temperature Sensor
[0034] 1A-2D, the present temperature sensor (1), which may take the form of a composition or device, includes a color change system (3) that includes a dye (4), a developer (5), and a solvent (6). The developer (5) variably interacts with the dye (4) according to the temperature of the color change system (3), and upon exposure to a preselected temperature threshold (2), the association or dissociation of the dye (4) and developer (5) results in a color change that can be visually observed or detected.
[0035] With respect to certain embodiments, aspects of the temperature sensor (1) may be similar to the indicators disclosed in U.S. Pat. Nos. 10,113,920, 10,345,278, 10,585,080, 10,605,681, and / or U.S. patent application Ser. No. 62 / 971,544, each of which is incorporated herein by reference in its entirety. Dyes and developers
[0036] The color change system (3) may be a reversible color change system, ie, the color change may be reversible, rather than an irreversible or permanent color change.
[0037] Subsequently, for certain embodiments, the dye (4) of the color change system (3) can comprise a leuco dye that can be reversibly changed between two forms, one of which can typically be colorless or substantially colorless.
[0038] As just a few examples, leuco dyes include Crystal Violet Lactone (CAS number: 1552-42-7); Pigment Blue 63 (CAS number: 16521-38-3); 2'-(dibenzylamino)-6'-(diethylamino)fluoran (CAS number: 34372-72-0); Yamamoto Black 15 or 2-(2,4-dimethylphenylamino)-3-methyl-6-diethylaminofluoran (CAS number: 36431-22-8); ODB or 7-anilino-3-diethylamino-6-methylfluoran (CAS number: 29512-49-0); ODB-2 or 2- Anilino-6-dibutylamino-3-methylfluoran (CAS number: 89331-94-2); 6'-(diethylamino)-1',3'-dimethylfluoran orange (CAS number: 21934-68-9); Yamamoto Red 40 or 3,3-bis(1-butyl-2-methyl-1H-indol-3-yl)phthalide (CAS number: 50292-91-6); Yamamoto Red Blue 63 or 7-[4-(diethylamino)-2-ethoxyphenyl]-7-(1-ethyl-2-methyl-1H-indol-3-yl)furo[3,4-b]pyridin-5(7H)-one, etc.
[0039] For certain embodiments, the leuco dye may be an electron donor compound (or a proton acceptor compound). In addition, the developer (5) may include an electron acceptor compound (or a proton donor compound), such as an acid, particularly a weak acid. When an interaction (specifically, an electron transfer reaction) occurs between the electron donor leuco dye and the electron acceptor developer, the leuco dye may reversibly change color, for example, from a colorless state to a colored state. In this way, the color change system (3) may have two visual appearances that differ from each other depending on the temperature, namely (i) a first visual appearance that may be a colorless appearance and (ii) a second visual appearance that may be a colored appearance.
[0040] As just a few examples, the developer (5) can be 3,5-di-tert-butylcatechol (CAS number: 1020-31-1); 4,4'-(1,3-dimethylbutylidene)diphenol (CAS number: 1020-31-1); 2,2'-biphenol (CAS number: 1806-29-7); 4-[2-ethyl-1-(4-hydroxyphenyl)hexyl]phenol (PubChem CID 13782487), and the like.
[0041] Without being bound to a particular theory of operation, it may be that within the reversible color change system (3), upon exposure to a temperature that results in the association of the leuco dye and developer (5), the developer (5) may reversibly interact with the leuco dye via an electron transfer reaction, opening the lactone ring of the leuco dye and stabilizing the open structure to form a supramolecular colored dye-developer complex (7) that may be responsible for the color change. When open, the lactone ring is cationic in nature, thereby extending the conjugation of its π electrons and allowing absorption in the visible spectrum to give the colored dye-developer complex (7), the stability of which may be determined, at least in part, by the affinity of the developer (5) for the leuco dye. solvent
[0042] The color change system (3) further comprises a solvent (6) that provides or controls the reversible interaction between the dye (4) and the developer (5).
[0043] For certain embodiments, solvents (6) that may be useful with the reversible color change system (3) may be (i) solvents (6) in which both the dye (4) and the color developer (5) are soluble, and (ii) solvents (6) that may be contained with the dye (4) and the color developer (5), for example, in a capsule or microcapsule (9), to provide a corresponding encapsulated or microencapsulated color change system (3). When contained within a capsule or microcapsule (9), the solvent (6) may facilitate the interaction between the dye (4) and the color developer (5).
[0044] Without being bound to a particular theory of operation, within the reversible color change system (3), the color developer (5) may also interact with the solvent (6) to form a solvent-developer complex, and this interaction may be determined, at least in part, by the affinity of the color developer (5) for the solvent (6).
[0045] The color change can then be associated with a competition between the dye (4) and the solvent (6) for complexation with the developer (5), and it can be hypothesized that the developer (5) forms a complex with the molecule or molecules for which it has a greater affinity.
[0046] It is understood that once a complex is formed, the complex may be stable until a sufficient amount of energy is input into the system to destabilize the complex, thereby causing the components of the complex to dissociate.
[0047] In relation to the temperature sensor (1), at higher temperatures the colour developer (5) may have a higher affinity for the solvent (6) than the leuco dye, and therefore the solvent-developer complex may be preferred over the coloured dye-developer complex (7). Thus, the colour developer (5) may be excluded from interaction with the leuco dye, and accordingly, the lactone ring may be closed and the leuco dye may be colourless.
[0048] Conversely, at lower temperatures, the developer (5) may have a higher affinity for the leuco dye than the solvent (6), and thus a colored dye-developer complex (7) may form and be stable.
[0049] For certain embodiments, the solvent (6) can be an ester.
[0050] For certain embodiments, solvent (6) can be an ester disclosed in U.S. Pat. No. 10,345,278, U.S. Pat. No. 10,585,080, U.S. Pat. No. 10,605,681, and / or U.S. Patent Application No. 62 / 971,544, each of which is incorporated herein by reference in its entirety.
[0051] For certain embodiments, the solvent (6) can be diphenyl methyl ester.
[0052] For certain embodiments, the ester has the following formula I: [ka] and wherein R can be (i) a straight or branched chain alkyl group, (ii) a straight or branched chain alkenyl group, or (iii) a straight or branched chain alkynyl group, any of which can be unsubstituted or substituted.
[0053] For certain embodiments, R can have 5 or more carbon atoms, ie, at least 5 carbon atoms.
[0054] For certain embodiments, R can have 7 or more carbon atoms, ie, at least 7 carbon atoms.
[0055] For certain embodiments, R can have 9 or more carbon atoms, ie, at least 9 carbon atoms.
[0056] For certain embodiments, R can have 11 or more carbon atoms, ie, at least 11 carbon atoms.
[0057] For certain embodiments, R can have 13 or more carbon atoms, ie, at least 13 carbon atoms.
[0058] For certain embodiments, R can have 15 or more carbon atoms, ie, at least 15 carbon atoms.
[0059] For certain embodiments, R can have 17 or more carbon atoms, ie, at least 17 carbon atoms.
[0060] For certain embodiments, R can have 19 or more carbon atoms, ie, at least 19 carbon atoms.
[0061] For certain embodiments, the ester has the following formula II: [ka] and In the formula, n can be an integer from 1 to 15.
[0062] For certain embodiments, the ester has the following formula III: [ka] and This ester is C 31 H 46It may have a molecular formula of O2, a molecular weight of 450.70 g / mol, and a CAS Registry Number of 103390-75-6.
[0063] For certain embodiments, the ester has the following formula IV: [ka] and This ester is C 29 H 42 It may have a molecular formula of O2, a molecular weight of 422.64 g / mol, and a CAS Registry Number of 103209-25-2.
