Photoinduced thermochromic or thermoluminescent compositions
The use of metallic gold nanoparticles to convert NIR radiation into heat in photoinduced thermochromic or thermoluminescent compositions addresses synthesis complexity and degradation issues, enabling efficient and durable materials for optical components, therapy, and diagnostics.
Patent Information
- Application Number
- JP2022533323
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-05
- Filing Date
- 2020-12-03
- Publication Date
- 2025-11-17
- Estimated Expiration
- 2040-12-03
AI Technical Summary
Existing photoactive functional materials, particularly those active in the NIR range, face challenges such as complex synthesis, high excitation power density requirements, degradation due to harmful UV radiation, and inefficient photochemical processes, and ineffective matrix integration processes, and ineffective matrix integration processes.
The use of metallic gold nanoparticles to absorb NIR radiation and convert it into heat, combined with a PCM, and one or more chromic or fluorochromic promoters, and one or more dyes, to achieve a photoinduced thermochromic or thermoluminescent composition with improved absorptivity, photostability, and spectral tunability.
The composition exhibits tunable, rapid, and clear photoresponse with strong color and/or emission changes, avoiding photodegradation and matrix effects, and enabling applications in optical components, therapy, cosmetics, and diagnostics.
Smart Images

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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of European Patent Application EP19383086.6, filed December 5, 2019.
[0002] The present invention relates to photoactive functional materials. In particular, the present invention relates to photoinduced thermochromic or thermoluminescent compositions containing nanoparticles, phase change materials (PCMs), and dyes, and to articles containing them. The present invention also relates to their preparation processes and uses in therapy, cosmetics, diagnostics, and optical components (lenses). [Background technology]
[0003] Photoactive functional materials, particularly photoresponsive chromic and luminescent materials, are smart systems capable of responding to optical stimuli. These materials have been proposed for applications in a wide variety of fields, including optical components, electronics, medicine, and imaging, among others. The key component of these functional materials is the photochromic unit, which typically consists of an organic photoisomerizable compound (e.g., azobenzene, spiropyran, etc.) that can interconvert between different states with distinct absorption and / or emission spectra. As a result, their color and / or fluorescence change under illumination if the absorption / emission properties of one of the two states (isomers) differ. Alternatively, photochromes can be coupled to non-photoisomerizable fluorophores to achieve luminescence modulation through engineered interchromophore interactions (e.g., photoinduced energy or electron transfer) in one of the photochrome's two isomeric forms. In either case, a molecular photoswitch is required to obtain a photoswitchable material.
[0004] More recently, much research has been conducted to shift the photoresponse of fluorescent modulation units from the high-energy UV region to the harmless visible-near-infrared (NIR) spectral range. NIR-responsive photoswitchable dyes not only improve their basic material functionality (e.g., fatigue resistance or suppression of eventual destructive readout), but are also relevant for biomedical applications (i.e., less tissue photodamage, deeper light penetration in biological environments) or solar energy-related applications (harnessing the NIR portion of solar radiation). Currently, NIR-responsive switchable materials are realized through i) straightforward molecular design and synthesis of photoswitches that absorb at lower frequencies (although not straightforward); ii) multiphoton absorption of dye or switch sensitizers; or iii) the use of NIR-absorbing (photoinduced electron transfer, triplet, singlet) sensitizers or nanoparticle upconversion.
[0005] However, while photochrome-based functional materials have the inherent advantage of using light as an external stimulus, which is a remote and non-invasive stimulus with precise temporal and spatial control, these materials, especially those developed to be active in the NIR range, suffer from several drawbacks, including the following: They are still complex and time-consuming to synthesize and / or require high excitation power densities to actuate the switching units. They involve direct or sensitized isomerizable molecules (cis-trans or ring-opening / closing reactions), limiting the choice of color / fluorescence modifiers to certain classes of molecules (e.g., spiropyrans, chromenes, azobenzenes, diarylethenes, among others). This is even more evident when long wavelength response systems (e.g., NIR) are required, where the availability of commercial photochromes is quite limited. Their photoinduced manipulation is far from optimal, as they often exhibit limited photoisomerization probability and / or efficiency (low quantum yield). Particularly when harmful UV radiation is used, continuous illumination (direct excitation) causes significant photodegradation effects. When used in the solid state or dispersed in a solid matrix, additional detrimental effects on the photoinduced behavior of photochromes are often observed relative to solutions (eg, matrix effects that inhibit photochromic performance). Because light is required to both change and monitor the state of the system, undesirable photochromic interconversions can occur when measuring the color and / or luminescence of materials, which can be a severe limitation (i.e., destructive readout) in some applications. Summary of the Invention
[0006] Therefore, there remains a need to provide improved processes for preparing NIR light-switchable chromic and luminescent materials from those known in the state of the art.
[0007] The present inventors have surprisingly provided highly efficient light-switchable materials through photoinduced thermochromic or thermoluminescent compositions. In particular, the present inventors have found that the compositions of the present invention exhibit higher absorptivity, photostability, and spectral tunability than compositions disclosed in the state of the art. These compositions comprise nanoparticles, particularly metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat, one or more PCMs, and one or more dyes.
[0008] In particular, the inventors have discovered that the use of nanoparticles, particularly metallic gold nanoparticles, capable of absorbing NIR radiation and converting near-infrared radiation to heat, in combination with a PCM can facilitate a phase change (solid to liquid) of the PCM after excitation of the photoinduced thermochromic or thermoluminescent compositions of the present invention with low energy (i.e., NIR) and low power density radiation. This phase change (i.e., melting / solidification) of the PCM of the present invention alters the absorption / emission properties of the dye, resulting in a color or emission change.
[0009] Furthermore, the photoinduced thermochromic or thermoluminescent compositions of the present invention are also advantageous due to the use of low-energy radiation (i.e., NIR) and activation of nanoparticles, particularly metallic gold nanoparticles, with wavelengths in the NIR range, thereby avoiding the undesirable photochemical processes disclosed in the state of the art that accompany the use of high-energy radiation (i.e., harmful UV) to induce direct photoexcitation of photochromic dyes. The use of low-energy radiation therefore ensures an extended useful life for these materials by preventing degradation of the composition components.
[0010] The behavior of the dyes (both chromium compounds and / or luminescent compounds) included in the photoinduced thermochromic or thermoluminescent compositions of the present invention can be tailored by varying the type and / or concentration of the dye, PCM, nanoparticles, excitation power density, and / or the presence of additional chromic or fluorochromic promoters. For purposes of the present invention, dye behavior refers to the type of color / emission, kinetic response, and / or color / emission intensity.
[0011] The compositions of the present invention also have a low content of NIR absorbing nanoparticles, especially metal nanoparticles, and a uniform distribution of the NIR absorbing nanoparticles, which is advantageous as it does not affect the final color of the material and allows maintaining the homogeneity and intensity of the color or emission change in all compositions.
[0012] In summary, the advantages of the photoinduced thermochromic or thermoluminescent compositions of the present invention can be associated with the combination of the components of the compositions and the use of nanoparticles, particularly metallic gold nanoparticles, as triggering agents for the color / luminescence change. These advantages are listed herein as follows: The preparation of tunable nanoparticles, particularly metallic gold nanoparticles, that can absorb NIR radiation and convert the NIR radiation into heat as a trigger unit, and photoinduced thermochromic or thermoluminescent compositions containing the same, is easier than the preparation of NIR-absorbing molecular dyes and compositions containing them. The nanoparticles present in the composition of the present invention, capable of absorbing NIR radiation and converting it into heat, in particular metallic gold nanoparticles, have the advantages of higher absorption, photostability, photothermal efficiency and easy spectral tunability over organic dyes, and allow the use of low power NIR radiation to induce a change in state of the PCM from solid to liquid (melting). The compositions of the present invention do not consider direct or sensitized photoisomerization for absorption / emission modulation, avoiding typical problems associated with photochromes such as low photoisomerization quantum yield, photodegradation, destructive readout or complex design of energy / electron transfer schemes, and providing access to a wider range of dyes for constructing color or luminescent photoswitches. Decoupling the trigger unit from the color / emission changing dye (by absorbing in the NIR) allows for the use of UV filters in the end application, ensuring a much higher degree of protection for the dye and reduced fatigue resistance (making the material more durable). Contrary to what occurs with standard T-type photochromic materials disclosed in the state of the art, which are outside the scope of the present invention, in the compositions of the present invention the photoactivated state becomes more favorable at higher temperatures, which cannot be achieved by using standard T-type photochromic materials, whose equilibrium shifts toward the non-photoactivated state as the temperature increases.
[0013] Thus, the photoinduced thermochromic or thermoluminescent compositions of the present invention have several advantages over the state of the art, as shown by the experimental data disclosed in the examples: primarily, they have tunable, rapid and clear photoresponse and strong changes in color and / or emission.
[0014] Accordingly, a first aspect of the present invention is a photoinduced thermochromic or thermoluminescent composition comprising: a) nanoparticles capable of absorbing near-infrared radiation (NIR) and converting the NIR radiation into heat; b) one or more phase change materials (PCMs), the one or more PCMs being selected from the group consisting of: b1) PCMs capable of acting as chromic or fluorochromic promoters, and b2) PCMs incapable of acting as chromic or fluorochromic promoters; c) one or more dyes, the one or more dyes being selected from the group consisting of: c1) dyes capable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state, and c2) dyes incapable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state, wherein the PCM is incapable of acting as a chromic or fluorochromic promoter (b2) and the PCM is incapable of changing between a solid state and a liquid state. (c2) if the dye cannot change its color or luminescence properties when the PCM is converted into a solid or liquid state, the photo-induced thermochromic or thermoluminescent composition further comprises one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; or alternatively, (b1) if at least the PCM can act as a chromic promoter or fluorochromic promoter; or (c1) if the dye can change its color or luminescence properties when the PCM is converted into a solid or liquid state, the photo-induced thermochromic or thermoluminescent composition optionally comprises (d) one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; and the nanoparticles (a) are metallic gold nanoparticles capable of absorbing near-infrared (NIR) radiation and converting NIR radiation into heat.
[0015] A second aspect of the present invention relates to a photoinduced thermochromic or thermoluminescent freestanding film comprising the photoinduced thermochromic or thermoluminescent composition according to the first aspect of the present invention, one or more polymers, and optionally one or more excipients.
[0016] A third aspect of the present invention relates to a photoinduced thermochromic or thermoluminescent article comprising a composition according to the first aspect of the present invention, or alternatively a free-standing film according to the second aspect of the present invention.
[0017] A fourth aspect of the present invention relates to the use in an optical component of a photoinduced thermochromic or thermoluminescent composition comprising: a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing near-infrared radiation (NIR) and converting the NIR radiation into heat; b) one or more phase change materials (PCMs), the one or more PCMs being selected from the group consisting of: b1) PCMs capable of acting as chromic or fluorochromic promoters, and b2) PCMs incapable of acting as chromic or fluorochromic promoters; c) one or more dyes, the one or more dyes being selected from the group consisting of: c1) dyes capable of changing their color or luminescence properties when the PCM changes between a solid state and a liquid state, and c2) dyes incapable of changing their color or luminescence properties when the PCM changes between a solid state and a liquid state; If the photoinduced thermochromic or thermoluminescent composition further comprises one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators, or alternatively, at least the PCM can act as a chromic promoter or fluorochromic promoter (b1), or the dye can change its color or luminescence properties when the PCM changes between a solid state and a liquid state (c1), then the photoinduced thermochromic or thermoluminescent composition may comprise (d) Use in an optical component of a photoinduced thermochromic or thermoluminescent composition, optionally comprising one or more chromic or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers and luminescence activators, or alternatively use in an optical component of a photoinduced thermochromic or thermoluminescent free-standing film, comprising a photoinduced thermochromic or thermoluminescent composition, one or more polymers, and optionally one or more excipients, or alternatively comprising a photoinduced thermochromic or thermoluminescent composition or free-standing film.The use of photoinduced thermochromic or thermoluminescent articles in optical components.
[0018] A fifth aspect of the present invention relates to use for anti-counterfeiting technology, wherein the photoinduced thermochromic or thermoluminescent composition comprises: a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing near-infrared radiation (NIR) and converting the NIR radiation into heat; b) one or more phase change materials (PCMs), the one or more PCMs being selected from the group consisting of: b1) PCMs capable of acting as chromic or fluorochromic promoters, and b2) PCMs incapable of acting as chromic or fluorochromic promoters; c) one or more dyes, the one or more dyes being selected from the group consisting of: c1) dyes capable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state, and c2) dyes incapable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state, wherein the PCM is incapable of acting as a chromic or fluorochromic promoter (b2) and the PCM is incapable of acting as a chromic or fluorochromic promoter (b3). (c2) if the dye cannot change its color or luminescence properties when changing between a solid state and a liquid state, the photoinduced thermochromic or thermoluminescent composition further comprises one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators, or alternatively, (b1) if at least the PCM can act as a chromic promoter or fluorochromic promoter, or (c1) if the dye can change its color or luminescence properties when the PCM changes between a solid state and a liquid state, the photoinduced thermochromic or thermoluminescent composition optionally comprises (d) one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators, or alternatively, the photoinduced thermochromic or thermoluminescent composition, one or more polymers.and optionally one or more excipients, or alternatively, to the use of a light-induced thermochromic or thermoluminescent article comprising a light-induced thermochromic or thermoluminescent composition or free-standing film for anti-counterfeiting technology. DETAILED DESCRIPTION OF THE INVENTION
[0019] All terms used herein in this application are to be understood in their ordinary sense as known in the art, unless otherwise specified. Other more specific terms used in this application are as follows, and shall apply uniformly throughout the specification and claims, unless an expressly defined definition provides a broader definition.
[0020] For purposes of the present invention, all given ranges include both the lower and upper endpoints of the range. Given ranges of temperature, time, weight, etc. should be considered approximations unless otherwise specified.
[0021] As mentioned above, the present invention relates to photoinduced thermochromic or thermoluminescent compositions. The term "photoinduced" refers to the fact that the effect is induced by the action of light. For purposes of the present invention, the color or luminescence change is induced by irradiation with light, particularly NIR radiation. The term "thermochromic" refers to compositions that can change or vary their color (hue) in response to temperature fluctuations. Therefore, for purposes of the present invention, a "photoinduced thermochromic" composition refers to a composition that can change or vary its absorption spectrum (color) with temperature fluctuations promoted by irradiation, particularly NIR radiation. Furthermore, the term "thermoluminescent" refers to a composition that can change or vary its luminescence ability in response to temperature fluctuations. Therefore, for purposes of the present invention, a "photoinduced thermoluminescent" composition refers to a composition that can change or vary its luminescence with temperature fluctuations promoted by irradiation, particularly NIR radiation.
[0022] In one embodiment, the photoinduced thermochromic or thermoluminescent composition comprises: a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters in the solid and / or liquid state; c) one or more dyes (c2) whose color or luminescence properties cannot be changed when the PCM changes between the solid and liquid states; Optionally, d) one or more chromic or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (b2) that are not capable of acting as chromic or fluorochromic promoters in the solid and / or liquid state; c) one or more dyes (c1) capable of changing the color or luminescence properties when the PCM changes between the solid and liquid states, and Optionally, d) one or more chromic or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters in the solid and / or liquid state; c) one or more dyes (c1) capable of changing the color or luminescence properties when the PCM changes between the solid and liquid state; Optionally, d) one or more chromic or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; and a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (b2) that are not capable of acting as chromic or fluorochromic promoters in the solid and / or liquid state; c) one or more dyes (c2) whose color or luminescence properties cannot be changed when the PCM changes between the solid and liquid states, and d) one or more chromic or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; is selected from the group consisting of:
[0023] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises: a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters in the solid and / or liquid state; c) one or more dyes (c2) whose color or luminescence properties cannot be changed when the PCM changes between the solid and liquid states, and Optionally, d) one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators.
