POLYMERIC COMPOSITION CONTAINING A PHASE CHANGE MATERIAL
20230220261 · 2023-07-13
Assignee
- Sabanci Universitesi (Istanbul, TR)
- SABANCI UNIVERSITESI NANOTEKNOLOJI ARASTIRMA VE UYGULAMA MERKEZI SUNUM (Istanbul, TR)
Inventors
Cpc classification
C08J2367/02
CHEMISTRY; METALLURGY
C08J7/065
CHEMISTRY; METALLURGY
C08J2327/06
CHEMISTRY; METALLURGY
C08J2369/00
CHEMISTRY; METALLURGY
B65D81/18
PERFORMING OPERATIONS; TRANSPORTING
C09C3/10
CHEMISTRY; METALLURGY
C09C3/08
CHEMISTRY; METALLURGY
International classification
C09K5/06
CHEMISTRY; METALLURGY
C08J7/06
CHEMISTRY; METALLURGY
C09C3/08
CHEMISTRY; METALLURGY
C09C3/10
CHEMISTRY; METALLURGY
Abstract
A polymeric composition containing at least one polymer and halloysite nanotubes is disclosed. At least a portion of the halloysite nanotubes is loaded with a phase change material and each of the loaded halloysite nanotubes contains at most one kind of phase change material. In addition, a preparation method and use of the polymeric composition are further provided.
Claims
1. A polymeric composition comprising at least one polymer and halloysite nanotubes, wherein at least a portion of the halloysite nanotubes is loaded with a phase change material, and each of the halloysite nanotubes loaded with the phase change material comprises at most one kind of phase change material.
2. The polymeric composition according to claim 1, wherein all of the halloysite nanotubes loaded with the phase change material comprise a single type of phase change material.
3. The polymeric composition according to claim 1, wherein the at least one polymer comprises polyethylene, polypropylene, polyethylene terephthalate, polyamide, polystyrene, polyvinylchloride, polycarbonate, or a combination thereof.
4. (canceled)
5. (canceled)
6. (canceled)
7. (canceled)
8. The polymeric composition according to claim 1, wherein the phase change material comprises triethylene glycol, polyethylene glycol 400, polyethylene glycol 600, or a combination thereof.
9. The polymeric composition according to claim 1, wherein the polymeric composition comprises hollow halloysite nanotubes in addition to the halloysite nanotubes loaded with the phase change material.
10. (canceled)
11. A method of producing a polymeric composition comprising at least one polymer and halloysite nanotubes, comprising steps of: loading at least a portion of the halloysite nanotubes with a phase change material, wherein each of the halloysite nanotubes loaded with the phase change material comprises at most one type of phase change material, and mixing the halloysite nanotubes loaded with the phase change material with the at least one polymer to obtain the polymeric composition.
12. The method according to claim 11, further comprising steps of: dissolving the phase change material in a solvent to obtain a solution and subjecting the solution to a sonication together with the halloysite nanotubes, and impregnating the phase change material into the halloysite nanotubes by removing the solvent in a medium by vacuuming.
13. (canceled)
14. (canceled)
15. (canceled)
16. (canceled)
17. (canceled)
18. (canceled)
19. (canceled)
20. (canceled)
21. (canceled)
22. (canceled)
23. (canceled)
24. The polymeric composition according to claim 1, wherein the halloysite nanotubes loaded with the phase change material comprise at least two different phase change materials.
25. The polymeric composition according to claim 1, wherein the polymeric composition is in a form of a polymeric film.
26. The polymeric composition according to claim 25, wherein the polymeric film has a flexible structure.
27. The polymeric composition according to claim 25, wherein a film thickness of the polymeric film is between 10 μm-70 μm.
28. The polymeric composition according to claim 25, wherein the halloysite nanotubes loaded with the phase change material are dispersed in the polymeric film and/or coated on a surface of the polymeric film.
29. The method according to claim 11, wherein all of the halloysite nanotubes loaded with the phase change material comprise a single type of phase change material.
30. The method according to claim 11, wherein the halloysite nanotubes loaded with the phase change material comprise at least two different phase change materials.
31. The method according to claim 11, wherein the polymeric composition is shaped in a form of a polymeric film.
32. The method according to claim 31, wherein a film thickness of the polymeric film is between 10 μm-70 μm.
33. The method according to claim 31, further comprising a step of dispersing the halloysite nanotubes loaded with the phase change material in the polymeric film and/or coating the halloysite nanotubes loaded with the phase change material on a surface of the polymeric film.