[0064] For certain embodiments, the ester has the following formula V: [ka] and This ester is C 31 H 46 It may have a molecular formula of O2 and a molecular weight of 450.70 g / mol.
[0065] For certain embodiments, the ester has the following formula VI: [ka] and This ester is C 29 H 42 It may have a molecular formula of O2 and a molecular weight of 422.64 g / mol.
[0066] For certain embodiments, the ester has the following formula VII: [ka] and In the formula, m and n can each be an integer from 1 to 15.
[0067] For certain embodiments, the ester has the following formula VIII: [ka] and In the formula, m and n can each be an integer from 2 to 15.
[0068] For certain embodiments, the ester has the following formula IX: [ka] and In the formula, m can be an integer from 1 to 10.
[0069] For certain embodiments, the ester has the following formula X: [ka] and In the formula, m can be an integer from 1 to 11, and n can be an integer from 1 to 3.
[0070] For certain embodiments, the ester has the following formula XI: [ka] and In the formula, R can be hydrogen or a C1-C4 alkyl group, and n can be an integer from 1 to 6.
[0071] For certain embodiments, the ester has the following formula XII: [ka] and In the formula, m can be an integer from 1 to 10.
[0072] For certain embodiments, the ester has the following formula XIII: [ka] and In the formula, m can be an integer from 1 to 10, and n can be an integer from 0 to 2.
[0073] For certain embodiments, the solvent (6) can be a hydrocarbon.
[0074] For certain embodiments, the solvent (6) can be a ketone.
[0075] For certain embodiments, solvent (6) can be a ketone as disclosed in U.S. Pat. No. 10,345,278, U.S. Pat. No. 10,585,080, U.S. Pat. No. 10,605,681, and / or U.S. Patent Application No. 62 / 971,544, each of which is incorporated herein by reference in its entirety.
[0076] For certain embodiments, the ketone has the following formula XIV: [ka] and where R can be hydrogen or an alkyl group, such as a methyl or ethyl group; In the formula, n can be an integer from 1 to 10.
[0077] For certain embodiments, the solvent (6) can be an alcohol.
[0078] For certain embodiments, solvent (6) can be an alcohol as disclosed in U.S. Pat. No. 10,345,278, U.S. Pat. No. 10,585,080, U.S. Pat. No. 10,605,681, and / or U.S. Patent Application No. 62 / 971,544, each of which is incorporated herein by reference in its entirety.
[0079] For certain embodiments, the solvent (6) can be a single compound.
[0080] For certain embodiments, the solvent (6) can be in an amount of from about 50% to about 99% of the color change system (3).
[0081] For certain embodiments, the solvent (6) may be in an amount of about 60% to about 75% of the color change system (3).
[0082] For certain other embodiments, solvent (6) can be a mixture of two or more compounds. For certain embodiments, solvent (6) can be a mixture of two or more of the above solvents (6).
[0083] For certain embodiments, the solvent (6), which comprises a mixture of two or more compounds, may be in an amount of from about 50% to about 99% of the color change system (3).
[0084] For certain embodiments, the solvent (6), which comprises a mixture of two or more compounds, may be in an amount of about 60% to about 75% of the color change system (3).
[0085] For certain embodiments, solvent (6) can be a mixture of esters shown in formulas III and IV, and the esters shown in formula III and IV can be in a ratio of 1:1. Of course, for other specific embodiments, other ratios can be used and are contemplated herein. Phase change materials
[0086] For certain embodiments, the solvent (6) may be a phase change material that changes between a liquid phase (or a substantially liquid phase) and a solid phase (or a substantially solid phase) according to the temperature of the color change system (3).
[0087] For certain embodiments, the solvent (6) is capable of changing from a liquid phase to a solid phase upon exposure to a temperature threshold (2).
[0088] For certain other embodiments, the solvent (6) is capable of changing from a solid phase to a liquid phase upon exposure to a temperature threshold (2).
[0089] For certain embodiments, the solid phase of the solvent (6) can facilitate or enable an interaction between the leuco dye and the developer (5), and the colored dye-developer complex (7) can be in a crystallized structure with extended conjugation of its pi-electrons.
[0090] In contrast, the liquid phase of the solvent (6) can prevent the interaction between the leuco dye and the developer (5) and render the leuco dye colorless. Color Memory
[0091] As mentioned above, the color change system (3) can be a thermochromic color change system capable of producing a temperature-regulated color change. Additionally, the color change system (3) can be a reversible thermochromic color change system, where the temperature-regulated color change can be reversible, rather than an irreversible or permanent color change.
[0092] Additionally, the color change system (3) may have a color memory characteristic whereby after a color change occurs following exposure to the temperature threshold (2), the color change may be retained even when exposure to the temperature threshold (2) is discontinued, and thus the color change may be retained at temperatures different from the temperature threshold (2). Correspondingly, the temperature sensor (1) may effectively record exposure to the temperature threshold (2), thereby acting as a cumulative exposure indicator, which may be contrasted with conventional thermometers that only display the current temperature and do not record temperatures to which the thermometer may have been exposed prior to exposure to the current temperature.
[0093] With respect to the color change properties, the color change system (3) can include a color temperature at which the color change system (3) reversibly changes from a colorless state to a colored state, and the color change system (3) can include a bleaching temperature at which the color change system (3) reversibly changes from a colored state to a colorless state.
[0094] Importantly, the color change temperature and bleaching temperature of the color change system (3) can be different, i.e., the color change temperature can be separate from the bleaching temperature. For example, the color change temperature can be lower than the bleaching temperature.
[0095] As a result, the color memory property of the color change system (3) can promote the retention of the color change when the temperature is increased from the color change temperature. Therefore, the color memory property of the color change system (3) can promote the retention of the colored state when the temperature is increased from the color change temperature, as shown in Figures 1B and 1C.
[0096] Additionally, the color memory properties of color change system (3) can facilitate retention of the color change upon cooling from the bleaching temperature, and thus, the color memory properties of color change system (3) can facilitate retention of the colorless state upon cooling from the bleaching temperature, as shown in Figures 2C and 2D.
[0097] For certain embodiments, the color change temperature can be related to the freezing point of the color change system (3) and the decolorization temperature can be related to the melting point of the color change system (3). Thus, the color change system (3) can include (i) a freezing point at which the color change system (3) changes from a colorless state to a colored state, and (ii) a melting point at which the color change system (3) changes from a colored state to a colorless state.
[0098] Notably, due to the color memory properties of the color change system (3), for certain embodiments, after exposure to a temperature threshold (2) that results in association of the dye (4) and the developer (5), the colored dye-developer complex (7) can remain stable even when the solvent (6) may be in the liquid phase (e.g., when the temperature is increased).
[0099] Similarly, also due to the color memory properties of the color change system (3), for certain embodiments, after exposure to a temperature threshold that results in dissociation of the dye (4) and developer (5), the dye (4) and developer (5) can remain dissociated even when the solvent (6) may be in a solid phase (e.g., when the temperature is reduced).
[0100] For certain embodiments, the color development temperature may differ from the bleaching temperature by at least one selected from the group including or consisting of at least about 20°C, at least about 25°C, at least about 30°C, at least about 35°C, at least about 40°C, at least about 45°C, at least about 50°C, at least about 55°C, at least about 60°C, at least about 65°C, at least about 70°C, at least about 75°C, at least about 80°C, at least about 85°C, at least about 90°C, at least about 95°C, at least about 100°C, and greater than about 100°C.