[0024] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises: a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (b2) that are not capable of acting as chromic or fluorochromic promoters in the solid and / or liquid state; c) one or more dyes (c1) capable of changing the color or luminescence properties when the PCM changes between the solid and liquid states, and Optionally, d) one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators.
[0025] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises: a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters in the solid and / or liquid state; c) one or more dyes (c1) capable of changing the color or luminescence properties when the PCM changes between the solid and liquid states, and Optionally, d) one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators.
[0026] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises: a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (b2) that are not capable of acting as chromic or fluorochromic promoters in the solid and / or liquid state; c) one or more dyes (c2) whose color or luminescence properties cannot be changed when the PCM changes between the solid and liquid states, and d) It comprises one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators.
[0027] material composition
[0028] nanoparticles
[0029] The compositions of the present invention comprise nanoparticles, particularly metallic gold nanoparticles, capable of absorbing NIR radiation and converting it into heat. As disclosed above, these nanoparticles are capable of absorbing NIR radiation and converting it into thermal energy (heat), thereby changing the state of the PCM from a solid state to a liquid state.
[0030] For purposes of the present invention, nanoparticles capable of absorbing NIR radiation and converting it to heat absorb NIR radiation having a wavelength between 600 nm and 2200 nm. In one embodiment, nanoparticles capable of absorbing NIR radiation and converting it to heat absorb NIR radiation having a wavelength between 650 nm and 1600 nm. In one embodiment, nanoparticles capable of absorbing NIR radiation and converting it to heat absorb NIR radiation having a wavelength between 700 nm and 1200 nm. In one embodiment, nanoparticles capable of absorbing NIR radiation and converting it to near-infrared radiation absorb NIR radiation having a wavelength between 700 nm and 900 nm. In a specific embodiment, nanoparticles capable of absorbing NIR radiation and converting it to heat absorb NIR radiation having a wavelength of 830 nm.
[0031] In one embodiment, the nanoparticles capable of absorbing NIR radiation and converting near-infrared radiation to heat are non-metallic nanoparticles capable of absorbing NIR radiation and converting near-infrared radiation to heat.
[0032] In one embodiment, the nanoparticles capable of absorbing NIR radiation and converting it to heat are metal nanoparticles (MPs) capable of absorbing NIR radiation and converting it to heat. For purposes of the present invention, the terms "metal nanoparticles capable of absorbing NIR radiation and converting it to heat," "NIR-absorbing metal nanoparticles," and "NIR-absorbing MPs" have the same meaning and are used interchangeably. The abbreviation "MP" stands for metal nanoparticles.
[0033] The presence of NIR absorbing MPs, in particular metallic gold nanoparticles, in the compositions of the present invention is advantageous because it allows: - the color contribution of MPs to the materials in which they are included can be minimized or eliminated; -Selective irradiation of MPs with NIR light without exciting the dye can prevent photodegradation of MPs; - low energy radiation can be used that does not cause harmful effects on the material or substrate; -High photothermal efficiency can be achieved by irradiating with NIR radiation without using a large amount of MP; Highly penetrating radiation (not absorbed by other material components) can be used, which can activate color / luminescent switches in materials or deeper in biological tissue.
[0034] In one embodiment, the composition comprises NIR-absorbing MPs having a particle size of 5-500 nm. In one embodiment, the composition comprises NIR-absorbing MPs having a particle size of 5-100 nm. The composition comprises NIR-absorbing MPs having a particle size of 50-90 nm. The term "particle size" refers to the size of the particles measured in nm. Measurements were performed by conventional analytical techniques, such as microscopy using a scanning electron microscope (SEM) or a transmission electron microscope (TEM), using appropriate equipment. In the present invention, particle size was measured using dynamic light scattering (DLS, z-sizer) techniques. This data was then analyzed using a generalized model to calculate the size of the particles that generated the scattering pattern, assuming a spherical particle shape. The terms "particle size distribution" and "PSD" have the same meaning and are used interchangeably. They refer to the size distribution of the prepared particles.
[0035] In one embodiment, the composition of the present invention comprises a NIR-absorbing MP wherein the metal is selected from the group consisting of gold, platinum, silver, palladium, rhodium, osmium, ruthenium, rhodium, rhenium, molybdenum, copper, iron, nickel, tin, beryllium, cobalt, antimony, chromium, manganese, zirconium, tin, zinc, tungsten, titanium, vanadium, lanthanum, cerium, alloys thereof, oxides thereof, and mixtures thereof. In one embodiment, the composition of the present invention comprises a NIR-absorbing MP wherein the metal is selected from the group consisting of gold, platinum, palladium, silver, copper, aluminum, alloys thereof, oxides thereof, and mixtures thereof. In one embodiment, the composition of the present invention comprises an NIR-absorbing MP wherein the metal is selected from the group consisting of gold, platinum, silver, palladium, rhodium, osmium, ruthenium, rhodium, rhenium, molybdenum, iron, nickel, tin, beryllium, cobalt, antimony, chromium, manganese, zirconium, tin, zinc, tungsten, titanium, vanadium, lanthanum, cerium, alloys thereof, oxides thereof, and mixtures thereof. In one embodiment, the composition of the present invention comprises an NIR-absorbing MP wherein the metal is selected from the group consisting of gold, platinum, palladium, silver, aluminum, alloys thereof, oxides thereof, and mixtures thereof. In a specific embodiment, the composition of the present invention comprises an NIR-absorbing MP wherein the metal is gold, oxides thereof, and mixtures thereof. In a specific embodiment, the composition of the present invention comprises an NIR-absorbing MP wherein the metal is silver, oxides thereof, and mixtures thereof.
[0036] As used herein, the term "nanoparticle" refers to a particle having nanoscale dimensions, i.e., a diameter of 5-500 nm, and of any size, shape, or morphology. As used herein, the term nanoparticle can include spherical nanoparticles and non-spherical nanoparticles. In one embodiment, the composition of the present invention comprises NIR-absorbing nanoparticles in a form selected from the group consisting of nanospheres, nanostars, nanodumbbells, nanotubes, nanoshells, nanorods, nanocages, nanohalfshells, nanodomes, and nanopyramids. In one embodiment, the composition of the present invention comprises NIR-absorbing nanoparticles in a form selected from the group consisting of nanospheres, nanoshells, and nanorods. In one embodiment, the composition of the present invention comprises NIR-absorbing nanoparticles in the form of nanoshells.
[0037] The term "nanoshell" refers to a type of nanoparticle characterized by a distinct core-shell structure in which the shell surrounds at least a portion of the core. The core of a nanoshell may be hollow (i.e., empty or gas-filled) or may be filled with a liquid (aqueous, oil, etc.) or solid (i.e., polymer) that is different from the liquid or solid of the shell.
[0038] The term "nanosphere" refers to a type of nanoparticle characterized by a spherical or nearly spherical solid structure.
[0039] The term "nanorod" refers to a type of nanoparticle characterized by a solid structure and an anisotropic rod-like shape having longitudinal and transverse axes of different lengths.
[0040] In one embodiment, the composition of the present invention is one in which the NIR-absorbing MP is a gold nanoshell.
[0041] In one embodiment, the compositions of the invention comprise NIR-absorbing MPs in an amount of 0.00005 mg to 0.5 mg per mg of PCM, in particular 0.00024 mg to 0.15 mg per mg of PCM. The compositions of the invention therefore advantageously comprise a low content of nanoparticles, which reduces the cost of the final material and allows minimizing or eliminating optical variations in the material containing the MPs resulting from the color of the NIR-absorbing MPs.
[0042] PCM
[0043] The compositions of the present invention comprise one or more phase change materials (hereinafter PCMs). As noted above, PCMs are substances that exhibit a high latent heat of fusion, storing and releasing large amounts of energy upon melting and solidifying, respectively. For purposes of the present invention, the term "PCM" refers to a material that can change from a solid state to a liquid state upon absorption of heat, and from a liquid state to a solid state upon release of heat.
[0044] The compositions of the present invention comprise one or more PCMs selected from the group consisting of b1) PCMs that can act as chromic or fluorochromic promoters, and b2) PCMs that cannot act as chromic or fluorochromic promoters.
[0045] In one embodiment, the composition comprises one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters. The term "capable of acting as a chromic or fluorochromic promoter" refers to a compound that can initiate a change in color and / or emission properties (position and intensity of absorption / emission bands) and can modulate the rate of change of the color or emission properties. In one embodiment, the composition comprises one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters. In one embodiment, the composition comprises one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters that are other than alkane-, alkene-, and alkyne-containing PCMs. In one embodiment, the composition comprises one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters that are selected from the group consisting of acid-containing compounds, amine-containing compounds, sulfur-containing compounds, alcohol-containing compounds, and mixtures thereof. In one embodiment, the composition comprises one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters selected from the group consisting of sulfur-containing compounds selected from the group consisting of acid-containing compounds, amine-containing compounds, thiol-containing compounds, sulfate-containing compounds, sulfonate-containing compounds, and mixtures thereof, alcohol-containing compounds, and mixtures thereof.
[0046] In one embodiment, the composition comprises (C1-C 30 )-Alkyl-COOH, (C1-C 30 )-Alkyl-COO(C1-C 30 ) alkyl, (C1-C 30 )-Alkyl-OH, (C1-C 30 )-Alkyl-O-(C1-C 30 ) alkyl, (C1-C 20 )-Alkyl-NH2, (C1-C 20 )-Alkyl-NH((C1-C 20 ) alkyl)2, (C1-C 20 )-Alkyl-N((C1-C 20) alkyl)3, (C1-C 20 )-Alkyl-NH-CO-(C1-C 20 )-alkyl, (C1-C 20 )-Alkyl-N(CO-(C1-C 20 )-alkyl)2, (C2-C 30 )-alkenyl-COOH, (C-C 30 )-Alkenyl-COO(C-C 30 ) alkenyl, (C2-C 30 )-alkenyl-OH, (C-C 30 )-alkenyl-O-(C2-C 30 ) alkenyl, (C2-C 20 )-alkenyl-NH2, (C2-C 20 )-alkenyl-NH((C-C 20 ) alkenyl)2, (C2-C 20 )-alkenyl-N((C-C 20 ) alkenyl)3, (C2-C 20 )-Alkenyl-NH-CO-(C2-C 20 )-alkenyl, (C2-C 20 )-alkenyl-N(CO-(C-C 20 )-alkenyl)2, (C1-C 30 )-Alkyl-O-(C2-C 30 ) alkenyl, (C2-C 30 )-alkenyl-O-(C1-C 30 ) alkyl, (C1-C 20 )-Alkyl-NH-CO-(C2-C 20 )-alkenyl, (C2-C 20 )-alkenyl-NH-CO-(C1-C 20 )-alkyl, (C1-C 20 )-Alkyl-N(CO-(C2-C 20 )-alkenyl)2, (C2-C 20 )-alkenyl-N(CO-(C1-C 20 )-Alkyl)2,C2-C 30 )-alkynyl-COOH, (C-C 30 )-Alkynyl-COO(C-C 30 ) alkynyl, (C2-C 30 )-alkynyl-OH, (C-C30 )-Alkynyl-O-(C2-C 30 )-alkynyl, (C2-C 20 )-alkynyl-NH2, (C2-C 20 )-alkynyl-NH((C-C 20 )alkynyl)2, (C2-C 20 )-alkynyl-N((C2-C 20 )alkynyl)3, (C2-C 20 )-alkynyl-NH-CO-(C2-C 20 )-alkynyl, (C2-C 20 )-alkynyl-N(CO-(C-C 20 )-alkynyl)2, (C1-C 30 )-Alkyl-O-(C2-C 30 )-alkynyl, (C2-C 30 )-Alkynyl-O-(C1-C 30 )-Alkyl, (C5-C 20 )-Alkyl-NH-CO-(C2-C 20 )-alkynyl, (C2-C 20 )-alkynyl-NH-CO-(C1-C 20 )-alkyl, (C1-C 20 )-Alkyl-N(CO-(C2-C 20 )-alkynyl)2, (C2-C 20 )-alkynyl-N(CO-(C1-C 20 The present invention further comprises one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters selected from the group consisting of 2-alkyl-2-hydroxybenzoates, 2-methyl-2- ...
[0047] In one embodiment, the composition comprises (C4-C 30 )-Alkyl-COOH, (C1-C 30 )-Alkyl-COO(C1-C 30 ) alkyl, (C8-C 30 )-Alkyl-OH, (C1-C 30 )-Alkyl-O-(C1-C 30 ) alkyl, (C5-C 20 )-Alkyl-NH2, (C1-C 20 )-Alkyl-NH((C1-C20 ) alkyl)2, (C1-C 20 )-Alkyl-N((C1-C 20 ) alkyl)3, (C5-C 20 )-Alkyl-NH-CO-(C1-C 20 )-alkyl, (C1-C 20 )-Alkyl-N(CO-(C1-C 20 )-Alkyl)2, (C4-C 30 )-alkenyl-COOH, (C-C 30 )-Alkenyl-COO(C-C 30 ) alkenyl, (C8-C 30 )-alkenyl-OH, (C-C 30 )-alkenyl-O-(C2-C 30 ) alkenyl, (C5-C 20 )-alkenyl-NH2, (C2-C 20 )-alkenyl-NH((C-C 20 ) alkenyl)2, (C2-C 20 )-alkenyl-N((C2-C 20 ) alkenyl)3, (C5-C 20 )-Alkenyl-NH-CO-(C2-C 20 )-alkenyl, (C2-C 20 )-alkenyl-N(CO-(C-C 20 )-alkenyl)2, (C1-C 30 )-Alkyl-O-(C2-C 30 ) alkenyl, (C2-C 30 )-alkenyl-O-(C1-C 30 ) alkyl, (C5-C 20 )-Alkyl-NH-CO-(C2-C 20 )-alkenyl, (C5-C 20 )-alkenyl-NH-CO-(C1-C 20 )-alkyl, (C1-C 20 )-Alkyl-N(CO-(C2-C 20 )-alkenyl)2, (C2-C 20 )-alkenyl-N(CO-(C1-C 20 )-Alkyl)2,C4-C 30 )-alkynyl-COOH, (C-C 30)-Alkynyl-COO(C-C 30 ) alkynyl, (C8-C 30 )-alkynyl-OH, (C-C 30 )-Alkynyl-O-(C2-C 30 ) alkynyl, (C5-C 20 )-alkynyl-NH2, (C2-C 20 )-alkynyl-NH((C-C 20 )alkynyl)2, (C2-C 20 )-alkynyl-N((C2-C 20 )alkynyl)3, (C5-C 20 )-alkynyl-NH-CO-(C2-C 20 )-alkynyl, (C2-C 20 )-alkynyl-N(CO-(C-C 20 )-alkynyl)2, (C1-C 30 )-Alkyl-O-(C2-C 30 )-alkynyl, (C2-C 30 )-Alkynyl-O-(C1-C 30 )-Alkyl, (C5-C 20 )-Alkyl-NH-CO-(C2-C 20 )-alkynyl, (C5-C 20 )-alkynyl-NH-CO-(C1-C 20 )-alkyl, (C1-C 20 )-Alkyl-N(CO-(C2-C 20 )-alkynyl)2, (C2-C 20 )-alkynyl-N(CO-(C1-C 20 The present invention further comprises one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters selected from the group consisting of 2-alkyl-2-hydroxybenzoates, 2-methyl-2- ...