34. A method of use of the polymeric composition produced by the method according to claim 31 as a packaging material.
35. The method of use according to claim 34, wherein the packaging material is a food packaging material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The drawings, whose brief description is provided below, are solely intended for providing a better understanding of the present invention and are as such not intended to define the scope of protection or the context in which said scope is to be interpreted in the absence of the description.
[0024]
[0025]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0026] The present invention provides a polymeric composition containing at least one polymer and halloysite nanotubes. At least a portion of the halloysite nanotubes in the polymeric composition of the present invention is loaded with a phase change material and each of the loaded halloysite nanotubes contains at most one kind of phase change material.
[0027] Halloysite is a crystalline clay mineral belonging to the kaolin group, which is in the form of nanotubes in nature, with the chemical formula Al.sub.2[Si.sub.2O.sub.5(OH).sub.4].Math.2H.sub.2O, consisting of two-layered layers with silica on the outer surface and alumina layer on the inner surface. The sizes and shapes of halloysite clay mineral may vary depending on the deposits where it is found and on the conditions of formation, and it can be found in a variety of morphologies such as tubular, spherical, or rod-like, which is mostly in broad, tubular form. It has been observed that the polymeric composition incorporating halloysite nanotubes acquires barrier properties. Halloysite nanotubes, a type of nanoparticle, form a meandering structure in the composition. Thus, various gases in the external environment are prevented from moving through said polymeric composition.
[0028] According to the invention, at least a portion of the halloysite nanotubes in the polymeric composition is loaded with a phase change material. The halloysite nanotubes used herein are natural materials that do not have toxic effects. Halloysite could be loaded with the phase change material by virtue of the nano-sized lumens contained therein. It is not necessary for all halloysite nanotubes in the polymeric composition to be loaded with the phase change material. It is sufficient to load at least a portion of said halloysites with the phase change material.
[0029] Most of the phase change materials used for cooling purposes are in liquid state at room temperature. Therefore, it is difficult to incorporate the phase change materials in any system, which may also cause problems during use such as leakage. In this case, the phase change materials are encapsulated and loaded into halloysite nanotubes.
[0030] What matters here is that each of the loaded halloysite nanotubes contains at most one kind of phase change material. Referring to
[0031] During their trials, the inventors observed that the thermal insulation performance of the resulting polymeric composition is increased when each of the loaded halloysites is loaded with at most one phase change material.
[0032] In another embodiment of the present invention, all of said loaded halloysite nanotubes may contain a single type of phase change material. Thus, since all of the phase change material in the polymeric composition will be converted from the solid state to the liquid state at the same temperature, said phase change material will absorb heat during melting. Thus, the polymeric composition containing the phase change material is enabled to exert a cold-keeping effect.
[0033] In another embodiment of the present invention, said loaded halloysite nanotubes may contain at least two different phase change materials. Since the melting temperatures of different phase change materials will be different from each other, a possible solid-liquid phase change is observed in a wider temperature range. As shown in
[0034] In another embodiment, each of the loaded halloysites in the polymeric composition may contain an equal amount of the phase change material. In this way, by adjusting the amount of the phase change material in said polymeric composition in a controlled manner, the thermal insulation capacity is increased.
[0035] According to another embodiment of the present invention, the polymeric composition may contain 1%-40% by weight of halloysite nanotubes, preferably 5%-20% by weight. By using said amount of halloysite nanotubes, the cooling effect of the polymeric composition is increased.
[0036] In another embodiment of the invention, the polymer used in the polymeric composition is a thermoplastic polymer. By using a thermoplastic polymer, the strength of the resulting polymeric composition is increased. According to another embodiment of the invention, the thermoplastic polymer used in the polymeric composition may include polyethylene, polypropylene, polyethylene terephthalate, polyamide, polystyrene, polyvinylchloride, polycarbonate, or a combination thereof. It is determined that the polymeric composition containing said thermoplastic polymers is more resistant to external factors such as temperature and pressure. The most preferred thermoplastic polymer is polyethylene.
[0037] According to another embodiment of the invention, the melting temperature of the phase change material in the polymeric composition can range from −20° C. to 20° C. It is very critical to choose the appropriate phase change material in the thermal insulation system. When the temperature of the polymeric composition containing the phase change material reaches the melting temperature of the phase change material, the transition from the solid state to the liquid state, i.e., melting begins. The phase change materials with the appropriate melting temperature value increase the effectiveness of the thermal insulation system in which they are contained. By using the phase change materials with a melting temperature of −20° C. to 20° C., a polymeric composition may be obtained which acts as a buffer against temperature increases in the range of −20° C. to 20° C., i.e., has the ability to keep its temperature below the ambient temperature.