[0101] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 20° C., i.e., the bleaching temperature may be at least about 20° C. higher than the color change temperature.
[0102] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 25° C., i.e., the bleaching temperature may be at least about 25° C. higher than the color change temperature.
[0103] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 30° C., i.e., the bleaching temperature may be at least about 30° C. higher than the color change temperature.
[0104] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 35° C., i.e., the bleaching temperature may be at least about 35° C. higher than the color change temperature.
[0105] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 40° C., i.e., the bleaching temperature may be at least about 40° C. higher than the color change temperature, with at least about 40° C. being the preferred minimum difference for certain embodiments.
[0106] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 45° C., i.e., the bleaching temperature may be at least about 45° C. higher than the color change temperature, with at least about 45° C. being the preferred minimum difference for certain embodiments.
[0107] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 50° C., i.e., the bleaching temperature may be at least about 50° C. higher than the color change temperature, with at least about 50° C. being the preferred minimum difference for certain embodiments.
[0108] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 55° C., i.e., the bleaching temperature may be at least about 55° C. higher than the color change temperature, with at least about 55° C. being the preferred minimum difference for certain embodiments.
[0109] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 60° C., i.e., the bleaching temperature may be at least about 60° C. higher than the color change temperature.
[0110] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 65° C., i.e., the bleaching temperature may be at least about 65° C. higher than the color change temperature.
[0111] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 70° C., i.e., the bleaching temperature may be at least about 70° C. higher than the color change temperature.
[0112] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 75° C., i.e., the bleaching temperature may be at least about 75° C. higher than the color change temperature.
[0113] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 80° C., i.e., the bleaching temperature may be at least about 80° C. higher than the color change temperature.
[0114] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 85° C., i.e., the bleaching temperature may be at least about 85° C. higher than the color change temperature.
[0115] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 90° C., i.e., the bleaching temperature may be at least about 90° C. higher than the color change temperature.
[0116] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 95° C., i.e., the bleaching temperature may be at least about 95° C. higher than the color change temperature.
[0117] For certain embodiments, the color change temperature may differ from the bleaching temperature by at least about 100° C., i.e., the bleaching temperature may be at least about 100° C. higher than the color change temperature.
[0118] For certain embodiments, the color change temperature may differ from the bleaching temperature by more than about 100°C.
[0119] Referring now primarily to FIG. 3, the hysteresis characteristics of certain embodiments of the reversible color change system (3) having color memory properties can be described by illustrating the dependence of color density on temperature.
[0120] Here, more specifically, the y-axis indicates color density and the x-axis indicates temperature. The color density of the color change system (3) changes with temperature along the curve in the direction indicated by the arrow. Point A indicates the color density at the highest temperature T1 to achieve a completely colored state (T1 can be the completely colored temperature). Point B indicates the color density at the highest temperature T2 to maintain a completely colored state (T2 can be the bleaching onset temperature). Point C indicates the color density at the lowest temperature T3 to achieve a completely colorless state (T3 can be the completely bleaching temperature). Point D indicates the color density at the lowest temperature T4 to maintain a completely colorless state (T4 can be the bleaching onset temperature).
[0121] Both fully colored and fully colorless states can exist between T4 and T2, but the state that is retained may depend on the state previously achieved. For example, if a fully colored state was previously achieved upon exposure to T1, the fully colored state will be retained until exposure to a temperature equal to or greater than T2. Alternatively, if a fully colorless state was previously achieved upon exposure to T3, the fully colorless state will be retained until exposure to a temperature equal to or less than T4.
[0122] In other words, depending on whether the color change system (3) approaches the temperature from a lower or higher temperature, i.e., whether the color change system (3) is being heated from a lower temperature or cooled from a higher temperature, the color change system (3) may be in a completely colored state or in a completely colorless state at temperatures T2 to T4.
[0123] For certain embodiments, the colored or colorless state may be retained upon exposure to temperatures from about 20° C. to about 100° C. or from about 50° C. to about 100° C. from the temperature at which the colored or colorless state was achieved. In other words, the length of segment EF shown in FIG. 3 represents a temperature range width indicative of the degree of hysteresis or hysteresis range or hysteresis window ΔH, which may range between about 20° C. to about 100° C. or from about 50° C. to about 100° C. transition temperature
[0124] For certain embodiments, in addition to having color memory properties, the color-changing system (3) can also have a narrow transition between the colorless state and the colored state or between the colored state and the colorless state.
[0125] Referring again primarily to FIG. 3, the narrow transition between the colorless and colored states means that the difference between the color onset temperature (T4) and the full color temperature (T1) is relatively small, and this difference is Δ T4-T1 It can be expressed as:
[0126] In particular, Δ T4-T1can be related to the sensitivity of the temperature sensor (1), where a smaller difference between the color onset temperature (T4) and the full color temperature (T1) can equate to higher sensitivity, and it can be advantageous to have a more sensitive and therefore more accurate temperature sensor (1).
[0127] Similarly, referring again primarily to FIG. 3, the narrow transition between the colored and colorless states means that the difference between the onset of bleaching (T2) and the complete bleaching temperature (T3) is relatively small, and this difference is Δ T3-T2 It can be expressed as:
[0128] Δ T4-T1 Similarly, Δ T3-T2 can be related to the sensitivity of the temperature sensor (1), where a smaller difference between the bleaching onset temperature (T2) and the complete bleaching temperature (T3) can equate to higher sensitivity, and it can be advantageous to have a more sensitive and therefore more accurate temperature sensor (1).
[0129] For certain embodiments, the difference between the color onset temperature and the complete color temperature (Δ T4-T1 ) and / or the difference between the bleaching start temperature and the complete bleaching temperature (Δ T3-T2 ) may be about 4° C. or less.
[0130] For certain embodiments, the difference between the color onset temperature and the complete color temperature (Δ T4-T1 ) and / or the difference between the bleaching start temperature and the complete bleaching temperature (Δ T3-T2 ) may be about 3° C. or less.
[0131] For certain embodiments, the difference between the color onset temperature and the complete color temperature (Δ T4-T1 ) and / or the difference between the bleaching start temperature and the complete bleaching temperature (Δ T3-T2 ) may be about 2° C. or less.
[0132] For certain embodiments, the difference between the color onset temperature and the complete color temperature (Δ T4-T1 ) and / or the difference between the bleaching start temperature and the complete bleaching temperature (Δ T3-T2 ) may be about 1° C. or less.
[0133] For certain embodiments, T4=T1 and / or T3=T2. Microcapsules
[0134] For certain embodiments, the reversible color change system (3) may be contained, i.e., the dye (4), developer (5) and solvent (6) are continuously kept in physical proximity that allows for interaction between the components. Additionally, by being contained, the color change system (3) may be isolated from the external environment that may damage or destroy the color change system (3).
[0135] As noted above, for certain embodiments, the color-changing system (3) can be encapsulated within a capsule or microcapsule (9) to provide a corresponding encapsulated or microencapsulated color-changing system (3), and the capsule or microcapsule (9) can have a diameter ranging between about 500 nanometers and about 50 microns, depending on the embodiment. For certain embodiments, the microcapsules (9) can have an average diameter between about 1 micron and about 3 microns.
[0136] The capsule or microcapsule walls which form the corresponding capsules or microcapsules (9) around the color change system (3) may be formed from any of a number of different polymers, such as melamine formaldehyde resins (CAS number: 9003-08-01); polyurethane resins (CAS number: 9009-54-5); acrylic resins, epoxy resins, CYMEL® 385 resin, gelatin, and the like. coating
[0137] With respect to certain embodiments of the temperature sensor (1), the encapsulated or microencapsulated color change system (3) can be incorporated into a coating. By way of example only, the encapsulated or microencapsulated color change system (3) can be incorporated into an ink.