[0048] In one embodiment, the composition of the present invention comprises one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters selected from the group (C4-C 30In one embodiment, the composition of the present invention is a composition in which the one or more PCMs (b1) capable of acting as a chromic promoter or a fluorochromic promoter are selected from the group consisting of dodecanoic acid, stearic acid, and mixtures thereof. In one embodiment, the composition of the present invention is a composition in which the one or more PCMs (b1) capable of acting as a chromic promoter or a fluorochromic promoter are selected from the group (C1-C2) consisting of methyl palmitate, methyl stearate, and methyl arachidate and isomers thereof. 30 )-Alkyl-COO(C1-C 30 In one embodiment, the composition of the present invention is a composition in which one or more PCMs (b1) capable of acting as chromic promoters or fluorochromic promoters are selected from (C8-C 30 The term "alkyl-OH" refers to a saturated, branched, or straight chain hydrocarbon containing a number of carbon atoms as specified in the specification or claims, in which at least one of the hydrogen atoms has been replaced with a hydroxyl group. In one embodiment, the composition of the present invention comprises one or more PCMs (b1) capable of acting as a chromic promoter or a fluorochromic promoter, the PCMs (b1) being (C8-C 30 In one embodiment, the composition of the present invention is a composition in which one or more PCMs (b1) capable of acting as chromic promoters or fluorochromic promoters are selected from (C8-C 30 In one embodiment, the composition of the present invention is a composition in which one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters are selected from the group consisting of (C1-C 20 )-Alkyl-NH2, (C1-C 20 )-Alkyl-NH-(C1-C 20 ) alkyl, (C1-C20 )-Alkyl-N((C1-C 20 ) alkyl)2, (C5-C 20 )-Alkyl-NH-CO-(C1-C 20 )-alkyl, (C1-C 20 )-Alkyl-N(CO-(C1-C 20 In one embodiment, the composition of the present invention is a composition in which one or more PCMs (b1) capable of acting as a chromic promoter or a fluorochromic promoter are selected from the group consisting of (C1-C 20 )-alkyl-NH2, such as 1-hexadecylamine, 1-octadecylamine, and mixtures thereof. In one embodiment, the composition of the present invention is a composition in which the PCM (b1) capable of acting as a chromic or fluorochromic promoter is 1-octadecylamine. In one embodiment, the composition of the present invention comprises one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters that are triglycerides. In one embodiment, the composition of the present invention is a composition in which the one or more PCMs (b1) capable of acting as chromic or fluorochromic promoters are triglycerides selected from the group consisting of glyceryl trinonanoate, glyceryl trilaurate, glyceryl trimyristate, glyceryl tripalmitate, and glyceryl tristearate. The term "triglyceride" refers to a triglyceride consisting of glycerol and, in particular, CH2(OCO(C1-C 30 ) alkyl)-CH(OCO(C1-C 30 ) alkyl)-CH2(OCO(C1-C 30 and one, two, or three fatty acids selected from the group consisting of: (a) alkyl; (b) carboxylic acids; and (c) alkyl. Each "alkyl" term independently refers to a saturated straight or branched hydrocarbon chain containing the number of carbon atoms specified in the specification or claims.
[0049] The compositions of the present invention comprise one or more PCMs (b2) that are incapable of acting as chromic or fluorochromic promoters. The term "incapable of acting as chromic or fluorochromic promoters" refers to compounds that are incapable of initiating a color or luminescence change, improving the rate of change, and / or increasing the chromic or fluorochromic dynamic range. In one embodiment, the composition comprises one or more PCMs (b2) that are incapable of acting as chromic or fluorochromic promoters selected from the group consisting of alkane-based PCMs, alkene-based PCMs, alkyne-based PCMs, and mixtures thereof. In one embodiment, the composition comprises one or more PCMs (b2) that are incapable of acting as chromic or fluorochromic promoters selected from the group consisting of (C8-C 52 ) alkane-based PCM, (C 14 -C 50 ) alkene-based PCM, (C 14 -C 50 In one embodiment, the composition comprises one or more PCMs (b2) that are not capable of acting as chromic or fluorochromic promoters and are selected from the group consisting of (C) alkyne-based PCMs and mixtures thereof. 10 -C 52 ) alkane-based PCM, (C 16 -C 50 ) alkene-based PCM, (C 16 -C 50 In one embodiment, the composition comprises one or more PCMs (b2) selected from the group consisting of (C ) alkynes and mixtures thereof, which are unable to act as chromic or fluorochromic promoters. 10 -C 52 ) alkane-based PCM, (C 16 -C 50 ) Alkene-based PCMs (e.g., 1-hexadecene, eicosene), (C 16 -C 50 ) Alkyne-based PCMs (e.g., 1-hexadecyne), (C 16 -C 50 ) alkene-based PCMs and PCMs containing two or more alkynes (diene) or alkyne functional groups (C 16 -C 50In one embodiment, the composition comprises one or more PCMs (b2) that are not capable of acting as chromic or fluorochromic promoters and are selected from the group consisting of (C) alkyne-based PCMs and mixtures thereof. 10 -C 52 The composition of the present invention includes one or more PCMs (b2) that are alkane-based PCMs and are incapable of acting as chromic or fluorochromic promoters. The term "alkane" refers to a saturated branched or straight-chain hydrocarbon containing a number of carbon atoms as specified in the specification or claims. The term "alkene" refers to a branched or straight-chain hydrocarbon containing a number of carbon atoms as specified in the specification or claims and having at least one carbon-carbon double bond. The term "alkyne" refers to a branched or straight-chain hydrocarbon containing a number of carbon atoms as specified in the specification or claims and having at least one carbon-carbon triple bond. In one embodiment, the composition of the present invention includes one or more PCMs that are incapable of acting as chromic or fluorochromic promoters, selected from the group consisting of tetradecane, pentadecane, eicosane (EC), tetracosane, hexacosane, octacosane (OC), nonacosane, triacontane, dotriacontane, tritriacontane, tetracontane, tetratetratetracontane, pentacontane, and tetrapentacontane. In particular, the compositions of the present invention comprise one or more PCMs that are incapable of acting as chromic or fluorochromic promoters, selected from the group consisting of eicosane (EC) and octacosane (OC).
[0050] pigment
[0051] The photoinduced thermochromic compositions of the present invention comprise one or more dyes (c) selected from the group consisting of c1) dyes that are capable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state, and c2) dyes that are not capable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state.
[0052] For purposes of the present invention, the term "dye" refers to any substance having color or luminescent properties, and includes colored substances, luminescent (i.e., fluorescent or phosphorescent substances), and substances that can be colored and / or luminescent (i.e., fluorescent and / or phosphorescent).
[0053] Capable pigment
[0054] In one embodiment, the composition of the present invention comprises a dye (b1) capable of changing its color or luminescence properties when the PCM changes between a solid state and a liquid state. The term "dye capable of changing its color or luminescence properties when the PCM changes between a solid state and a liquid state" refers to a dye that can exhibit coloration, a color change, a color change, luminescence quenching (e.g., fluorescence quenching or phosphorescence quenching), luminescence activation (e.g., fluorescence activation or phosphorescence activation), or a change in luminescence (i.e., fluorescence or phosphorescence) when the PCM essentially changes from a solid state to a liquid state, from a liquid state to a solid state, or both. This means that these dyes have the ability to exhibit coloration, a color change, a color change, luminescence quenching (e.g., fluorescence quenching or phosphorescence quenching), luminescence activation (e.g., fluorescence activation or phosphorescence activation), or a change in luminescence (i.e., fluorescence or phosphorescence) by themselves, without requiring the presence of a chromic or fluorochromic promoter.
[0055] -Color-changing pigments
[0056] The photoinduced thermochromic composition includes one or more dyes selected from a group of dyes that change color depending on their aggregation / proximity state and / or temperature. The dyes that change color depending on their aggregation / proximity state are selected from dyes that form J-aggregates and H-aggregates, which exhibit a different color than their non-aggregated state. Examples of these dyes include, but are not limited to, polycyclic aromatic hydrocarbons and cyanine dyes.
[0057] -Luminescence-changing dyes
[0058] The photo-induced thermoluminescent composition comprises one or more luminescent agents. Generally, the term "luminescent agent" refers to any compound that can emit energy in the form of previously absorbed UV, visible, or NIR radiation upon exposure to excitation by radiation. The emission can be, but is not limited to, fluorescence or phosphorescence.
[0059] In one embodiment, the photoinduced thermoluminescent composition comprises one or more dyes selected from the group of dyes that change their luminescence depending on the aggregation / proximity state and dyes with viscosity / rigidity dependent emission.
[0060] The dyes that change color depending on the aggregation / proximity state are selected from the group consisting of dyes that form J-aggregates and H-aggregates, aggregation-induced emission (AIE) dyes, aggregation-induced quenching (ACQ) dyes, and excimer-forming dyes. Examples of these dyes include, but are not limited to, polycyclic aromatic hydrocarbons such as perylene, pyrene, anthracene, rubrene, rhodamine B base (RhB), tetraphenylethene (TPE) and their derivatives such as 9,10-dimethylanthracene, 9,10-diphenylanthracene, 9,10-dicyanoanthracene (DCA), and 1,3,6,8-tetraphenylpyrene.
[0061] In one embodiment, the photoinduced thermoluminescent composition is a composition comprising one or more luminescent agents whose light emission depends on the viscosity / stiffness of the medium, hi one embodiment, the photoinduced thermoluminescent composition is a composition wherein the one or more luminescent agents are {[5'-(p-hydroxyphenyl)-2,2'-bithienyl-5-yl]-methylidene}-propanedinitrile (NIAD-4) and TPE.
[0062] Uncapable pigments
[0063] In one embodiment, the composition of the present invention comprises a dye (b2) whose color or luminescence properties cannot be changed when the PCM changes between a solid state and a liquid state. The term "dye whose color or luminescence properties cannot be changed when the PCM changes between a solid state and a liquid state" refers to a dye that is essentially unable to exhibit coloration, color change, color change, luminescence quenching (e.g., fluorescence quenching or phosphorescence quenching), luminescence activation (e.g., fluorescence activation or phosphorescence activation), or luminescence (i.e., fluorescence or phosphorescence) change when the PCM changes essentially from a solid state to a liquid state, from a liquid state to a solid state, or both. This means that these dyes are essentially incapable of exhibiting coloration, color change, color change, luminescence quenching, luminescence activation, or luminescence change by themselves, but in the presence of a chromium or fluorochromic promoter, These dyes are exhibiting coloration, discoloration, change in coloration, luminescence quenching, luminescence activation or change in luminescence It is possible.
[0064] -Color-changing pigments
[0065] In one embodiment, the photoinduced thermoluminescent composition comprises one or more dyes selected from the group consisting of charge transfer dyes (redox dyes), pH-responsive dyes, and polarity-dependent dyes.
[0066] In one embodiment, the photoinduced thermochromic composition includes one or more pH-responsive dyes. Examples of pH-responsive dyes include, but are not limited to, spirolactone dyes, spiropyran dyes, spirooxazine dyes, fluoran dyes, and chromene dyes. These dyes change color upon hydrogen bonding interaction or acid-base reaction with a color former or a PCM that can act as a color former in the solid or liquid state.
[0067] In one embodiment, the photoinduced thermochromic composition comprises one or more redox dyes. Examples of redox dyes include, but are not limited to, methylene blue, methyl viologen, azure B, thionine acetate, safranine O, and neutral red. These dyes change color upon forming a charge-transfer complex with a color former (electron donor / acceptor) or with a PCM that can act as a color former in the solid or liquid state.
[0068] -Luminescence-changing dyes
[0069] In one embodiment, the photoinduced thermoluminescent composition comprises one or more luminescent agents selected from the group consisting of charge transfer dyes (redox dyes), pH-responsive dyes, polarity-dependent dyes, pH-sensitive luminescent dyes, and redox luminescent agents.
[0070] In one embodiment, the photo-induced thermoluminescent composition is a composition in which one or more luminescent agents are pH-sensitive luminescent agents. In one embodiment, the photo-induced thermoluminescent composition is a composition in which one or more luminescent agents are pH-sensitive luminescent agents selected from the group consisting of fluorescein, rhodamine 6G, RhB, and derivatives (e.g., derivatives of coumarin and fluoran).
[0071] In one embodiment, the photoinduced thermoluminescent composition is a composition in which one or more luminescent agents are redox luminescent dyes. In one embodiment, the photoinduced thermoluminescent composition is a composition in which one or more luminescent agents are redox luminescent agents selected from the group consisting of derivatives of polycyclic aromatic hydrocarbons. In one embodiment, the photoinduced thermoluminescent composition is a composition in which one or more luminescent agents change their emission upon interaction with an electron donor or acceptor and are selected from the group consisting of RhB, perylene diimide (PDI), N,N'-bis(sec-butyl)-1,6,7,12 tetra-(4-tert-butylphenoxy)perylene-3,4:9,10-tetracarboxylic acid diimide (PTDI), and DCA.
[0072] Suitable dyes and color promoters or fluorochromic promoters, their amounts suitable for photoinduced changes in optical properties, and specific experimental conditions can be easily determined by those skilled in the art according to the type of dye and composition, freestanding film, or article to be prepared. For example, the composition of the present invention includes RhB as a dye and an acidic promoter, or alternatively, an acidic PCM, and photoinduced luminescence occurs in the liquid state of the PCM.
[0073] In one embodiment, the photoinduced thermochromic or thermoluminescent composition comprises one or more dyes as defined above in an amount of 0.005 to 5% by weight of the composition. In one embodiment, the photoinduced composition is a thermochromic composition comprising one or more dyes as defined above in an amount of 0.1 to 5% by weight of the composition, particularly 1.4 to 3% by weight of the composition. In one embodiment, the photoinduced composition is a thermoluminescent composition comprising one or more dyes as defined above in an amount of 0.01 to 2.5% by weight of the composition. The term "weight percentage (%)" refers to the percentage of each component of the composition relative to the total weight. The compositions of the present invention contain a low content of dyes that are uniformly distributed throughout the material, imparting a uniform color.
[0074] Color former
[0075] The photoinduced thermochromic composition of the present invention can include one or more color formers. In particular, if the PCM cannot act as a chromic promoter (b2) and the dye cannot change its color or luminescence properties when the PCM changes between a solid state and a liquid state (c2), the photoinduced thermochromic or thermochromic composition further includes one or more chromic promoters that are color formers. Even if the PCM can act as a chromic promoter (b1) or the dye can change its color properties when the PCM changes between a solid state and a liquid state (c1), the photoinduced thermochromic composition optionally includes (d) one or more chromic promoters that are color formers. The term "color former" refers to a compound that can cause a change in the color properties of a dye, such as the coloring / color change of the dye.