[0138] For certain embodiments, the ink can be selected from the group including or consisting of flexographic inks, gravure inks, offset inks, screen inks and metallographic inks. The ink can be water-based, solvent-based, UV curable, wet, dry or a combination thereof depending on the application.
[0139] By way of example only, the inks may include acrylic solutions, acrylic emulsions, sulfonated polyesters, polyester resins, epoxy resins, acrylated monomers or oligomers, alkyd resins, and the like.
[0140] For certain embodiments, the inks can be specially formulated for application to a substrate via printing, such as medium or high speed printing, onto substrates configured as labels, tags or packaging materials. Base material
[0141] With respect to certain embodiments of the temperature sensor (1), the encapsulated or microencapsulated color change system (3) may be attached to a substrate that may be formed from any of a number of different materials. By way of example only, the substrate may include paper, paper products, wood, textiles, metals, glass, ceramics, plastics, thermoplastic materials, thermoset materials, and the like, or combinations thereof.
[0142] Additionally, for certain embodiments, the temperature sensor (1) may, but need not necessarily, further include a cover over the encapsulated or microencapsulated color change system (3) bonded to the substrate, thereby disposing the encapsulated or microencapsulated color change system (3) between the substrate and the cover.
[0143] A cover may be used where for aesthetic or safety reasons it may be desirable, for example, to prevent contact between elements of the temperature sensor (1) and the temperature sensitive product (8).
[0144] The exact shape and form of the substrate and cover may not be important. However, some embodiments are suitable for easier manufacture and assembly. For example, in one embodiment, the substrate and cover can have the form of a sheet (i.e., the substrate and cover are configured as two sheets adjacent and facing each other). The substrate and cover can have about the same thickness or different thicknesses, such as each being a plastic film having a thickness of about 2-50 mils.
[0145] The material from which each of the substrate and cover are made may not be substantially important, except that the substrate must be sufficient to support the encapsulated or microencapsulated color changing system (3) and the cover must be sufficient to cover the encapsulated or microencapsulated color changing system (3). By way of example, each of the substrate and cover may be a polyester film having a thickness of about 2-10 mils. Preferably, at least one of the substrate and cover may be transparent.
[0146] At least one of the substrate and cover can have an observation portion adapted to allow detection of a color change associated with the formation of the colored dye-developer complex (7), for example, by visual observation of the temperature sensor (1) (i.e., without requiring disassembly of the temperature sensor (1)). Alternatively, the temperature sensor (1) can be disassembled to determine whether the colored dye-developer complex (7) has formed. For certain embodiments, at least one of the substrate and cover can be sufficiently transparent or translucent such that a color change can be detected by direct visual observation of the observation portion.
[0147] For certain embodiments, one or both of the substrate and cover can function as a packaging material or package for containing the temperature-sensitive product (8), or as a component thereof. The substrate, cover, or both can be an integral part of the packaging material (i.e., integrated with the packaging material such that removal of the substrate or cover compromises the integrity of the packaging material and its function of isolating its interior from the external environment). Alternatively, the substrate, cover, or both can be separable (e.g., tearable, removable, or peelable) from the packaging material.
[0148] For certain embodiments, the capsules or microcapsules (9) containing the color change system (3) may be attached, either directly or via a binder, to the substrate, the cover, or both.
[0149] Alternatively, for certain other embodiments, the capsules or microcapsules (9) containing the color change system (3) can be held in close proximity to, but not necessarily attached to, the surface of either the substrate or cover. Container components as substrates
[0150] For certain embodiments, the encapsulated or microencapsulated color change system (3) can be attached to a substrate configured as a container component of a container that can house a temperature sensitive product (8).
[0151] For certain embodiments, the container component may include or be formed from at least one thermoplastic material, such as a thermoplastic polymer or resin. The container component may then include at least one thermoplastic material and an encapsulated or microencapsulated color change system (3).
[0152] For certain embodiments, the reservoir component may include or be formed from at least one thermosetting material, such as a thermosetting polymer, resin, or plastic. The reservoir component may then include at least one thermosetting material and an encapsulated or microencapsulated color change system (3).
[0153] For certain embodiments, the thermoplastic and / or thermosetting materials can include materials that can be processed at less than about 232° C. (about 450° F.). By way of example only, the thermoplastic and / or thermosetting materials can include low density polyethylene (LDPE), linear low density polyethylene (LLDPE), high density polyethylene (HDPE), polypropylene (PP, OPP, BOPP), polystyrene (PS), high impact polystyrene (HIPS), styrene acrylonitrile (SAN), acrylonitrile butadiene styrene (ABS), polycarbonate (PC), polyurethane (PU), silicone (PDMS), polyvinyl chloride (PVC), polyethylene terephthalate (PET), crystal polystyrene, epoxies, epoxy resins, polyepoxides, and the like, or combinations thereof.
[0154] For certain embodiments, the container component may include or be formed from an encapsulated or microencapsulated color change system (3) mixed with at least a portion of the thermoplastic material.
[0155] For certain embodiments, the container component may include or be formed from an encapsulated or microencapsulated color change system (3) incorporated within at least a portion of the thermoplastic material.
[0156] For certain embodiments, the container component may include or be formed from an encapsulated or microencapsulated color change system (3) that is integral with at least a portion of the thermoplastic material.
[0157] For certain embodiments, the container component may include or be formed from an encapsulated or microencapsulated color change system (3) suspended within at least a portion of the thermoplastic material.
[0158] For certain embodiments, the container component may include or be formed from an encapsulated or microencapsulated color change system (3) substantially uniformly suspended within at least a portion of the thermoplastic material.
[0159] For certain embodiments, the container component may include or be formed from an encapsulated or microencapsulated color change system (3) embedded within at least a portion of the thermoplastic material.
[0160] For certain embodiments, the container component may include or be formed from an encapsulated or microencapsulated color change system (3) substantially uniformly embedded within at least a portion of the thermoplastic material.
[0161] In contrast to the above, for certain embodiments, the encapsulated or microencapsulated color change system (3) may be applied to the exterior surface of the container component.
[0162] For certain embodiments, the encapsulated or microencapsulated color change system (3) may be printed onto the exterior surface of the container component.
[0163] For certain embodiments, the encapsulated or microencapsulated color change system (3) may be incorporated into an ink that may be printed onto the exterior surface of the container component.
[0164] For certain embodiments, the container component can be configured as a closure, such as a cap or lid.
[0165] With respect to manufacturing, the thermoplastic materials can be molded into embodiments of the container components according to known methods for manufacturing plastic products, including, but not limited to, injection molding, compression molding, and extrusion.
[0166] Additionally, with regard to the manufacture of container components comprising a mixture of the encapsulated or microencapsulated color change system (3) and a thermoplastic material, the encapsulated or microencapsulated color change system (3) can be incorporated into the container component according to known methods for manufacturing plastic products comprising two or more components. For certain embodiments, the encapsulated or microencapsulated color change system (3) can be incorporated as a masterbatch or can be mixed or intermixed or consolidated with the thermoplastic material prior to the formation of the container component.
[0167] The amount of encapsulated or microencapsulated color-changing system (3) incorporated into the container component is not particularly limited, so long as the desired thermochromic effect can be achieved. For certain embodiments, the encapsulated or microencapsulated color-changing system (3) can be present in the container component in an amount of about 1% to about 50% by weight, based on the weight of the container component. Low Temperature Indicator
[0168] For certain embodiments, the temperature sensor (1) may be used as a low temperature indicator, a cold temperature indicator or a freeze indicator, and the preselected temperature threshold (2) may be the temperature at which the temperature sensitive product (8) becomes undesirably cold or frozen.