[0076] The color former, whether it is a PCM (b1) or not, interacts with the dye in its solid or liquid state. The type of interaction that induces the color change can be within the range of hydrogen bonding, acid-base reaction (proton transfer) and / or electron transfer.
[0077] In one embodiment, the composition comprises a color former selected from the group consisting of an acid, a base, a hydrogen bonding compound, an electron transfer compound, or a mixture thereof. Examples of acid color formers suitable for the present invention include, but are not limited to, acids, alcohols, and mixtures thereof.
[0078] Examples of base couplers suitable for the present invention include, but are not limited to, amines and mixtures thereof. Examples of hydrogen bonding compounds suitable for the present invention include, but are not limited to, acids, alcohols, amines and mixtures thereof. Examples of electron transfer compounds suitable for the present invention include, but are not limited to, thiols, amines and mixtures thereof.
[0079] In one embodiment, the color former is a lipophilic "color former" as defined above. The terms "lipophilic," "hydrophobic," and "non-polar" have the same meaning and are used interchangeably. They refer to compounds that are soluble in neutral non-polar solvents but not in water. Lipophilic molecules in water can often form aggregates that are only redispersible in water but not dissolved.
[0080] As is well known to those skilled in the art, a useful parameter for determining whether a compound is hydrophilic or lipophilic is to determine its partition coefficient (P). The partition (P) coefficient is the ratio of the concentrations of a particular compound in a mixture of two immiscible phases at equilibrium. Usually, one of the solvents selected is water, and the second solvent is hydrophobic, such as octanol. Hydrophobic active ingredients have a high octanol / water partition coefficient, while hydrophilic compounds have a low octanol / water partition coefficient. The log P value is also known as a measure of lipophilicity / hydrophilicity. The logarithm of the ratio of the concentrations of non-ionized solutes in a solvent at a specific pH is called log P. The log P value is also known as a measure of lipophilicity:
[0081] TIFF0007770652000001.tif17170
[0082] In the formula, "solute" is the active ingredient.
[0083] For purposes of the present invention, compounds are considered "lipophilic" if they have a log P value of 2.4 or greater.
[0084] In one embodiment, the color former is selected from the PCMs dodecanoic acid, stearic acid, 1-tetradecanol, 1-hexadecanol, dodecylphosphonic acid, octyl p-hydroxybenzoate, bisphenol A.
[0085] In the case of halochromic dyes, proton exchange between a color former (capable of donating / accepting a proton) and a dye (capable of accepting / accepting a proton) causes a color change in the dye. In one embodiment, the photoinduced thermochromic composition of the present invention includes a color former selected from the PCMs dodecanoic acid, stearic acid, 1-tetradecanol, 1-hexadecanol, dodecylphosphonic acid, octyl p-hydroxybenzoate, and bisphenol A. For dyes that change their color upon establishing hydrogen-bonding interactions, the formation of these interactions between the dye and the color former induces color development. For dyes that change their color upon forming a charge-transfer complex via electron transfer, the interaction between the dye and the electron donor / acceptor produces color development.
[0086] In one embodiment, the photoinduced thermochromic composition comprises one or more color formers as defined in the present invention in an amount of 0.1 to 15% by weight of the composition, in particular 1 to 10% by weight of the composition.
[0087] Luminescence activator
[0088] The photoinduced thermoluminescent composition of the present invention can include one or more luminescence activators. In particular, when the PCM cannot act as a fluorochromic promoter (b2) and the dye cannot change its luminescence properties when the PCM changes between a solid state and a liquid state (c2), the photoinduced thermoluminescent composition further includes one or more fluorochromic promoters that are luminescence activators. Even when the PCM can act as a fluorochromic promoter (b1) or the dye can change its luminescence properties when the PCM changes between a solid state and a liquid state (c1), the photoinduced thermoluminescent composition can optionally include (d) one or more fluorochromic promoters that are luminescence activators. The term "luminescence activator" refers to a compound that can cause the luminescence of a dye to be enhanced.
[0089] In one embodiment, the chromic promoter or fluorochromic promoter is a luminescence activator selected from the group consisting of singlet, triplet sensitizers, fluorescence resonance energy transfer (FRET) sensitizers, and electron transfer sensitizers, and mixtures thereof.
[0090] In one embodiment, the emission activator is selected from the group consisting of benzophenone, perylene, pyrene, cyanine and boradiazaindacene (BODIPY) derivatives, platinum octaethylporphyrin, palladium tetraanthraporphyrin.
[0091] In one embodiment, the photoinduced thermoluminescent composition comprises one or more luminescence activators as defined herein in an amount of 0.001 to 10% by weight of the composition. In one embodiment, the photoinduced thermoluminescent composition comprises one or more luminescence activators as defined herein in an amount of 0.001 to 10% by weight of the composition, such as 0.01 to 9% by weight of the composition.
[0092] Luminescence quencher
[0093] The photo-induced thermoluminescent composition of the present invention can include one or more luminescence quenchers. In particular, when the PCM cannot act as a fluorochromic promoter (b2) and the dye cannot change its luminescence properties when the PCM changes between a solid state and a liquid state (c2), the photo-induced thermoluminescent composition further includes one or more fluorochromic promoters that are luminescence quenchers. Even when the PCM can act as a fluorochromic promoter (b1) or the dye can change its luminescence properties when the PCM changes between a solid state and a liquid state (c1), the photo-induced thermoluminescent composition can optionally include (d) one or more fluorochromic promoters that are luminescence quenchers. The term "luminescence quencher" refers to a compound that can cause inhibition of the luminescence of a dye. The type of interaction that induces the inhibition of luminescence is mediated by energy and / or electron transfer.
[0094] In one embodiment, the luminescence quencher is selected from the group consisting of a RET quencher, a triplet quencher, an electron transfer quencher, and mixtures thereof.
[0095] In one embodiment, the luminescence quencher is selected from the group consisting of perylene, pyrene, anthracene, amines, and mixtures thereof.
[0096] In one embodiment, the luminescence quencher defined in the present invention is present in an amount of 0.001 to 0.5% by weight of the composition. In one embodiment, the luminescence quencher defined in the present invention is present in an amount of 0.005 to 0.1% by weight of the composition.
[0097] capsule
[0098] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises capsules. In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises capsules selected from nanocapsules and microcapsules. The term "microcapsule" refers to capsules having microscale dimensions, i.e., diameters greater than 0.20 μm, and of any shape or morphology. In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises microcapsules as defined herein having a particle size of 0.21 to 400 μm as measured by SEM. In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises capsules as defined above having a particle size of 0.5 μm to 5 μm as measured by SEM or Mastersizer.
[0099] The term "nanocapsule" refers to capsules having nanoscale dimensions, i.e., diameters less than 20-200 nm, and of any shape or morphology. In one embodiment, the photoinduced thermochromic or thermoluminescent compositions of the present invention comprise nanocapsules as defined above having particle sizes between 30 nm and 150 nm as measured by SEM, transmission electron microscopy (TEM), and DLS. Nanocapsules are advantageous because they can provide transparent materials (e.g., film-forming materials once combined with polymeric agents) suitable for optical applications requiring transparency. Nanocapsules are also advantageous because they can be used in biomedical applications. Their small size allows them to penetrate cell membranes.
[0100] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises capsules selected from the group of core-shell microcapsules, core-shell nanocapsules, solid lipid microparticles, and solid lipid nanoparticles.
[0101] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises a core-shell microcapsule or nanocapsule. The term "core-shell capsule" refers to a capsule formed by a core and a shell surrounding at least a portion of the core.
[0102] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises a core-shell microcapsule or nanocapsule, wherein the core comprises one or more core-forming materials. In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises a core-shell microcapsule or nanocapsule, wherein the core comprises one or more PCMs, as defined herein as core-forming materials. Examples of suitable core-forming materials for the present invention include, but are not limited to, eicosane, stearic acid, and mixtures thereof.
[0103] The photoinduced thermochromic or thermoluminescent compositions of the present invention comprise core-shell microcapsules or nanocapsules, the shell of which comprises one or more polymeric shell materials selected from the group consisting of organic and inorganic polymeric shell materials. Examples of organic polymeric shell materials suitable for the present invention include, but are not limited to, linear or crosslinked poly(methyl methacrylate), polystyrene, polyamide, polyurea, polyurethane, polycarbonate, polysulfone, polyethersulfone, polyetherimide, and mixtures thereof. Examples of inorganic polymeric shell materials suitable for the present invention include, but are not limited to, SiO2, TiO2, VO2, and mixtures thereof. This organizational structure is particularly advantageous because the shell encapsulates the core material, particularly the PCM, preventing its diffusion and enabling reproducible color or emission changes.
[0104] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises solid lipid microparticles or solid lipid nanoparticles. The term "solid lipid particle" or "SLP" refers to a capsule having a solid lipid core matrix. The term "lipid" is used in a broader sense herein to include triglycerides (e.g., tristearin), alkanes (e.g., eicosane), diglycerides (e.g., glycerol behenate), monoglycerides (e.g., glycerol monostearate), fatty acids (e.g., stearic acid), steroids (e.g., cholesterol), and waxes (e.g., cetyl palmitate). This means that SLPs do not have a shell material surrounding the solid lipid core matrix. This organizational structure is particularly advantageous because, although it can facilitate processing, it requires additional processing (e.g., coating or embedding) with a polymeric material to prevent diffusion and leakage of liquid matrix-forming agents, particularly PCMs.
[0105] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises an SLP comprising one or more PCMs. Examples of PCMs suitable for the present invention include, but are not limited to, eicosane, stearic acid, and mixtures thereof.
[0106] In one embodiment, the photoinduced thermochromic or thermoluminescent compositions of the present invention comprise SLPs that further comprise one or more suitable thermoplastic polymers, including but not limited to polystyrene (PS), polyethersulfone, polycarbonate, polymethylmethacrylate, polyetherimide, and mixtures thereof. These compositions comprise a thermoplastic polymer that allows them to have an irreversible change in color or luminescence.
[0107] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises an SLP, which comprises a mixture of one or more PCMs as defined herein and one or more thermoplastic polymers as defined above, wherein the thermoplastic polymer content is 50% or more by weight of the SLP.
[0108] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprises capsules containing nanoparticles, a PCM, one or more dyes, and, optionally, one or more chromic or fluorochromic promoters. The compositions of the present invention containing these capsules are advantageous because they can achieve close contact between the nanoparticles and the PCM. Therefore, the capsules can be used as inks or paints to prepare coatings or films. The capsules can be embedded in films or coatings of polymeric materials of different nature.
[0109] In one embodiment, the photoinduced thermochromic or thermoluminescent compositions of the present invention comprise capsules containing a PCM, one or more dyes, and, optionally, one or more chromic or fluorochromic promoters. This means that the nanoparticles are not inside the capsules but are uniformly distributed in an excipient or vehicle that forms part of a coating, free-standing film, or embedded article, as defined below. Alternatively, the nanoparticles are present in the shell material as shell-forming material within or attached to the shell. For example, the nanoparticles can be uniformly distributed in a free-standing film material in which the capsules are embedded. Compositions of the present invention containing these capsules are advantageous because they allow for the formation of films or coatings of different materials containing the capsules. Furthermore, capsules uniformly distributed in a polymer coating or film allow the heat generated by the nanoparticles, particularly the MP, to reach all the capsules quickly, inducing a rapid color or luminescence change.
[0110] In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention comprising the capsules defined above is in the form of a suspension composition comprising an external phase and the capsules defined herein suspended in the external phase. In one embodiment, the external phase comprises one or more solvents selected from the group consisting of water, organic solvents, and mixtures thereof. In one embodiment, the external phase comprises one or more solvents selected from the group consisting of water, methanol, ethanol, acetone, hexane, dimethylformamide, and mixtures thereof, in particular water. In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention is in the form of a suspension composition as defined above, wherein the capsules contain nanoparticles, a PCM, one or more dyes, and, optionally, one or more chromic or fluorochromic promoters therein. In one embodiment, the photoinduced thermochromic or thermoluminescent composition of the present invention is in the form of an aqueous suspension composition, wherein the capsules contain a PCM, one or more dyes, and, optionally, one or more chromic or fluorochromic promoters therein. This means that the nanoparticles are not inside the capsule but are homogeneously distributed in the external phase or form part of the shell or are deposited on the shell material of the capsule.The process for the preparation of the above-mentioned suspensions, in particular aqueous suspensions, is also part of the present invention.
[0111] In one embodiment, the photo-induced thermochromic or thermoluminescent composition of the present invention, comprising the capsules defined above, is in the form of a dry powder composition. In one embodiment, the photo-induced thermochromic or thermoluminescent composition of the present invention is in the form of a dry powder composition, wherein the capsules comprise nanoparticles, a PCM, one or more dyes, and, optionally, one or more chromic or fluorochromic promoters. In one embodiment, the photo-induced thermochromic or thermoluminescent composition of the present invention is in the form of a dry powder composition, wherein the capsules comprise a PCM, one or more dyes, and, optionally, one or more chromic or fluorochromic promoters. This means that the nanoparticles are not present inside the capsules, but are present in the powder outside the capsules, or form part of the shell, or are deposited on the capsule shell material. This is also part of a process for preparing the above-mentioned dry powder composition, which includes subjecting the suspension defined above to spray drying, freeze drying, or solvent evaporation conditions to remove the solvent from the suspension.
[0112] In one embodiment, the compositions of the present invention further comprise additional ingredients selected from the group consisting of active pharmaceutical ingredients and reactive oxygen species, which, if present, are generally mixed with one or more PCMs that form part of the compositions of the present invention.
[0113] All embodiments defined above for the photoinduced thermochromic or thermoluminescent compositions defined in the present invention in terms of ingredients also apply to the capsules, aqueous suspensions and dry powder compositions defined in the present invention.
[0114] Photoinduced thermochromic or thermoluminescent freestanding films
[0115] As disclosed above, a second aspect of the present invention relates to a photoinduced thermochromic or thermoluminescent freestanding film comprising a photoinduced thermochromic or thermoluminescent composition as defined in the present invention, one or more polymers, and optionally one or more excipients.
[0116] As used herein, the term "free-standing membrane" refers to a membrane that has a physically stable shape, is dimensionally stable at its casting surface, and can be removed from the casting surface without the need for support over the majority of its surface area.
[0117] The photoinduced thermochromic or thermoluminescent freestanding rigid or flexible films of the present invention optionally contain one or more excipients that enable the photoinduced thermochromic or thermoluminescent composition to form a desired shape. The appropriate excipient and its amount can be easily determined by one skilled in the art depending on the type of formed material being prepared. A suitable excipient can be a stabilizer to prevent aggregation of MPs and capsules. These photoinduced thermochromic or thermoluminescent freestanding films can be prepared by methods known in the art. Generally, the preparation of freestanding films involves the use of extrusion, stretching, injection molding, casting, in situ polymerization, spray coating, spin coating, doctor blade coating, and roll-to-roll coating. The freestanding film can be removed from the substrate, for example, by peeling the film or dissolving the substrate.
[0118] All of the embodiments defined above for the photoinduced thermochromic or thermoluminescent composition defined in the present invention in terms of components also apply to the photoinduced thermochromic or thermoluminescent freestanding film of the second aspect of the present invention, which is considered to be a material / composition that can be used in an end use application.
[0119] Light-induced thermochromic or thermoluminescent articles
[0120] As disclosed above, a third aspect of the present invention relates to a photoinduced thermochromic or thermoluminescent article comprising a photoinduced thermochromic or thermoluminescent composition as defined in the first aspect of the present invention, or alternatively, a photoinduced thermochromic or thermoluminescent free-standing film as defined in the second aspect of the present invention.
[0121] Photoinduced thermochromic or thermoluminescent articles are considered to be materials / compositions that can be used in end-use applications.
[0122] In one embodiment, the photoinduced thermochromic or thermoluminescent article is a coated article (A) comprising a substrate and a photoinduced thermochromic or thermoluminescent coating deposited on the surface of the substrate, the coating comprising a composition as defined herein and, optionally, one or more coating formers. The term "coated article" refers to an article comprising a substrate covered with one or more layers formed by the coating composition. In one embodiment, the coated article is selected from single-layer, double-layer, and multi-layer coated articles. For purposes of the present invention, coating of the substrate with the thermochromic or thermoluminescent composition can be carried out by any method known in the art for coating any surface. Examples of suitable substrates for the present invention include, but are not limited to, non-porous substrates and porous substrates. The photoinduced thermochromic or thermoluminescent coating composition optionally comprises one or more coating formers. Appropriate excipients and their amounts can be readily determined by one skilled in the art depending on the type of substrate being coated. In one embodiment, the photoinduced thermochromic or thermoluminescent article comprises a substrate selected from the group consisting of glass, polymer sheets, textile materials, cellulosic materials and wood, transparent or opaque substrates, and curved or flat substrates.
[0123] In one embodiment, the photoinduced thermochromic or thermoluminescent article is an embedded article (B) comprising a porous substrate, a photoinduced thermochromic or thermoluminescent composition as defined in the first aspect of the present invention embedded in the porous substrate, and optionally one or more additional outer coatings. The term "embedded article" refers to an article formed by a porous substrate containing a photoinduced thermochromic or thermoluminescent composition within its pores. In particular, the photoinduced thermochromic or thermoluminescent composition is deposited on the surface of the substrate and penetrates the pores. For purposes of the present invention, the term "porous substrate" refers to a substrate having a plurality of pores or through-pores that allow photoinduced thermochromic or thermoluminescence to pass through the substrate, where the composition is in the form of pores. These articles are advantageous because the pores in the substrate prevent diffusion of the photoinduced thermochromic or thermoluminescent composition (especially these compositions in the form of SLPs or as non-structural materials). For purposes of the present invention, the process for preparing the embedded article of the present invention can be carried out by any method known in the art. Examples of suitable methods for the present invention include, but are not limited to, casting, in situ polymerization (if necessary in the case of a polymer matrix), spray coating, spin coating, doctor blade coating, and substrate impregnation. The photoinduced thermochromic or thermoluminescent article can optionally contain one or more excipients or carriers. Suitable excipients or carriers and their amounts can be easily determined by those skilled in the art according to the type of substrate to be embedded. The photoinduced thermochromic or thermoluminescent article is an embedded article that optionally includes one or more additional external coatings. These additional external coatings can be waterproof coatings, corrosion-resistant coatings, scratch-resistant coatings, among others. The compositions and processes for preparing these additional external coatings can be easily determined by those skilled in the art according to the type of external coating being prepared.These embedded articles of the present invention are advantageous because they allow the use of low concentrations of uniformly dispersed nanoparticles to uniformly change the color or luminescence across the substrate.
[0124] The photoinduced thermochromic or thermoluminescent composition of the present invention is advantageous due to its versatility and usefulness for coating a wide variety of substrates, particularly porous substrates. In one embodiment, the photoinduced thermochromic or thermoluminescent porous substrate is selected from the group consisting of textile-based substrates, polyamide-based substrates, polyester-based substrates, cellulosic-based substrates, and mixtures thereof. In one embodiment, the photoinduced thermochromic or thermoluminescent porous substrate is selected from the group consisting of paper, banknotes, wood, and cotton.
[0125] In one embodiment, the photoinduced thermochromic or thermoluminescent article is a free-standing film-containing article that includes one or more photoinduced thermochromic or thermoluminescent free-standing films as defined herein. The definition of the term "free-standing" defined above for films also applies to the "article" containing them.
[0126] The photoinduced thermochromic or thermoluminescent coating of the photoinduced thermochromic or thermoluminescent coated article, photoinduced thermochromic or thermoluminescent embedded article, and freestanding film-containing article can be coated on the surface of a substrate, or alternatively can be sandwiched between two or more surfaces (or layers), for example, between glass or polymer sheets.
[0127] In one embodiment, the photoinduced thermochromic or thermoluminescent article comprises a transparent photoinduced thermochromic or thermoluminescent composition or free-standing film containing nanocapsules having a particle size of 20 to 150 nm as measured by SEM, TEM, and DLS. Transparent photoinduced thermochromic or thermoluminescent compositions or free-standing films of the present invention are advantageous because they can be useful in the optical component field when the final article is also transparent (i.e., the substrate is also transparent). Alternatively, transparent photoinduced thermochromic or thermoluminescent compositions or free-standing films of the present invention on opaque substrates are useful for allowing the appearance of the coated article to be seen through the film without changing its appearance.
[0128] In one embodiment, the photoinduced thermochromic or thermoluminescent article comprises a photoinduced thermochromic or thermoluminescent composition comprising a capsule, wherein the nanoparticles, one or more PCMs, one or more dyes, and optionally one or more chromic promoters or fluorochromic promoters are inside the capsule.
[0129] In one embodiment, the photoinduced thermochromic or thermoluminescent article comprises a photoinduced thermochromic or thermoluminescent composition comprising capsules, wherein one or more PCMs, one or more dyes, and optionally one or more chromic promoters or fluorochromic promoters are inside the capsules, and the nanoparticles are dispersed in excipients and / or carriers that form part of a coating, embedding material, or free-standing film, or alternatively form part of a shell.
[0130] In one embodiment, the photoinduced thermochromic or thermoluminescent substrate of the present invention comprises a photoinduced thermochromic or thermoluminescent coating deposited on the surface, embedded in the surface, or forming a free-standing film having a thickness of 0.01 μm to 1000 μm, which is advantageous because it imparts NIR-induced thermochromic or thermoluminescent functionality to the final article.
[0131] The color or luminescence change of the above-defined articles of the present invention induced by the increase in temperature facilitated by irradiation of the nanoparticles with low-energy radiation (NIR) is rapid, uniform and strong, and can be reversible or irreversible.
[0132] In one embodiment, the distribution of nanoparticles in the photoinduced thermochromic or thermoluminescent article defined above is 2 The nanoparticles per particle are 0.000008 to 0.00014 mg.
[0133] All of the embodiments defined above for the photoinduced thermochromic or thermoluminescent compositions and forming materials defined in the present invention in terms of their components also apply to the photoinduced thermochromic or thermoluminescent article of the third aspect of the present invention.
[0134] Preparation of photoinduced thermochromic or thermoluminescent compositions
[0135] This is also part of the process for the preparation of the photoinduced thermochromic or thermoluminescent composition of the first aspect of the present invention.
[0136] In embodiments where the photoinduced thermochromic or thermoluminescent composition does not contain capsules, the process comprises preparing a solution of a PCM with one or more dyes and, optionally, one or more chromic or fluorochromic promoters, and mixing the solution thus obtained with nanoparticles as defined in the present invention.
[0137] In embodiments where the photoinduced thermochromic or thermoluminescent composition is structured as a capsule as defined in the present invention, the process comprises preparing the capsule by any method known in the state of the art.
[0138] In one embodiment, the capsules are SLP capsules containing nanoparticles, one or more PCMs, one or more dyes, and, optionally, one or more chromic or fluorochromic promoters. This process involves emulsification / cooling, spontaneous emulsification / solvent displacement, emulsion-solvent evaporation, or alternatively, hot extrusion, particularly emulsification / cooling. As an example, a more detailed description of a general procedure for preparing a composition containing SLP capsules is provided. First, the dyes, and optionally, one or more chromic or fluorochromic promoters, are dissolved in the PCM in their molten state (optionally, additional excipients, such as nanoparticles and surfactants, can be included). The resulting organic phase is then mixed with an aqueous phase formed by water and one or more excipients, such as surfactants. The emulsification process can be carried out by any method known in the art, such as high-energy or low-energy methods. In high-energy methods, homogenization is carried out by stirring, high-shear homogenization, sonication, membrane filtration, or high-pressure homogenization. Low-energy methods include spontaneous emulsification and phase inversion. After the emulsion is obtained (droplet size varies depending on the emulsification method), it is transferred to an aqueous solution maintained at 5°C to induce cooling and freezing of the PCM.
[0139] In one embodiment, the capsules are core-shell capsules containing nanoparticles, one or more PCMs, one or more dyes, and, optionally, one or more chromic or fluorochromic promoters. The preparation process includes interfacial polymerization, radical polymerization, coacervation, in situ polymerization, and solvent evaporation / phase separation, particularly phase separation / shell formation. As an example, a more detailed description of the general procedure for preparing a composition containing core-shell capsules is provided. First, the shell-forming material (shell polymer), one or more dyes, optionally, one or more chromic or fluorochromic promoters, and PCMs are dissolved in a volatile, water-immiscible organic solvent (optionally containing nanoparticles and one or more excipients, such as surfactants). The resulting organic phase is then mixed with an aqueous phase formed by water and one or more excipients, such as surfactants. The emulsification process can be carried out by a high-energy or low-energy method. In high-energy methods, homogenization is achieved by stirring, high-shear homogenization, sonication, membrane filtration, or high-pressure homogenization. Low-energy methods include spontaneous emulsification and phase inversion. After an emulsion is obtained (droplet size varies depending on the emulsification method), the organic solvent is evaporated, causing the precipitation of the shell-forming material (shell polymer) around the PCM droplets, which solidifies during solvent evaporation.
[0140] In one embodiment, the capsules are SLPs or core-shell capsules containing one or more PCMs, one or more dyes, and optionally one or more chromic or fluorochromic promoters therein, in which case the process comprises, after the process disclosed above, preparing capsules containing a PCM, one or more dyes, and optionally one or more chromic or fluorochromic promoters, as disclosed above, and secondly, mixing the capsules obtained in the previous step with the nanoparticles of the invention.
[0141] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is in the form of a suspension and the process involves preparing the capsules disclosed above in water, where the capsules are left in place after synthesis or the capsules can be redispersed from a powder.
[0142] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is in the form of a dry powder composition, which process comprises carrying out the process disclosed above in a suitable medium, such as water, and further drying the previously obtained water suspension by freeze-drying or spray-drying.
[0143] In one embodiment, the process for preparing the composition of the invention as defined above further comprises the preceding step of preparing nanoparticles capable of absorbing NIR radiation and converting NIR into heat. In one embodiment, the process for preparing the composition of the invention as defined above further comprises the preceding step of preparing nanoparticles by a template method. The template can be provided by a self-templated surfactant, oil droplets or solid particles.
[0144] In the case of metal particles, the process involves reducing metal salts within or around the template, photochemically (by irradiation), thermally, electrochemically, by sonication, or by chemicals (e.g., amines). In one embodiment, the template is made from droplets of (3-aminopropyl)triethoxysilane (APTES). In one embodiment, the template is a core-shell capsule or SLP containing a thermochromic / thermoluminescent composition. In one embodiment, the process for preparing the composition of the present invention as defined above further comprises a prior step of preparing nanoparticles, including one-pot synthesis of metal (e.g., gold) nanoshells by an aqueous (APTES) suspension. In particular, gold nanoshells (AuNS) are prepared by reducing chloroauric acid in the presence of APTES nanodroplets in water. The APTES nanodroplets act as templates for the gold nanoshells. Upon addition of HAuCl4, it migrates to the interface between the droplets and water. Upon addition of a reducing agent (NaBH4), the gold is reduced to form nanoshell structures. To stabilize the AuNS, it is necessary to quickly add a stabilizer such as bovine serum albumin. The appropriate method, reaction conditions, and reagent amounts can be easily determined by those skilled in the art according to the particle size, shape, and type of metal of the MP.
[0145] For non-metallic particles capable of converting NIR to heat, such as semiconducting polymer nanoparticles and cyanine dye nanoparticles, processes include emulsion-solvent displacement and emulsion-solvent evaporation.
[0146] The appropriate method, reaction conditions and reagents, as well as the amounts thereof, can be easily determined by those skilled in the art according to the composition and structural form of the PCM.
[0147] Preparation of photoinduced thermochromic or thermoluminescent free-standing films.
[0148] This is also part of the process for the preparation of a photoinduced thermochromic or thermoluminescent freestanding film of the second aspect of the present invention, comprising a photoinduced thermochromic or thermoluminescent composition.
[0149] The appropriate method, reaction conditions and reagents, and amounts thereof, can be readily determined by one skilled in the art according to the article to be formed and the composition and structure of the PCM.
[0150] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is structured in a capsule containing nanoparticles, one or more PCMs, one or more dyes, and optionally one or more chromic or fluorochromic promoters therein, the article further comprising one or more excipients such as a polymeric material, and the process comprises: 1) mixing the capsule suspension with a polymeric material (polymer or monomer species); 2) depositing the mixture obtained in the preceding step onto a substrate, in particular by spin coating, spray coating, casting, inkjet printing, doctor blade coating, roll-to-roll and painting; 3) drying or curing the substrate obtained in the preceding step to obtain a coated substrate; 4) removal from the substrate (by peeling from the substrate or dissolving the substrate) to yield a film suitable for application elsewhere; Includes:
[0151] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is structured in a capsule containing one or more PCMs, one or more dyes, and optionally one or more chromic or fluorochromic promoters therein, the article further comprising one or more excipients such as a polymeric material, and the process comprises: 1) mixing the capsule suspension with a polymeric material and nanoparticles; 2) depositing the mixture obtained in the preceding step onto a substrate; 3) drying or curing the substrate obtained in the preceding step to obtain a coated substrate; 4) removal from the substrate (by peeling from the substrate or dissolving the substrate) to yield a film suitable for application elsewhere; Includes:
[0152] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is structured in a capsule containing one or more PCMs, one or more dyes, and optionally one or more chromic or fluorochromic promoters therein, the article further comprising one or more excipients such as a polymeric material, and the process comprises: 1) mixing the capsule suspension with monomer species and nanoparticles of a polymeric material; 2) depositing the mixture obtained in the preceding step onto a substrate; 3) curing the substrate obtained in the preceding step to obtain a coated substrate; 4) removal from the substrate (by peeling from the substrate or dissolving the substrate) to yield a film suitable for application elsewhere; Includes:
[0153] The film formation of the present invention can be accomplished by any method disclosed in the art, generally by solvent evaporation from a preformed dissolved coating material, coalescence of a polymeric nanoparticle dispersion, and polymerization of a monomer.
[0154] Preparation of photoinduced thermochromic or thermoluminescent articles
[0155] This is also part of a process for the preparation of a photoinduced thermochromic or thermoluminescent article according to the third aspect of the present invention, comprising a photoinduced thermochromic or thermoluminescent composition.