[0169] Subsequently, when the temperature sensitive product (8) and securely associated temperature sensor (1) are exposed to a threshold temperature (2), a colored dye-developer complex (7) is formed that remains stable even as the temperature is increased, effectively recording the exposure of the temperature sensitive product (8) to the threshold temperature (2).
[0170] 1A-1C and 3, an example of a low temperature indicator is shown in which, upon exposure to a temperature threshold (2), the color change system (3) undergoes a color change and can become fully colored at T1. The colored dye-developer complex (7) then remains stable until a temperature T2 is reached, thereby allowing the indicator to remain fully colored as the temperature increases.
[0171] For certain embodiments, temperature threshold (2) may be, but is not necessarily, a temperature below about 2° C., and T2 may be, but is not necessarily, a temperature above ambient and above about 45° C.
[0172] For certain embodiments, temperature threshold (2) may be, but is not necessarily, a temperature of about 2° C., and T2 may be, but is not necessarily, a temperature of about 45° C. Notably, this example has a hysteresis window (ΔH) of 43° C.
[0173] For certain embodiments, the temperature threshold (2) may be a temperature between about -20°C and about 20°C.
[0174] With regard to certain embodiments, the esters shown in Formulae I-VI may be useful in embodiments of the temperature sensor (1) configured as low temperature indicators, cold temperature indicators, or freeze indicators. High Temperature Indicator
[0175] For certain embodiments, the temperature sensor (1) may be used as a hot indicator, a warm indicator or a melt indicator, and the preselected temperature threshold (2) may be the temperature at which the temperature sensitive product (8) undesirably warms or melts.
[0176] Subsequently, when the temperature sensitive product (8) and securely associated temperature sensor (1) are exposed to a temperature threshold (2), the dye (4) and developer (5) dissociate and remain dissociated even as the temperature drops, effectively recording the exposure of the temperature sensitive product (8) to the temperature threshold (2).
[0177] 2A, for certain embodiments of the temperature sensor (1) functioning as a high temperature indicator, activation of the color change system (3) may be required prior to use. For example, the color change system (3) may be activated by exposure to an activation temperature (10) that results in association of the dye (4) and developer (5) to form a colored dye-developer complex (7). Subsequent exposure to a temperature threshold (2) that results in dissociation of the dye (4) and developer (5) and thus dissociation of the colored dye-developer complex (7) may result in a color change to colorless.
[0178] For certain embodiments, the activation temperature (10) can be significantly lower than the lowest temperature typically achievable by a conventional refrigerator, such that exposure to a conventional refrigerator after recording the color change from colored to colorless does not induce the formation of colored dye-developer complexes (7).
[0179] For certain embodiments, the activation temperature (10) can be significantly lower than the lowest temperature typically achievable by a conventional freezer, such that exposure to a conventional freezer after recording the color change from colored to colorless does not induce the formation of colored dye-developer complexes (7).
[0180] For certain embodiments, the activation temperature (10) may be a temperature achievable with a freeze spray, cooling spray, vapor coolant, refrigerant spray, gas duster, etc., which may be capable of achieving a temperature below about -20°C, for example, about -50°C.
[0181] 2B-2D and 3, an example of a high temperature indicator is shown in which, upon exposure to a temperature threshold (2), the color change system (3) undergoes a color change and can become completely colorless at T3 (as shown in FIG. 2C). The dye (4) and developer (5) then remain dissociated until a temperature T4 is reached, allowing the indicator to remain completely colorless as the temperature decreases from T3 (as shown in FIG. 2D).
[0182] For certain embodiments, temperature threshold (2) may be, but need not be, a temperature of about 8° C. or greater, and T4 may be, but need not be, a temperature of about −1° C. or less.
[0183] For certain embodiments, temperature threshold (2) may be, but is not necessarily, a temperature of about 8° C. and T4 may be, but is not necessarily, a temperature of about −1° C. Notably, this example has a hysteresis window (ΔH) of 9° C.
[0184] For certain embodiments, temperature threshold (2) may be, but need not be, a temperature of about 8° C. or greater, and T4 may be, but need not be, a temperature of about −5° C. or less.
[0185] For certain embodiments, temperature threshold (2) may be, but is not necessarily, a temperature of about 8° C., and T4 may be, but is not necessarily, a temperature of about −5° C. Notably, this example has a hysteresis window (ΔH) of 13° C.
[0186] For certain embodiments, the temperature threshold (2) may be a temperature between about -20°C and about 20°C.
[0187] With regard to certain embodiments, the esters shown in Formulas VII-IX may be useful in embodiments of the temperature sensor (1) configured as a hot indicator, a warm indicator, or a melt indicator. Dual Temperature Indicator
[0188] For certain embodiments, the temperature sensor (1) may include multiple populations of encapsulated or microencapsulated color change systems (3), each population having a characteristic preselected temperature threshold (2) to which it responds to provide a color change.
[0189] For example, a temperature sensor (1) may include (i) a first color change system (11) useful as a low temperature indicator (and thus having a relatively low temperature threshold (2)) and (ii) a second color change system (12) useful as a high temperature indicator (and thus having a relatively high temperature threshold (2)), where the components of the color change systems (11) and (12) may be the same or different, depending on the application. This dual temperature indicator may be used to provide an indication of exposure to at least two temperature thresholds (2) and may be useful in determining whether a temperature sensitive product (8) has been maintained within a preselected temperature range between the two temperature thresholds (2).
[0190] Prior to use, the second color change system (12) can be activated (as described above and shown in FIG. 4A) and thus brought to a colored state. Thereafter, when at a temperature above T4 and below T2, the temperature sensor (1) can initially display both a colored state (due to the activated second color change system (12)) and a colorless state (due to the first color change system (11)).
[0191] In use, when the temperature sensor (1) is exposed to a temperature at or below the temperature threshold (2) of the first color change system (11), i.e., below T1, both the first and second color change systems (11)(12) will become fully colored, as shown in FIG. 4B. Furthermore, when the temperature sensor (1) is exposed to a temperature at or above the temperature threshold (2) of the second color change system (12), i.e., above T3, both the first and second color change systems (11)(12) will become fully colorless, as shown in FIG. 4C. After exposure to at least one of the temperature thresholds (2), the temperature sensor (1) cannot display both a fully colored state and a fully colorless state, thereby providing evidence of exposure to at least one of the temperature thresholds (2).
[0192] By way of example only, a particular embodiment of the dual temperature indicator may indicate exposure to temperatures outside the range of about 2° C. to about 8° C. In other words, this embodiment of the dual temperature indicator may function as (i) a low temperature indicator having a temperature threshold (2) of about 2° C., and (ii) a high temperature indicator having a temperature threshold (2) of about 8° C.
[0193] It is contemplated herein that embodiments of the present dual temperature indicator may be useful as tamper indicators, particularly when the first and second color change systems (11)(12) are disposed on a substrate such that they are thermally inseparable. By way of example only, this may be accomplished by disposing the first and second color change systems (11)(12) adjacent to one another or sandwiched between one another.
[0194] With regard to tampering, dual temperature indicator embodiments may be particularly useful in sealed articles that may be subject to unauthorized opening and resealing, where this tampering may not have been previously detectable.
[0195] For example, one method of tampering with a sealed article may include heating the sealing adhesive to a temperature at which it no longer acts as an adhesive, thereby allowing access to the previously sealed article, which may then be resealed. Alternatively, another method of tampering may include freezing the sealing adhesive to a temperature at which it no longer acts as an adhesive, thereby also allowing access to the previously sealed article, and then heating the adhesive may allow the adhesive to regain its adhesive properties such that unauthorized access may be undetectable. In these examples, the present dual temperature indicators visually indicate both the heating and cooling of the sealing adhesive, thereby providing visual evidence of tampering. Additional indicators
[0196] With respect to certain embodiments, the temperature sensor (1) may include other indicators (e.g., a time indicator, a pressure indicator, a moisture indicator, etc.) associated with the temperature sensor (1) such that the temperature sensing function of the temperature sensor (1) can be combined with a corresponding time sensing function, pressure sensing function, moisture sensing function, etc. Barcode
[0197] For certain embodiments, the temperature sensor (1) may be configured as a human readable text message or a machine readable message, and for the latter, for certain embodiments, the temperature sensor (1) may be configured as a barcode or matrix barcode, which can usually be read by a scanner.
[0198] For certain embodiments, the barcode may be colored and machine readable at temperatures below the temperature threshold (2) and may be colorless at temperatures above the temperature threshold (2), thus rendering the barcode unreadable. EXAMPLES
[0199] Example 1 The subject matter of the present disclosure will now be described with reference to the following examples. It should be noted that the examples are provided for illustrative purposes only, and the subject matter is not limited to these examples, but rather encompasses all variations that become evident as a result of the teachings provided herein.
[0200] Certain embodiments of the microencapsulated reversible thermochromic color change system can be made according to the methods taught in U.S. Pat. No. 8,883,049, U.S. Pat. No. 9,175,175 and U.S. Pat. No. 9,695,320 by combining (i) about 5-15% w / w of crystal violet lactone as a dye, (ii) about 5-15% w / w of 4-[2-ethyl-1-(4-hydroxyphenyl)hexyl]phenol as a color developer, (iii) about 55-65% w / w of a mixture of solvents shown in formulas III and IV present in a 1:1 ratio, and (iv) about 15-25% w / w of a melamine resin, which forms the microcapsule wall upon microencapsulation of the dye, developer and solvent. For certain embodiments, the microencapsulated reversible thermochromic color change system can exhibit a color onset temperature at about 0° C. and a full color temperature at about −2° C., and thus has a narrow transition between the colorless and colored states, i.e., a difference between the color onset temperature and the full color temperature of only about 2° C. Furthermore, the microencapsulated reversible thermochromic color change system can change from colored to colorless at about 50° C.
[0201] The microencapsulated reversible thermochromic color change system can then be incorporated into the ink vehicle in an amount of, for example, about 35-45% w / w.
[0202] As can be readily appreciated from the foregoing, the basic concepts of the present invention may be embodied in a variety of ways. The present invention includes many different embodiments of temperature sensors, as well as methods for making and using such temperature sensors.
[0203] Thus, the specific embodiments or elements of the invention disclosed by this description or illustrated in the figures or tables accompanying this application are not intended to be limiting, but are illustrative of the numerous and varied embodiments generally encompassed by the invention, or equivalents encompassed with respect to any particular element thereof. Moreover, a specific description of a single embodiment or element of the invention may not explicitly describe all possible embodiments or elements, and many alternatives are implicitly disclosed by this description and drawings.
[0204] It should be understood that each element of the device or each step of the method may be described by device or method terms. Such terms may be substituted where desired to clarify the implicitly broad scope to which the invention is entitled. By way of example only, it should be understood that every step of the method may be disclosed as an action, a means for causing that action, or an element that causes that action. Similarly, each element of the device may be disclosed as a physical element or an action that the physical element facilitates. By way of example only, a disclosure of "combination" should be understood to encompass a disclosure of the action of "sensing" whether or not expressly discussed, and conversely, such disclosure should be understood to encompass a disclosure of "sensor" and even a disclosure of "means for sensing" if a disclosure of the action of "sensing" is validly present. Such alternative terms for each element or step should be understood to be expressly included in this description.
[0205] Further, it should be understood that for each term used, unless its usage in this application is inconsistent with such an interpretation, the common dictionary definition should be understood to be included in the description for each term as contained in Random House Webster's Unabridged Dictionary, Second Edition, and each definition is incorporated herein by reference.
[0206] All numerical values herein are deemed to be modified by the term "about", whether or not expressly stated. In the present invention, ranges may be expressed as "about" one particular value to "about" another particular value. When such a range is expressed, another embodiment includes from the one particular value to the other particular value. Recitation of numerical ranges by endpoints includes all numerical values subsumed within that range. A numerical range from 1 to 5, for example, includes the values 1, 1.5, 2, 2.75, 3, 3.80, 4, 5, etc. It is further understood that the endpoints of each range are significant both in relation to the other endpoint and independently of the other endpoint. When values are expressed as approximations, by use of the antecedent "about", it is understood that the values form another embodiment. The term "about" generally refers to a range of numerical values that one of ordinary skill in the art would consider equivalent to the recited numerical value or to have the same function or result. Similarly, the antecedent "substantially" means in nearly the same form, manner, or degree, but not exactly, where the elements have various configurations that one of ordinary skill in the art would consider to have the same function or result. When certain elements are expressed as approximations by use of the antecedent "substantially," it is understood that the elements form alternative embodiments.
[0207] Furthermore, in the present invention, the term "a" or "an" refers to one or more of that entity, unless otherwise limited. Thus, the terms "a" or "an," "one or more," and "at least one" can be used interchangeably herein.
[0208] It should therefore be understood that Applicant claims at least: i) each of the temperature sensors disclosed and described herein; ii) related methods disclosed and described; iii) similar, equivalent, and implicit variations of each of these devices and methods; iv) alternative embodiments that accomplish each of the functions shown, disclosed or described; v) alternative designs and methods that accomplish each of the functions shown as implicitly accomplishing what is disclosed and described; vi) each feature, component and step shown as a separate and independent invention; vii) applications that are enhanced by the various systems or components disclosed; viii) resulting products produced by such systems or components; ix) methods and apparatus substantially as described herein above and with reference to any of the accompanying examples; and x) various combinations and permutations of each of the foregoing elements disclosed.
[0209] The Background of the Invention section of this patent application provides a statement of the scope of the work, if any, to which the present invention pertains. This section may also incorporate or include specific U.S. patents, patent applications, publications, or expounds on the subject matter of the claimed invention that are useful in explaining information about the state of the art, problems, or concerns to which the present invention is directed. It is not intended that any U.S. patent, patent application, publication, statement, or other information cited or incorporated herein be construed, interpreted, or deemed to be an admission that it is prior art with respect to the present invention.
[0210] The claims set forth herein, if any, are incorporated herein by reference as part of this description of the invention, and Applicant expressly reserves the right to use all or a portion of such incorporated content of such claims as additional description to support any or all of the claims or any elements or components thereof, and Applicant further expressly reserves the right to transfer any or all of the incorporated content of such claims or any elements or components thereof from the body to the claims or from the claims to the body as necessary to clarify the matter for which protection is sought by this application or by any subsequent application or continuation, divisional or continuation-in-part application thereof, or to obtain any benefit of, or fee reduction under, any country's patent laws, regulations or statutes or treaties, or to conform to, any country's patent laws, regulations or statutes or treaties, and such content incorporated by reference shall survive the entire pendency of this application, including any subsequent application, divisional or continuation-in-part application thereof, or any reissue or extension thereto.