[0156] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is not structured within the capsule, and the process comprises: 1) depositing an aqueous solution of nanoparticles onto a substrate; 2) drying the substrate thus obtained; 3) depositing, at a temperature above the melting point of the PCM, a liquid mixture of the PCM containing one or more dyes and, optionally, one or more chromic or fluorochromic promoters onto the substrate obtained in the previous step; 4) cooling the substrate obtained in the preceding step; 5) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; Includes:
[0157] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is not structured within the capsule, and the process comprises: 1) depositing a liquid mixture of a PCM containing nanoparticles, one or more dyes, and optionally one or more chromic or fluorochromic promoters, at a temperature above the melting point of the PCM onto a substrate that is layered on a heated plate; 2) cooling the substrate obtained in the preceding step; 3) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; Includes:
[0158] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is not structured within the capsule, and the process comprises: 1) depositing a suspension containing nanoparticles onto a substrate; 2) drying the substrate obtained in the preceding step; 3) depositing a dry powder composition comprising a PCM, one or more dyes, and optionally one or more chromic or fluorochromic promoters; 4) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; Includes:
[0159] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is not structured within the capsule, and the process comprises: 1) depositing a dry powder composition comprising a PCM, nanoparticles, one or more dyes, and optionally one or more chromic or fluorochromic promoters; 2) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; Includes:
[0160] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is structured in capsules containing a PCM, nanoparticles, one or more dyes, and optionally one or more chromic or fluorochromic promoters, the process comprising: 1) depositing a suspension containing capsules onto a substrate; 2) drying the substrate obtained in the preceding step; 3) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; Includes:
[0161] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is structured in capsules containing a PCM, nanoparticles, one or more dyes, and optionally one or more chromic or fluorochromic promoters, the process comprising: 1) depositing a dry powder composition containing capsules onto a substrate; 2) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; Includes:
[0162] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is structured in a capsule containing a PCM, one or more dyes, and optionally one or more chromic or fluorochromic promoters, but no nanoparticles, and the process comprises: 1) depositing a suspension of nanoparticles onto a substrate; 2) drying the substrate thus obtained; 3) depositing the suspension containing the capsules on the substrate obtained in the previous step; 4) drying the substrate thus obtained; 5) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; or alternatively 1) depositing a suspension containing capsules onto a substrate; 2) drying the substrate thus obtained; 3) depositing a solution of nanoparticles onto the substrate obtained in the previous step; 4) drying the substrate thus obtained; 5) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; or alternatively 1) depositing a suspension containing capsules and nanoparticles onto a substrate; 2) drying the substrate thus obtained; 3) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; or alternatively 1) depositing onto a substrate a dry powder composition containing nanoparticles forming part of the shell or the outer portion of the capsule; 2) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; or alternatively 1) depositing on a substrate a suspension containing nanoparticles forming part of the shell or of the outer part of the capsule; 2) drying the substrate thus obtained; 3) optionally coating the substrate obtained in the preceding step with one or more additional coating layers by adding polymeric materials; Includes:
[0163] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is deposited onto a substrate by using a printing technique. Generally, the nanoparticle suspension and the PCM mixture (which further contains one or more dyes and, optionally, one or more chromic or fluorochromic promoters) are printed in the same or two separate successive steps.
[0164] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is structured in a capsule containing nanoparticles, one or more PCMs, one or more dyes, and optionally one or more chromic or fluorochromic promoters therein, the article further comprising one or more excipients such as a polymeric material, and the process comprises: 1) mixing the capsule suspension with a polymeric material (polymer or even monomer species); 2) depositing the mixture obtained in the preceding step onto a substrate, in particular by spin coating, spray coating, casting, inkjet printing, doctor blade coating, roll-to-roll and painting; 3) drying or curing the substrate obtained in the preceding step to obtain a coated substrate; Includes:
[0165] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is structured in a capsule containing one or more PCMs, one or more dyes, and optionally one or more chromic or fluorochromic promoters therein, the article further comprising one or more excipients such as a polymeric material, and the process comprises: 1) mixing the capsule suspension with a polymeric material and nanoparticles; 2) depositing the mixture obtained in the preceding step onto a substrate; 3) drying or curing the substrate obtained in the preceding step to obtain a coated substrate; Includes:
[0166] In one embodiment, the photoinduced thermochromic or thermoluminescent composition is structured in a capsule containing one or more PCMs, one or more dyes, and optionally one or more chromic or fluorochromic promoters therein, the article further comprising one or more excipients such as a polymeric material, and the process comprises: 1) mixing the capsule suspension with monomer species and nanoparticles of a polymeric material; 2) depositing the mixture obtained in the preceding step onto a substrate; 3) curing the substrate obtained in the preceding step to obtain a coated substrate; Includes:
[0167] The coatings of the present invention can be formed by any method disclosed in the art, generally by solvent evaporation from preformed dissolved coating materials, coalescence of polymeric nanoparticle dispersions, and polymerization of monomers.
[0168] In one embodiment, when the composition of the present invention comprises one or more additional components as defined above, the process comprises carrying out any of the processes disclosed above and further mixing the additional components with the PCM.
[0169] All of the embodiments disclosed above for the photoinduced thermochromic or thermoluminescent compositions of the first aspect of the invention, the free-standing films and articles of the invention also apply to the processes for their preparation.
[0170] Uses of photoinduced thermochromic or thermoluminescent compositions
[0171] Use of the compositions, free-standing films and articles of the present invention are also part of the present invention.
[0172] A fourth aspect of the invention relates to its use in therapeutics, cosmetics, diagnostics and optics.
[0173] Photoinduced thermochromic or thermoluminescent compositions structured within capsules, particularly nanocapsules in the form of SLPs and core-shell capsules, are useful as contrast agents. The term "contrast agent" refers to any substance used as a label or to highlight a specific structure in any imaging technique. For the purposes of this invention, the primary contrast agent is a luminescence-changing agent (upon NIR irradiation) that changes luminescence upon NIR-induced melting of the PCM. This application may be useful for high-resolution fluorescence microscopy. This is also advantageous for allowing deeper penetration of NIR radiation into biological tissues.
[0174] Photoinduced thermochromic or thermoluminescent compositions structured within capsules, particularly nanocapsules in the form of SLPs, are useful as drug delivery systems. In one embodiment, the photoinduced thermochromic or thermoluminescent compositions further comprise one or more active pharmaceutical ingredients, making them useful for therapeutic purposes. In practice, delivery of the active ingredient from the SLP is achieved by melting the PCM of the SLP upon irradiation with NIR light. Delivery of the active ingredient from the photoinduced thermochromic or thermoluminescent composition can be controlled, modified, or extended by monitoring the temperature induced by irradiation with NIR light.
[0175] Photoinduced thermochromic or thermoluminescent compositions are also useful in the field of optical components. Thus, a photoinduced thermochromic or thermoluminescent composition comprising: a) nanoparticles, particularly metallic gold nanoparticles, capable of absorbing near-infrared radiation (NIR) and converting the NIR radiation into heat; b) one or more phase change materials (PCMs), the one or more PCMs being selected from the group consisting of: b1) PCMs capable of acting as chromic or fluorochromic promoters; and b2) PCMs incapable of acting as chromic or fluorochromic promoters; and c) one or more dyes, the one or more dyes being selected from the group consisting of: c1) dyes capable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state; and c2) dyes incapable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state, wherein the photoinduced thermochromic or thermoluminescent composition comprises one or more dyes selected from the group consisting of a color former, a luminescence quencher, and a luminescence activator, when the PCM is incapable of acting as a chromic or fluorochromic promoter (b2) and the dye is incapable of changing its color or luminescence properties when the PCM changes between a solid state and a liquid state (c2). Alternatively, if at least the PCM is capable of acting as a chromic promoter or fluorochromic promoter (b1), or the dye is capable of changing its color or luminescence properties when the PCM changes between a solid state and a liquid state (c1), the photoinduced thermochromic or thermoluminescent composition may further comprise (d) one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators. The use of a photoinduced thermochromic or thermoluminescent composition, optionally comprising a promoter, in an optical component, or alternatively, the use of a photoinduced thermochromic or thermoluminescent free-standing film comprising a photoinduced thermochromic or thermoluminescent composition, one or more polymers, and optionally one or more excipients, in an optical component, or alternatively, the use of a photoinduced thermochromic or thermoluminescent article comprising a photoinduced thermochromic or thermoluminescent composition or a free-standing film in an optical component, is also part of the present invention.
[0176] In one embodiment, photoinduced thermochromic or thermoluminescent compositions that are transparent may be useful for preparing transparent films for optical filters, or for preparing smart glass, automotive glass, facility / building windows, mirrors, etc., among others. They are also useful for detecting NIR radiation. In one embodiment, the photoinduced thermochromic or thermoluminescent composition can form part of an optical (medical) device such as an artificial iris. Examples of optical medical devices include artificial eyes and soft lenses.
[0177] The use of the compositions, free-standing films, and articles of the present invention in anti-counterfeiting technology is also part of the present invention. A fifth aspect of the present invention is a photoinduced thermochromic or thermoluminescent composition comprising: a) nanoparticles, in particular metallic gold nanoparticles, capable of absorbing near-infrared radiation (NIR) and converting the NIR radiation into heat; b) one or more phase change materials (PCMs), the one or more PCMs being selected from the group consisting of b1) PCMs capable of acting as chromic or fluorochromic promoters and b2) PCMs incapable of acting as chromic or fluorochromic promoters; c) one or more dyes, the one or more dyes being selected from the group consisting of c1) dyes capable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state, and c2) dyes incapable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state; and (b2) PCMs incapable of acting as chromic or fluorochromic promoters, the dyes being incapable of changing color or luminescence properties when the PCM changes between a solid state and a liquid state. If (c2) is not present, the photoinduced thermochromic or thermoluminescent composition further comprises one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators, or alternatively, at least the PCM can act as a chromic promoter or fluorochromic promoter (b1), or the dye can change its color or luminescence properties when the PCM changes between a solid state and a liquid state (c1). - the use of a photoinduced thermochromic or thermoluminescent composition for anti-counterfeiting technology, wherein the fluoroluminescent composition optionally comprises (d) one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers and luminescence activators, or alternatively the use of a photoinduced thermochromic or thermoluminescent free-standing film for anti-counterfeiting technology, wherein the photoinduced thermochromic or thermoluminescent composition, one or more polymers and optionally one or more excipients, or alternativelyThe present invention relates to the use of a photoinduced thermochromic or thermoluminescent article, including a photoinduced thermochromic or thermoluminescent composition or a free-standing film, for anti-counterfeiting technology. In particular, the photoinduced thermochromic or thermoluminescent composition may be useful for smart labels for packaging of high-value products, invisible watermarks for official documents, and NIR-readable invisible taggants.
[0178] All of the above disclosed embodiments of the photoinduced thermochromic or thermoluminescent compositions disclosed herein, the free-standing films and articles of the present invention also apply to therapeutic, cosmetic, diagnostic, optical and anti-counterfeiting technologies.
[0179] Throughout the specification and claims, the term "comprise" and variations of that term are not intended to exclude other technical features, additives, ingredients, or steps. Furthermore, the term "comprise" includes the term "consisting of." Additional objects, advantages, and features of the present invention will become apparent to those skilled in the art upon examination of the specification or may be learned by practice of the present invention. The following examples are offered by way of illustration and are not intended to limit the invention. Furthermore, the present invention covers all possible combinations of the specific preferred embodiments described herein. [Example]
[0180] Abbreviations
[0181] ACQ: Aggregation-induced quenching AIE: Aggregation-induced Emission APTES: 3-aminopropyltriethoxysilane AuNSs: Gold nanoshells AuNRs: Gold nanorods BA: Bisphenol A CV: Crystal Violet Lactone DA: Dodecanoic acid DCA: 9,10-dicyanoanthracene DMA: N,N-dimethylaniline EC: Eikosan HD: 1-hexadecanol MCs: Microcapsules MNPs: Metal nanoparticles MS: methyl stearate nanoSLPs: solid lipid nanoparticles NIAD-4: {[5´-(p-hydroxyphenyl)-2,2´-bithienyl-5-yl]-methylidene}-propanedinitrile NIR: Near-infrared radiation NPs: nanoparticles OC: Octacosan ODA: 1-octadecylamine PCMs: Phase Change Materials PDI: Perylene diimide PES: Polyethersulfone PR: Plum Red PS: Polystyrene PTDI: N,N'-bis(sec-butyl)-1,6,7,12 tetra-(4-tert-butylphenoxy)perylene-3,4:9,10 tetracarboxylic acid diimide PVA: Polyvinyl alcohol RhB: Rhodamine B RT: room temperature SA: stearic acid SiMCs: Silica microcapsules SLPs: solid lipid particles TD: 1-tetradecanol T g : Glass transition temperature T m : Melting temperature T m :X PCM melting temperature TPE: Tetraphenylethene UV: Ultraviolet light
[0182] General considerations
[0183] For all examples of the present invention involving fluorescence changes, emission spectra were recorded by a PTI Quantamaster fluorometer or a custom-built spectrofluorometer with an Andor ICCD camera coupled to the spectrometer. UV light (355 nm) or visible light (450 nm) was used to excite the fluorophore and observe its fluorescence. Sample temperature was controlled by changing the temperature of the sample holder. For temperature-dependent fluorescence measurements, the sample was heated to the T m The sample is irradiated with a suitable excitation wavelength while maintaining the wavelength above or below λ. NIR irradiation is performed using a NIR laser (λ exc The NIR-dependent fluorescence measurements were performed using a 1000 W (830 nm, 150 mW, beam diameter = 3 mm) optical fiber. For NIR-dependent fluorescence measurements, the sample was simultaneously irradiated with NIR and UV / Vis light, suitable for fluorescence activation. Time-dependent fluorescence experiments were performed by measuring the fluorescence at the emission maximum of the dye before, during (until steady state) and after the NIR irradiation was stopped.
[0184] The measurement of the fluorescence fluctuation is carried out by applying the following formula:
[0185] TIFF0007770652000002.tif20170
[0186] where FI irradiated and FI dark are the fluorescence emission intensities (calculated by mathematical integration of the emission bands) under NIR illumination and without NIR illumination, respectively.
[0187] All examples of the present invention, including color-changing samples, were characterized by measuring the reflectance spectra of the films / papers. Temperature-dependent experiments were performed to determine the T m The reflectance spectra were determined above and below the λ of the dye before and after NIR irradiation. max The effect of NIR irradiation on the color change was monitored by measuring the reflectance in the visible region. Time-dependent reflectance experiments were performed by measuring the reflectance at the absorption maximum of the dye before, during (until steady state) and after the NIR irradiation was stopped.
[0188] The measurement of the color variation of a film or paper when using gold nanoparticles is carried out by applying the following formula:
[0189] TIFF0007770652000003.tif20170
[0190] where F(R)irradiated and F(R) are the diffuse reflectance intensities (converted to F(R) values by the Kubelka-Munk equation) under NIR irradiation and without NIR irradiation, respectively. F(R)AuNP is the diffuse reflectance intensity provided by AuNPs (i.e., AuNRs or AuNSs).
[0191] Gold nanoparticles (AuNPs)
[0192] Gold nanoparticles (AuNS) in the form of nanoshells
[0193] 1. Substrates / Coatings / Films Containing Photoinduced Thermoluminescent Compositions
[0194] 1.1. Preparation of gold nanoparticles in the form of nanoshells (AuNS)
[0195] AuNS were prepared by mixing 10 μL of APTES with 4.60 mL of water with stirring (530 rpm) for 10–20 seconds. Next, 320 μL of a 40 mM HAuCl4 aqueous solution was added, resulting in a yellow emulsion due to the low solubility of APTES in water. The HAuCl4 / APTES mixture was stirred for 30 seconds, followed by the addition of 400 μL of a 0.1 M aqueous suspension of NaBH4. After the addition of NaBH4, the color of the mixture changed to deep green, and 400 μL of a 0.1 M aqueous solution of bovine serum albumin was added to stabilize the AuNS.
[0196] 1.2.Composition
[0197] Substrate / coating / film compositions (Examples 1-15) incorporating the photoinduced thermoluminescent compositions of the present invention are disclosed in the table below.
[0198] Table 1 discloses the types of substrates, PCMs and fluorescent agents (Examples 1-15) that form part of the photoinduced thermoluminescent substrates / coatings / films of the present invention.
[0199] TIFF0007770652000004.tif221170
[0200] 1.3. Preparation Process
[0201] Photoinduced thermoluminescent compositions are included. For paper
[0202] General Procedure 1
[0203] Example 1: A solution of AuNS (0.34 mg / mL) was applied to a cellulose paper (3 × 1 cm 2 ) was dripped onto the substrate, taking care to avoid water leaking onto the substrate. After the water evaporated, the TD(PCM, T m A molten solution (0.05 g) of RhB (20 mg / mL) in water (=38 °C) was added dropwise to the activated paper covering the entire surface. During the addition, the paper was heated (using a heating plate) to m TD The temperature was kept above 100°C to avoid rapid solidification of the PCM and to allow diffusion through the pores of the paper. The final material contained a solution of AuNS and TD / RhB (15 mg) evenly distributed throughout the paper sheet. As a control experiment, paper without AuNS was prepared using the same protocol.
[0204] Papers incorporating the photoinduced thermoluminescent compositions of Examples 2, 3, 4, 5, 6 and 7 of the present invention were prepared according to the general procedure defined above for Example 1, except that the ingredients specified in Table 1 were used.
[0205] General Procedure 2
[0206] Example 8: Paper incorporating the photoinduced thermoluminescent composition of Example 8 was prepared according to the general process of Example 1, except that a mixture of PTDI (0.11 mg / mL in TD) and DMA (7.6 mg / mL in TD) was substituted for RhB. The final material contains AuNS and a solution of TD / DMA / PTDI (16 mg) evenly distributed across the paper surface. As a control, paper without AuNS is prepared using the same protocol.
[0207] Paper incorporating the photoinduced thermoluminescent composition of Example 9 of the present invention was prepared according to General Procedure 2 defined above for Example 8, except that the ingredients specified in Table 1 were used.
[0208] For free-standing films made with a polymer matrix embedding a photoinduced thermoluminescent composition:
[0209] General Procedure 3
[0210] Example 10: A film is made of a polymer matrix (PVA) embedding SLPs of the photoinduced thermoluminescent composition of Example 4 (TPE@EC). 1) Preparation of SLPs : SLPs are prepared by the emulsion cooling method. First, a molten (>T m EC , 60 °C) TPE@EC solution (3.9 mg / mL or 1 mM, 0.65 mL or 0.5 g) containing surfactant PVA (200 mg / mL) was added to a preheated (>T m EC The emulsion is mixed with an aqueous phase (20 mL) and emulsified by Ultra-Turrax® high-shear homogenization (3000 rpm, 5 min, 60 °C) to obtain TPE@EC microdroplets (15–20 μm). Once the emulsion is prepared, it is rapidly transferred into an aqueous solution (30 mL) and pre-cooled in an ice bath. The PCM rapidly solidifies to yield TPE@EC SLPs. The SLPs are separated from the water by flocculation and washed twice with cold clean water (30 mL) by decantation. The suspension is then frozen, and the SLPs are isolated by lyophilization. 2) Membrane preparation150 mg of SLPs obtained in the previous step are dispersed in 1 mL of an aqueous solution of PVA4-88 (20 wt%) and 0.25 mL of the previously prepared suspension of AuNS (0.34 mg / mL). The mixture is homogenized by vortex mixing and then applied to a substrate (surface 3 × 2 cm). 2 The water was allowed to evaporate at room temperature for 48 hours, after which a PVA film embedded with SLPs and AuNS was obtained. A control film without AuNS was obtained by the same procedure, except that no AuNS was added.
[0211] The photoinduced thermoluminescent coated substrate of Example 11 of the present invention was prepared according to General Procedure 3 defined above for Example 10, except that the components specified in Table 1 were used.
[0212] General Procedure 4
[0213] Example 12: A membrane is made of a polymer matrix (PVA) embedding nano-SLPs (TPE@OC) of the mixture of example 5. The membrane is transparent due to the small size of the SLPs. 1) Preparation of nanoSLPs : nanoSLPs are prepared by the emulsion cooling method. First, the molten (>T m OC Add 1.27 mL or 1.00 g of TPE@OC solution (4 mg / mL or 10 mM, respectively) containing surfactant PVA (100 mg / mL) to a preheated (>T m OC The emulsion is mixed with an aqueous phase (10 mL) at 80 °C and emulsified by ultrasonic homogenization (Branson sonicator, 100% amplitude, 2 min) to obtain TPE@OC nanodroplets (50–400 nm). Once the emulsion is prepared, it is rapidly transferred into an aqueous solution (20 mL) and pre-cooled in an ice bath. The PCM rapidly solidifies to yield TPE@EC SLPs. 2) Membrane preparationThe resulting suspension (0.05 mL, SLP concentration = 33 mg / mL) was diluted with 1 mL of a homogenized aqueous solution of PVA4-88 (20 wt%) and 0.25 mL of the previously prepared AuNS (0.34 mg / mL) while stirring, and then cast onto a substrate / mold. The water was allowed to evaporate at room temperature for 48 hours, after which a PVA film embedded with SLPs and AuNS was obtained. A control film without AuNS was obtained using the same procedure, but without the addition of AuNS.
[0214] General Step 5
[0215] Example 13: A membrane is made with a polymer matrix (PVA) embedding the PE@MS_SiMC of the mixture TPE@MS. 1) Microcapsule preparation The TPE@MS SiMCs were prepared by phase separation / shell formation. A solution of hydroxyl-silicate prepolymer (1 g), TPE (1.5 mg), and MS (300 mg) in EtOH (0.25 mL) was prepared by stirring the mixture at 40 °C. Once a homogeneous solution was obtained, it was mixed with water at 40 °C and emulsified for 20 min using an Ultra-Turrax® high-shear homogenizer (6000 rpm). 1 mL of aqueous NH3 (25%) was then added, and the solution was gently stirred (1000 rpm, magnetic stirring) for 10 min. The solution was then left for 1 h without stirring, and the capsules were recovered by sedimentation and washed with water. Finally, the capsules were dried at room temperature for 12-24 h. 2) Membrane preparation The resulting microcapsules are mixed with 3.3 mL of an aqueous solution of PVA4-88 (20 wt%) and 0.83 mL of the previously prepared AuNS suspension (0.34 mg / mL), stirred to homogenize, and cast onto a substrate / mold. The water is allowed to evaporate at room temperature for 24-48 hours, after which a PVA film embedded with SiMC and AuNS is obtained. A control film without AuNS is obtained by the same procedure, but without adding AuNS.
[0216] Photoinduced irreversible thermoluminescent compositions are included. For paper
[0217] General Procedure 6
[0218] Example 14: Paper composed of PS nanoparticles containing DA and RhB. 1) Preparation of PS NPs : PS (0.5 g), DA (50 mg), and RhB base (10.2 wt. % relative to the polymer) were dissolved in dichloromethane (5 mL) with magnetic stirring. Once all components were dissolved, the final organic mixture was then added to the previously prepared aqueous SDS solution (10 mL, 0.5 wt. %). The mixture was pre-emulsified (T18 Ultra-Turrax® IKA, 1000 rpm) at room temperature for 60 minutes. The formed pre-emulsion was sonicated (Branson sonicator, 70% amplitude, 30 s pulse on, 10 s pulse off) for 120 seconds to produce a nanoemulsion. The resulting mixture was transferred to a vial, and the organic solvent was allowed to evaporate overnight at room temperature, resulting in precipitation of the polymer and encapsulation of the dye and fluorescent dye in the NPs. 2) Paper preparation : PS NP powder was dispersed in water (60 mg / ml) containing AuNS (0.024 mg / ml) and applied to the surface of paper (1 × 1 cm 2 ) and dropwise (0.25 ml) of NP (15 mg / cm 2 ) and obtain a uniform distribution of AuNS. As a control experiment, paper without AuNS is prepared with the same protocol.
[0219] The photoinduced thermoluminescent coated substrate of Example 15 of the present invention was prepared according to General Procedure 6 defined above for Example 14, except that the components specified in Table 1 were used.
[0220] 1.4.Results
[0221] The effect on fluorescence change of photoinduced thermoluminescent compositions of the present invention (Examples 1-15) when exposed to NIR radiation with wavelengths between 600 nm and 1200 nm is shown below in Tables 2 and 3. Fluorescence is measured by irradiating the compositions near their respective absorption maxima.
[0222] Tables 2 and 3 show the effect on fluorescence activation (off / on examples) and quenching (on / FF examples) upon NIR irradiation and the reversibility of the effect.
[0223] TIFF0007770652000005.tif132170
[0224] TIFF0007770652000006.tif229170
[0225] 2. Substrates / coatings / films including photoinduced thermochromic coated substrate compositions
[0226] 2.1. Composition
[0227] Table 4 shows the compositions of the photoinduced thermochromic coated substrates of the present invention (Examples 16 to 25).
[0228] Table 4 discloses the types of substrates, PCMs, and pigment-forming moieties of the photoinduced thermochromic coated substrates of the present invention (Examples 16 to 25). Table 4 also discloses the presence of PCM structures.
[0229] TIFF0007770652000007.tif164170
[0230] 2.2. Preparation Process
[0231] In the case of paper containing a photoinduced thermochromic composition
[0232] General Procedure 7
[0233] Example 16: Paper containing the photoinduced thermochromic composition of Example 16 was prepared according to General Procedure 1 defined above for Example 1. After evaporation of the water, TD (T mA molten solution (0.05 g) of BA (47 mg / mL) and CV (12 mg / mL) in 0.5% CO₂ (= 38 °C) is dripped onto the activated paper, covering the entire surface. The final material contains a solution of AuNS and TD / BA / CV (23 mg) evenly distributed over the entire paper surface. As a control experiment, paper without AuNS is prepared using the same protocol.
[0234] General Procedure 8
[0235] Example 17: - Preparation of microcapsules The PES MC (BA+CV)@TD was prepared by phase separation / solvent evaporation. A solution of PES (250 mg), CV (7 mg), BA (28 mg), and TD (500 mg) in CHCl3 (5 mL) was prepared by stirring the mixture at room temperature. Once a homogeneous solution was obtained, it was mixed with an aqueous surfactant solution (PVA, 200 mg / mL) and emulsified for 15 minutes by Ultra-Turrax® high-shear homogenization (5000 rpm). After this time, the CHCl3 was evaporated on a rotary evaporator to obtain the PES MC (15-20 μm). - Paper preparation : The AuNS obtained above was placed on a paper sheet (3 × 1 cm 2 After the water was evaporated, the resulting [CV+BA]@TD@PES_MC suspension (75 mg MC / mL) (0.2 mL) was dropped onto the cellulose paper. As a control experiment, paper without AuNS was prepared using the same protocol.
[0236] The photoinduced thermochromic coated substrates of Examples 18, 19 and 20 of the present invention were prepared according to General Procedure 8 defined above for Example 17, except that the components specified in Table 4 were used.
[0237] Made by embedding a photoinduced thermochromic composition in a polymer matrix freestanding membrane
[0238] General Procedure 9
[0239] Example 21: - Preparation of microcapsules :PES MC was prepared according to the process disclosed in General Procedure 8 for Example 17. - Membrane preparation The resulting [CV+BA]@TD@PES_MC suspension (75 mg MC / mL) is mixed with 3.3 mL of an aqueous solution of PVA4-88 (20 wt%) and 0.83 mL of the previously prepared stock AuNS suspension (0.34 mg / mL), stirred to homogenize, and cast onto a substrate / mold. The water is allowed to evaporate at room temperature for 24-48 hours, after which a PVA membrane embedded with MC and AuNS is obtained. A control membrane without AuNS is obtained by the same procedure, but without adding AuNS.
[0240] The photoinduced thermochromic coatings / films of Examples 22, 23, 24 and 25 of the present invention were prepared according to General Procedure 9 defined above for Example 21, except that the components specified in Table 4 were used.
[0241] 2.3.Results
[0242] The effect on color change when the photoinduced thermochromic compositions of the present invention (Examples 16 to 25) were irradiated with infrared light having a wavelength of 600 nm to 1200 nm is shown in Tables 5 and 6 below.
[0243] Tables 5 and 6 show the effect on color appearance (on / FF examples) and disappearance (off / on) upon NIR irradiation and the reversibility of the effect.
[0244] TIFF0007770652000008.tif116170
[0245] TIFF0007770652000009.tif145170
[0246] The results disclosed above demonstrate that the photoinduced thermochromic or thermoluminescent compositions are useful for preparing photoinduced thermochromic or thermoluminescent coated substrates with improved thermochromic and thermoluminescent behavior. In particular, the compositions of the present invention, which include photothermal metal nanoparticles capable of selectively absorbing light in the wavelength range of 600 nm to 1200 nm, one or more PCMs, and one or more dyes, or alternatively, one or more fluorescent agents, can undergo rapid, uniform, and strong color or fluorescence changes when irradiated with low power density and low energy radiation without compromising the feasibility and reversibility of the functional materials.
[0247] Gold nanoparticles in the form of nanorods (AuNRs)
[0248] 3. Substrates / Coatings / Films Containing Photoinduced Thermoluminescent Compositions
[0249] 3.1. Preparation of gold nanoparticles in the form of nanorods (AuNR)
[0250] AuNRs (diameter 9–15 nm, length 55–65 nm, dispersed in water, absorption maximum 850 nm, positively charged) were purchased from Alfa Aesar.
[0251] 3.2. Composition
[0252] The compositions of substrates / coatings (Examples 26-27) incorporating photoinduced thermoluminescent and photoinduced thermochromic compositions containing AuNRs of the present invention are disclosed in Table 7 below.
[0253] TIFF0007770652000010.tif77170
[0254] 3.3. Preparation Process
[0255] Photoinduced thermoluminescent compositions are included. For paper
[0256] General Procedure 10
[0257] Example 26: Paper containing the photoinduced thermoluminescent composition of Example 26 was prepared according to the general process of Example 1, except that AuNRs were substituted for AuNSs. The final material contained AuNRs and a solution of TD / RhB (15 mg) uniformly distributed throughout the paper sheet. As a control experiment, paper without AuNRs was prepared using the same protocol.
[0258] General Procedure 11
[0259] Example 27 Paper containing the photoinduced thermochromic composition of Example 27 was prepared according to General Procedure 10 defined for Example 26, except that BA (47 mg / mL) and CV (12 mg / mL) were replaced with RhB. The final material contained a solution of AuNR and TD / BA / CV (23 mg) uniformly distributed over the entire paper surface. As a control experiment, paper without AuNR was prepared using the same protocol.