[0211] Moreover, the claims set forth herein, if any, are further intended to describe the metes and bounds of a limited number of preferred embodiments of the invention, and should not be construed as a complete recitation of the broadest embodiments or embodiments of the invention to which entitlement may be applied. Applicants do not waive any rights to formulate additional claims based on the above description as part of a continuation, divisional or continuation-in-part, or similar application. The present invention provides, for example, the following items. (Item 1) Dye and Developer and Solvent and A temperature sensor comprising a reversible thermochromic color change system comprising: Upon exposure to a preselected temperature threshold, the association or dissociation of the dye and the developer results in a visible color change; A temperature sensor, wherein the color change system includes a color memory characteristic that facilitates retention of the color change to record the exposure to the temperature threshold. (Item 2) Item 2. The temperature sensor of item 1, wherein the dye comprises a leuco dye. (Item 3) Item 3. The temperature sensor of item 2, wherein the leuco dye reversibly changes between a substantially colorless state and a visibly colored state. (Item 4) The color change system is a color-changing temperature at which the leuco dye changes to the colored state; and a bleaching temperature at which the leuco dye changes from the colored state; Including, Item 4. The temperature sensor according to item 3, wherein the coloring temperature is different from the bleaching temperature. (Item 5) The color change system is a color-changing temperature at which the leuco dye changes to the colored state; and a bleaching temperature at which the leuco dye changes to the colorless state; Including, 5. The temperature sensor according to item 4, wherein the coloring temperature is different from the bleaching temperature. (Item 6) Item 6. The temperature sensor according to item 5, wherein the color-changing temperature is lower than the bleaching temperature. (Item 7) 7. The temperature sensor of claim 6, wherein the color memory property promotes retention of the color change upon increase in temperature from the color change temperature. (Item 8) 8. The temperature sensor of claim 7, wherein the color memory property promotes retention of the colored state upon increasing temperature from the colored temperature. (Item 9) Item 9. The temperature sensor of item 8, wherein the color memory property promotes retention of the color change upon increase in temperature from the freezing point of the color change system. (Item 10) 10. The temperature sensor of claim 9, wherein the color memory property promotes retention of the colored state upon increase in temperature from the freezing point. (Item 11) 7. The temperature sensor of claim 6, wherein the color memory property promotes retention of the color change upon decreasing temperature from the bleaching temperature. (Item 12) Item 12. The temperature sensor of item 11, wherein the color memory property promotes retention of the colorless state upon decreasing temperature from the bleaching temperature. (Item 13) Item 13. The temperature sensor of item 12, wherein the color memory property promotes retention of the color change upon temperature reduction below the melting point of the color change system. (Item 14) Item 14. The temperature sensor of item 13, wherein the color memory property promotes retention of the colorless state upon decreasing temperature from the melting point. (Item 15) 7. The temperature sensor of claim 6, wherein the color change temperature differs from the bleaching temperature by at least about 40°C. (Item 16) 7. The temperature sensor of claim 6, wherein the color temperature differs from the bleaching temperature by at least about 45°C. (Item 17) 7. The temperature sensor of claim 6, wherein the color change temperature differs from the bleaching temperature by at least about 50°C. (Item 18) 7. The temperature sensor of claim 6, wherein the color change system includes a narrow transition between the colorless state and the colored state. (Item 19) Item 19. The temperature sensor of item 18, wherein the color change system includes a narrow transition between the onset and full color temperatures. (Item 20) 20. The temperature sensor according to item 19, wherein the difference between the color onset temperature and the full color temperature is about 4° C. or less. (Item 21) 20. The temperature sensor according to item 19, wherein the difference between the color onset temperature and the full color temperature is about 3° C. or less. (Item 22) 20. The temperature sensor according to item 19, wherein the difference between the color onset temperature and the full color temperature is about 2° C. or less. (Item 23) 20. The temperature sensor according to item 19, wherein the difference between the color onset temperature and the full color temperature is about 1° C. or less. (Item 24) 7. The temperature sensor of claim 6, wherein the color change system includes a narrow transition between the colored state and the colorless state. (Item 25) 25. The temperature sensor of claim 24, wherein the color change system includes a narrow transition between the onset and complete bleaching temperatures. (Item 26) 26. The temperature sensor according to item 25, wherein the difference between the bleaching onset temperature and the complete bleaching temperature is about 4° C. or less. (Item 27) 26. The temperature sensor according to item 25, wherein the difference between the bleaching onset temperature and the complete bleaching temperature is about 3° C. or less. (Item 28) 26. The temperature sensor according to item 25, wherein the difference between the bleaching onset temperature and the complete bleaching temperature is about 2° C. or less. (Item 29) 26. The temperature sensor according to item 25, wherein the difference between the bleaching onset temperature and the complete bleaching temperature is about 1° C. or less. (Item 30) Item 1 . The temperature sensor of item 1 , wherein the solvent comprises an ester. (Item 31) Item 31. The temperature sensor of item 30, wherein the ester comprises a diphenyl methyl ester. (Item 32) Item 31. The temperature sensor of item 30, wherein the ester has the formula I: (Item 33) Item 31. The temperature sensor of item 30, wherein the ester has the formula II. (Item 34) Item 31. The temperature sensor of item 30, wherein the ester has the formula III. (Item 35) Item 31. The temperature sensor of item 30, wherein the ester has formula IV. (Item 36) Item 31. The temperature sensor of item 30, wherein the ester has the formula V. (Item 37) Item 31. The temperature sensor of item 30, wherein the ester has the formula VI. (Item 38) Item 31. The temperature sensor of item 30, wherein the ester has the formula VII. (Item 39) Item 31. The temperature sensor of item 30, wherein the ester has the formula VIII. (Item 40) Item 31. The temperature sensor of item 30, wherein the ester has the formula IX. (Item 41) Item 31. The temperature sensor of item 30, wherein the ester has the formula X. (Item 42) Item 31. The temperature sensor of item 30, wherein the ester has the formula XI. (Item 43) Item 31. The temperature sensor of item 30, wherein the ester has the formula XII. (Item 44) Item 31. The temperature sensor of item 30, wherein the ester has the formula XIII. (Item 45) Item 10. The temperature sensor of item 1, wherein the solvent comprises a mixture of two or more esters. (Item 46) Item 46. The temperature sensor of item 45, wherein one said ester comprises a diphenylmethyl ester and another said ester comprises another diphenylmethyl ester. (Item 47) Item 47. The temperature sensor of item 46, wherein one said ester has formula III and another said ester has formula IV. (Item 48) Item 46. The temperature sensor of item 45, wherein one said ester has formula VII and another said ester has formula VIII. (Item 49) Item 2. The temperature sensor of item 1, wherein the solvent comprises a ketone. (Item 50) Item 50. The temperature sensor of item 49, wherein the ketone has the formula XIV. (Item 51) 2. The temperature sensor of claim 1, wherein the color change system is contained such that the dye, developer and solvent are encapsulated together. (Item 52) Item 52. The temperature sensor of item 51, wherein the color change system is encapsulated within a capsule to provide an encapsulated color change system. (Item 53) Item 53. The temperature sensor of item 52, wherein the color change system is encapsulated in a microcapsule to provide a microencapsulated color change system. (Item 54) 2. The temperature sensor of claim 1, wherein the color change system is incorporated into a coating. (Item 55) Item 2. The temperature sensor of item 1, wherein the color change system is incorporated into an ink. (Item 56) 1. A method for visually determining whether a temperature sensitive product has been exposed to a preselected temperature threshold, the method comprising: securely associating a temperature sensor with said temperature sensitive product; The temperature sensor is Dye and Developer and Solvent and A reversible thermochromic color change system comprising: Upon exposure to said temperature threshold, the association or dissociation of said dye and said developer results in