[0260] 3.4.Results
[0261] The effect of irradiation with NIR radiation having wavelengths between 600 nm and 1200 nm on the fluorescence change upon irradiation of a photoinduced thermoluminescent composition of the present invention (Example 26) and the effect of irradiation with NIR radiation having wavelengths between 600 nm and 1200 nm on the color change upon irradiation of a photoinduced thermochromic composition of the present invention (Example 27) are shown in Tables 8 and 9 below.
[0262] Tables 8 and 9 show the effect of NIR irradiation on fluorescence appearance (off / on, Example 26) and color disappearance (on / off, Example 27) and the reversibility of the effect.
[0263] TIFF0007770652000011.tif98170
[0264] TIFF0007770652000012.tif110170
[0265] For completeness, various aspects of the invention are described in the following numbered sections.
[0266] Section 1. 1. A photoinduced thermochromic or thermoluminescent composition comprising: a) nanoparticles capable of absorbing near-infrared radiation (NIR) and converting NIR radiation into heat; b) one or more phase change materials (PCMs), b1) a PCM capable of acting as a chromic promoter or a fluorochromic promoter, and b2) PCMs that are incapable of acting as chromic or fluorochromic promoters; one or more PCMs selected from the group consisting of: c) one or more dyes, c1) a dye capable of changing its color or luminescence properties when the PCM changes between a solid state and a liquid state; and c2) dyes whose color or luminescence properties cannot be changed when the PCM changes between the solid and liquid states; one or more dyes selected from the group consisting of Including, If the PCM is incapable of acting as a chromic promoter (b2) and the dye is incapable of changing its color or luminescence properties when the PCM changes between a solid state and a liquid state (c2), the photoinduced thermochromic or thermochromic composition further comprises one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators. or alternatively, When at least the PCM is capable of acting as a chromic promoter or a fluorochromic promoter (b1), or the dye is capable of changing its color or luminescence properties when the PCM changes between a solid state and a liquid state (c1), the photoinduced thermochromic or thermoluminescent composition optionally comprises (d) one or more chromic promoters or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; Photoinduced thermochromic or thermoluminescent compositions.
[0267] Section 2. a) nanoparticles capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (PCM) (b1) that can act as chromic or fluorochromic promoters; c) one or more dyes (c2) whose color or luminescence properties cannot be changed when the PCM changes between the solid and liquid states, and Optionally, d) one or more chromic or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; a) nanoparticles capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (PCM) (b2) that are incapable of acting as chromic or fluorochromic promoters; c) one or more dyes (c1) capable of changing their color or luminescence properties when the PCM changes between the solid and liquid states, and Optionally, d) one or more chromic or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; a) nanoparticles capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (PCM) (b1) that can act as chromic or fluorochromic promoters; c) one or more dyes (c1) capable of changing their color or luminescence properties when the PCM changes between the solid and liquid states, and Optionally, d) one or more chromic or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; and, a) nanoparticles capable of absorbing NIR radiation and converting it into heat; b) one or more PCMs (PCM) (b2) that are incapable of acting as chromic or fluorochromic promoters; c) one or more dyes (c2) whose color or luminescence properties cannot be changed when the PCM changes between the solid and liquid states, and d) one or more chromic or fluorochromic promoters selected from the group consisting of color formers, luminescence quenchers, and luminescence activators; Item 1. The composition according to item 1, selected from the group consisting of:
[0268] Section 3. Item 3. The composition according to any one of items 1 and 2, wherein the nanoparticles (a) are capable of absorbing NIR radiation from 600 nm to 2200 nm.
[0269] Section 4. Item 4. The composition according to any one of items 1 to 3, wherein the nanoparticles (a) are metal nanoparticles.
[0270] Section 5. Item 5. The composition according to item 4, wherein the particle size of the metal nanoparticles is 5 to 500 nm.
[0271] Section 6. Item 6. The composition according to item 4 or 5, wherein the amount of the metal nanoparticles is 0.00005 mg to 0.5 mg per 1 mg of PCM.
[0272] Section 7. Item 7. The composition according to any one of items 4 to 6, wherein the metal nanoparticles are in a form selected from the group consisting of nanospheres, nanostars, nanodumbbells, nanotubes, nanoshells, nanorods, nanocages, nanohalfshells, nanodomes, and nanopyramids.
[0273] Section 8. Item 8. The composition according to any one of items 4 to 7, wherein the metal of the metal nanoparticles is selected from the group consisting of gold, platinum, palladium, silver, copper, aluminum, alloys thereof, oxides thereof, and mixtures thereof.
[0274] Section 9. The PCM is a PCM (b1) capable of acting as a chromic promoter or a fluorochromic promoter selected from the group consisting of an acid-containing compound, an amine-containing compound, a sulfur-containing compound, an alcohol-containing compound, and a mixture thereof; or alternatively, PCM is (C8-C 52 ) alkane-based PCM, (C 14 -C 50 ) alkene-based PCM, (C 14 -C 50 ) a PCM (b2) that cannot act as a chromic promoter or a fluorochromic promoter, selected from the group consisting of alkyne-based PCMs and mixtures thereof; Item 9. The composition according to any one of items 1 to 8.
[0275] Section 10. the dye (c1) is selected from the group consisting of dyes that change their color and / or luminescence properties depending on the aggregation / proximity state, temperature-sensitive dyes, and dyes that change their color and / or luminescence properties depending on the medium viscosity / stiffness, and is capable of changing its color or luminescence properties when the PCM changes between a solid state and a liquid state, or alternatively, The dye is a dye (c2) selected from the group consisting of charge transfer dyes (redox dyes), pH-responsive dyes, polarity-dependent dyes, pH-sensitive luminescent dyes and redox luminescent agents, whose color or luminescent properties cannot be changed when the PCM changes between the solid and liquid states; Item 10. The composition according to any one of items 1 to 9.
[0276] Section 11. the chromic promoter or fluorochromic promoter is a color former selected from the group consisting of acids, bases, hydrogen bonding compounds, electron transfer compounds, and mixtures thereof; or alternatively, the chromic promoter or fluorochromic promoter is a luminescence quencher selected from the group consisting of resonance energy transfer quenchers, triplet quenchers, electron transfer quenchers, and mixtures thereof; or alternatively, the chromic promoter or fluorochromic promoter is a luminescence activator selected from the group consisting of singlet, triplet, fluorescence resonance energy transfer, and electron transfer sensitizers, and mixtures thereof; Item 11. The composition according to any one of items 1 to 10.
[0277] Section 12. Item 12. The composition according to any one of items 1 to 11, further comprising one or more additional ingredients selected from the group consisting of active pharmaceutical ingredients and reactive oxygen species.
[0278] Section 13. Item 13. A photoinduced thermochromic or thermoluminescent freestanding film comprising the photoinduced thermochromic or thermoluminescent composition according to any one of items 1 to 12, one or more polymers, and optionally one or more excipients.
[0279] Section 14. Item 14. A photoinduced thermochromic or thermoluminescent article comprising the composition according to any one of items 1 to 12, or alternatively, the free-standing film according to item 13.
[0280] Section 15. (A) A photoinduced thermochromic or thermoluminescent coated article, A substrate; a photoinduced thermochromic or thermoluminescent coating deposited on the surface of the substrate; Including, The coating comprises the composition according to any one of items 1 to 12, and optionally one or more polymers; Photoinduced thermochromic or thermoluminescent coated articles, (B) a photoinduced thermochromic or thermoluminescent embedded article, a porous substrate; A photoinduced thermochromic or thermoluminescent composition according to any one of items 1 to 12, embedded in a porous substrate; Optionally, one or more additional outer coatings; and a photoinduced thermochromic or thermoluminescent embedded article comprising: and, (C) A photoinduced thermochromic or thermoluminescent free-standing film-containing article comprising one or more photoinduced thermochromic or thermoluminescent free-standing films according to item 13. Item 15. The article according to item 14, selected from the group consisting of:
Claims
1. 1. A photoinduced thermoluminescent composition comprising: a) nanoparticles capable of absorbing near-infrared radiation (NIR) and converting NIR radiation into heat; b) one or more phase change materials (PCMs), b1) a PCM capable of acting as a fluorochromic promoter, and b2) PCMs that are not capable of acting as fluorochromic promoters by themselves; one or more PCMs selected from the group consisting of: c) one or more luminescent dyes, c1) a luminescent dye whose luminescence properties can be altered when the PCM changes between a solid state and a liquid state; and c2) a luminescent dye that is not capable of changing its luminescence properties by itself when the PCM changes between a solid state and a liquid state, but that is capable of changing its luminescence properties when the PCM changes between a solid state and a liquid state in the presence of a fluorochromic promoter; one or more luminescent dyes selected from the group consisting of: Including, - if the PCM is incapable of acting as a fluorochromic promoter (b2) and the luminescent dye is incapable of changing its luminescence properties when the PCM changes between a solid state and a liquid state (c2), the photoinduced thermoluminescent composition further comprises one or more fluorochromic promoters selected from the group consisting of luminescence quenchers and luminescence activators; or alternatively, - at least when the PCM is capable of acting as a fluorochromic promoter (b1) or the luminescent dye is capable of changing its luminescence properties when the PCM changes between a solid state and a liquid state (c1), the photoinduced thermoluminescent composition optionally comprises one or more fluorochromic promoters (d) selected from the group consisting of luminescence quenchers and luminescence activators; The nanoparticles (a) are metallic gold nanoparticles having an absorption wavelength of 600 nm to 2200 nm that can absorb near-infrared radiation (NIR) and convert the NIR radiation into heat; the PCM (b1) capable of acting as a fluorochromic promoter is selected from the group consisting of an acid-containing compound, an amine-containing compound, a sulfur-containing compound, an alcohol-containing compound, and mixtures thereof; the PCM (b2) incapable of acting as a fluorochromic promoter is selected from the group consisting of (C 8 -C 52 )alkane-based PCMs, (C 14 -C 50 )alkene-based PCMs, (C 14 -C 50 )alkyne-based PCMs, and mixtures thereof; Photoinduced thermoluminescent compositions.
2. a) nanoparticles capable of absorbing NIR radiation and converting said NIR radiation into heat; b) one or more PCMs (PCM) (b1) capable of acting as fluorochromic promoters; c) one or more luminescent dyes (c2) whose luminescent properties cannot be changed when the PCM changes between the solid and liquid states; and Optionally, d) one or more fluorochromic promoters selected from the group consisting of luminescence quenchers and luminescence activators; a) nanoparticles capable of absorbing NIR radiation and converting said NIR radiation into heat; b) one or more PCMs (PCMs) (b2) that are incapable of acting as fluorochromic promoters; c) one or more luminescent dyes (c1) capable of changing their luminescent properties when the PCM changes between a solid state and a liquid state; and Optionally, d) one or more fluorochromic promoters selected from the group consisting of luminescence quenchers and luminescence activators; a) nanoparticles capable of absorbing NIR radiation and converting said NIR radiation into heat; b) one or more PCMs (PCM) (b1) capable of acting as fluorochromic promoters; c) one or more luminescent dyes capable of modifying their luminescence properties when the PCM changes between a solid state and a liquid state (c1); and Optionally, d) one or more fluorochromic promoters selected from the group consisting of luminescence quenchers and luminescence activators; and, a) nanoparticles capable of absorbing NIR radiation and converting said NIR radiation into heat; b) one or more PCMs (PCMs) (b2) that are incapable of acting as fluorochromic promoters; c) one or more luminescent dyes (c2) whose luminescent properties cannot be changed when the PCM changes between the solid and liquid states; and d) one or more fluorochromic promoters selected from the group consisting of luminescence quenchers and luminescence activators; 10. The composition of claim 1, selected from the group consisting of:
3. The composition according to claim 2, wherein the nanoparticles have a particle size of 5 to 500 nm.
4. 4. The composition of claim 1, wherein the amount of nanoparticles is 0.00005 mg to 0.5 mg per mg of PCM.
5. 5. The composition of claim 1, wherein the nanoparticles are in a form selected from the group consisting of nanospheres, nanostars, nanodumbbells, nanotubes, nanoshells, nanorods, nanocages, nanohalfshells, nanodomes, and nanopyramids.
6. The composition of claim 5, wherein the nanoparticles are in a form selected from the group consisting of nanospheres, nanoshells and nanorods, in particular nanoshells.
7. - the PCM is a PCM (b1) capable of acting as a fluorochromic promoter, selected from the group consisting of acid-containing compounds, amine-containing compounds, sulfur-containing compounds, alcohol-containing compounds and mixtures thereof; or alternatively, - the PCM is one or more (C 8 -C 52 ) a PCM (b2) that is unable to act as a fluorochromic promoter, selected from alkane-based PCMs; The composition of any one of claims 1 to 6.
8. the luminescent dye (c1) is selected from the group consisting of dyes that change their luminescent properties depending on the aggregation / proximity state, temperature-sensitive dyes, and dyes that change their luminescent properties depending on the medium viscosity / stiffness, and is a luminescent dye that can change its luminescent properties when the PCM changes between a solid state and a liquid state; or alternatively, the luminescent dye is a luminescent dye (c2) selected from the group consisting of charge transfer dyes (redox dyes), pH-responsive dyes, polarity-dependent dyes, pH-sensitive luminescent dyes and redox luminescent agents, the luminescent dyes being unable to change their luminescent properties when the PCM changes between a solid state and a liquid state; The composition of any one of claims 1 to 7.
9. The method of claim 8, wherein the fluorochromic promoter is a luminescence quencher selected from the group consisting of a resonance energy transfer quencher, a triplet quencher, an electron transfer quencher, and mixtures thereof. or alternatively, the fluorochromic promoter is a luminescence activator selected from the group consisting of singlet, triplet, fluorescence resonance energy transfer, and electron transfer sensitizers, and mixtures thereof; 9. The composition of any one of claims 1 to 8.
10. 10. The composition of any one of claims 1 to 9, further comprising one or more additional ingredients selected from the group consisting of active pharmaceutical ingredients and reactive oxygen species.
11. A photoinduced thermoluminescent freestanding film comprising the photoinduced thermoluminescent composition of any one of claims 1 to 10, one or more polymers, and optionally one or more excipients.
12. 12. A photoinduced thermoluminescent article comprising the composition of any one of claims 1 to 10, or alternatively the free-standing film of claim 11.
13. (A) A photoinduced thermoluminescent coated article, comprising: A substrate; a photoinduced thermoluminescent coating deposited on a surface of the substrate; Including, A photoinduced thermoluminescent coated article, wherein the coating comprises the composition of any one of claims 1 to 10, and optionally one or more polymers. (B) a photoinduced thermoluminescent embedded article, comprising: a porous substrate; A photoinduced thermoluminescent composition according to any one of claims 1 to 10 embedded in the porous substrate; Optionally, one or more additional outer coatings; and a photoinduced thermoluminescent embedded article comprising: and, (C) a photo-induced thermoluminescent free-standing film-containing article comprising one or more photo-induced thermoluminescent free-standing films according to claim 11; 13. The article of claim 12 selected from the group consisting of:
14. A photoinduced thermoluminescent composition according to any one of claims 1 to 10. or alternatively, A photoinduced thermoluminescent freestanding film as defined in claim 11. or alternatively, The photoinduced thermoluminescent article of claim 12, For use in optical components.
15. A photoinduced thermoluminescent composition according to any one of claims 1 to 10. or alternatively, A photoinduced thermoluminescent freestanding film as defined in claim 11. or alternatively, The photoinduced thermoluminescent article of claim 12, Use in anti-counterfeiting technology.
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