a visible color change; The method of claim 1, wherein the color change system includes a color memory property that facilitates retention of the color change to record the exposure to the temperature threshold. (Item 57) 57. The method of claim 56, further comprising visually observing the temperature sensor. (Item 58) 58. The method of claim 57, wherein visual detection of the color change indicates that the temperature sensitive product has been exposed to the temperature threshold value. (Item 59) 59. The method of claim 58, wherein visual detection of the absence of a color change indicates that the temperature sensitive product has not been exposed to the temperature threshold value. (Item 60) 1. A method for indicating whether a temperature sensitive product has been exposed to a preselected temperature threshold, the method comprising: securely associating a temperature sensor with said temperature sensitive product; The temperature sensor is Dye and Developer and Solvent and A reversible thermochromic color change system comprising: Upon exposure to said temperature threshold, the association or dissociation of said dye and said developer results in a visible color change; The method of claim 1, wherein the color change system includes a color memory property that facilitates retention of the color change to record the exposure to the temperature threshold. (Item 61) Item 61. The method of item 60, further comprising detecting whether the color change has occurred. (Item 62) 62. The method of claim 61, wherein detection of the color change indicates that the temperature sensitive product has been exposed to the temperature threshold value. (Item 63) Item 61. The method of item 60, wherein detecting the absence of a color change indicates that the temperature sensitive product has not been exposed to the temperature threshold value. (Item 64) 1. A method of using a temperature sensor, the method comprising: securely associating the temperature sensor with a temperature sensitive product; The temperature sensor is Dye and Developer and Solvent and A reversible thermochromic color change system comprising: Upon exposure to said temperature threshold, the association or dissociation of said dye and said developer results in a visible color change; The method of claim 1, wherein the color change system includes a color memory property that facilitates retention of the color change to record the exposure to the temperature threshold. (Item 65) Item 65. The method of item 64, further comprising detecting whether the color change has occurred. (Item 66) 66. The method of claim 65, wherein detection of the color change indicates that the temperature sensitive product has been exposed to the temperature threshold value. (Item 67) Item 67. The method of item 66, wherein detecting the absence of a color change indicates that the temperature sensitive product has not been exposed to the temperature threshold value. (Item 68) Item 66. The method of item 65, further comprising visually observing the temperature sensor to detect whether the color change has occurred. (Item 69) 1. A method of manufacturing a temperature sensor, the method comprising: Dye and Developer and Solvent and containing a reversible thermochromic color change system comprising Upon exposure to a preselected temperature threshold, the association or dissociation of the dye and the developer results in a visible color change; The method of claim 1, wherein the color change system includes a color memory property that facilitates retention of the color change to record the exposure to the temperature threshold. (Item 70) 70. The method of claim 69, wherein the dye comprises a leuco dye. (Item 71) 71. The method of claim 70, wherein the solvent comprises an ester. (Item 72) 72. The method of claim 71, wherein the ester comprises a diphenylmethyl ester. (Item 73) 72. The method of claim 71, wherein the ester has the formula I. (Item 74) 72. The method of claim 71, wherein the ester has the formula II. (Item 75) Item 72. The method of item 71, wherein the ester has the formula III. (Item 76) 72. The method of claim 71, wherein the ester has the formula IV. (Item 77) Item 72. The temperature sensor of item 71, wherein the ester has the formula V. (Item 78) Item 72. The temperature sensor of item 71, wherein the ester has the formula VI. (Item 79) Item 72. The temperature sensor of item 71, wherein the ester has the formula VII. (Item 80) Item 72. The temperature sensor of item 71, wherein the ester has the formula VIII. (Item 81) Item 72. The temperature sensor of item 71, wherein the ester has the formula IX. (Item 82) 70. The method of claim 69, wherein the solvent comprises a mixture of two or more esters. (Item 83) Item 83. The temperature sensor of item 82, wherein one said ester comprises a diphenylmethyl ester and another said ester comprises another diphenylmethyl ester. (Item 84) Item 84. The temperature sensor of item 83, wherein one said ester has formula III and another said ester has formula IV. (Item 85) Item 83. The temperature sensor of item 82, wherein one said ester has formula VII and another said ester has formula VIII. (Item 86) 70. The method of claim 69, further comprising encapsulating the color change system to provide a contained color change system. (Item 87) 87. The method of claim 86, further comprising microencapsulating the color change system. (Item 88) 88. The method of claim 87, further comprising incorporating the contained color change system into a coating. (Item 89) 89. The method of claim 88, further comprising incorporating the contained color change system into an ink. (Item 90) 90. The method of claim 89, further comprising printing the ink onto a substrate.
Claims
1. Dye and Developer and Solvent and A temperature sensor comprising a reversible thermochromic color change system comprising: Upon exposure to a preselected temperature threshold, the association or dissociation of the dye and the developer results in a visible color change; the color change system includes a color memory property that facilitates retention of the color change to record the exposure to the temperature threshold; The solvent comprises a mixture of (i) one ester having Formula I and a first R group and another ester having Formula I and a second R group different from the first R group, (ii) one ester having Formula III and another ester having Formula IV, or (iii) one ester having Formula VII and another ester having Formula VIII: 【Chemistry 15】 R of formula I can be (i) a straight or branched chain alkyl group, (ii) a straight or branched chain alkenyl group, or (iii) a straight or branched chain alkynyl group, any of which can be unsubstituted or substituted; and R of formula I can have 5, 7, 9, 11, 13, or 19 carbon atoms; 【Chemistry 16】 m and n of Formula VII can each be an integer from 1 to 15; and 【Chemistry 17】 The temperature sensor wherein m and n in formula VIII can each be an integer from 2 to 15.
2. A temperature sensor as described in claim 1, wherein the dye includes a leuco dye that reversibly changes between a substantially colorless state and a visibly colored state.
3. The color change system is a color-changing temperature at which the leuco dye changes to the colored state; and a bleaching temperature at which the leuco dye changes from the colored state; Including, The temperature sensor of claim 2 , wherein the coloring temperature is different from the bleaching temperature.
4. The color change system is a color-changing temperature at which the leuco dye changes to the colored state; and a bleaching temperature at which the leuco dye changes to the colorless state; Including, The temperature sensor of claim 3 , wherein the coloring temperature is different from the bleaching temperature.
5. The temperature sensor according to claim 3 , wherein the coloring temperature is lower than the bleaching temperature.
6. 4. The temperature sensor of claim 3, wherein the coloring temperature differs from the bleaching temperature by about 40° C. to about 100° C.
7. 4. The temperature sensor of claim 3, wherein the coloring temperature differs from the bleaching temperature by about 45° C. to about 100° C.
8. 4. The temperature sensor of claim 3, wherein the coloring temperature differs from the bleaching temperature by about 50° C. to about 100° C.
9. 2. The temperature sensor of claim 1, wherein the color change system is contained such that the dye, the developer and the solvent are encapsulated together.
10. 10. The temperature sensor of claim 1, wherein the color change system is encapsulated within a capsule to provide an encapsulated color change system.
11. 10. The temperature sensor of claim 1, wherein the color change system is encapsulated in a microcapsule to provide a microencapsulated color change system.
12. The temperature sensor of claim 1 , wherein the color change system is incorporated into a coating.
13. The temperature sensor of claim 1 , wherein the color change system is incorporated into an ink.
14. The temperature sensor of claim 13, wherein the ink is formulated for application to a substrate via printing.
15. The temperature sensor of claim 13, wherein the ink is formulated for application to a substrate via medium or high speed printing.
Citation Information
Patent Citations
Thermochromic color-memory composition, and thermochromic color-memory microcapsule pigment including it
JP2006188660A