[0038] Systems containing phase change materials that are used to provide thermal insulation for cold chain products such as food or medicaments should be non-toxic and non-corrosive, non-flammable and non-explosive. In addition, the phase change material is expected to be chemically stable during the use of the thermal insulation system. The phase change material to be used in the polymeric composition of the present invention must satisfy all of these properties.
[0039] The amount of heat required to complete a phase change between solid-liquid states is defined as latent heat. Meanwhile, the amount of heat absorbed from or released into the outside determines the performance of the insulation system containing said phase change material. Materials that need more heat during the solid-liquid phase transition will cool their environment more effectively. One of the problems with the thermal storage systems is that the amount of heat absorbed by or released from said materials during the phase change is limited.
[0040] According to another embodiment of the invention, organic materials can be used as phase change materials. It has been observed that organic phase change materials can absorb a greater amount of heat during phase change, thereby capable of cooling its environment more effectively.
[0041] Particularly, it has been observed that fatty acid, polymeric material, paraffin-based material, and a combination thereof exhibit superior thermal properties. The thermal property of a phase change material is very critical in terms of its contribution to the thermal insulation material containing it. In other words, the thermal property of a material defines the characteristics of the polymeric composition used as a thermal insulation system.
[0042] In another embodiment of the invention, in the polymeric composition of the present invention, triethylene glycol, polyethylene glycol 400, polyethylene glycol 600, or a combination thereof can be used as phase change material. It has been observed that by using said phase change materials or a combination thereof, the latent heat that can be stored per unit volume increases. In this way, it has been found that said products can be kept at the desired temperature range for a longer period of time, thanks to the thermal insulation systems used in the storage of cold chain products, which contain one or a combination of said phase change materials. Also, with said phase change materials, it is concluded that the volume change after the phase change is minimized.
[0043] In another embodiment of the present invention, in addition to halloysite nanotubes loaded with the phase change material, hollow halloysite nanotubes may also be present in the polymeric composition of the present invention. In such an arrangement, it has been found that in addition to the cooling effect of the polymeric composition according to the invention, the addition of hollow halloysite nanotubes prevents the gas in the environment from penetrating into said polymeric composition. The hollow halloysite nanotubes are dispersed in the polymeric composition, forming a meandering path. In this way, with the polymeric composition of the invention, it has been found that gases such as oxygen, carbon dioxide, and ethylene in the environment, and the humidity and odor therein can be trapped.
[0044] According to another embodiment of the invention, the polymeric composition can be in the form of a film. Melone et al. (doi:10.1016/j.apenergy.2011.07.039) describes that systems obtained by integrating phase change materials into paper-based products are used to preserve foods that need to be kept cold. The inventors found that there is a need for a product that provides ease of use. Even if there is a thermal insulation system applied to the cold chain products, a system is desirable which is suitable for use with said system, and in which the cooling effect is increased, in case of an unexpected increase in the temperature or unforeseen long waiting times. It has been found that if no heat insulation system is used, a structure is required that will help to keep said products at a certain temperature range for a certain period of time. At this point, the inventors proposes that the polymeric composition containing at least one polymer and halloysite nanotubes, wherein at least a portion of said halloysite nanotubes is loaded with a phase change material and each of the loaded halloysite nanotubes contains at most one kind of phase change material, can be in the form of a film. The polymeric film structure is very practical in use, and since it can be applied to any product regardless of the shape and size of the product to be stored, it finds a wide range of use. The aim is to cover all surfaces of the product to be stored with the inventive polymeric composition in the form of a film. In this way, by preventing a contact of the product with air, heat insulation is provided.
[0045] According to another embodiment of the invention, the composition in the form of a polymeric film may have a flexible structure.
[0046] With its flexible structure, it can be easily applied to all kinds of products. Also, cold chain products that have an indented surface rather than a flat one may not be completely covered by inelastic polymeric films. A smallest part of the surface that cannot be covered will cause breakage of the cold chain. With the flexible structure, it is found that all kinds of products can be coated practically.
[0047] According to another embodiment of the invention, the film thickness of said polymeric film may be in the range of 10 μm-70 μm. It is determined that polymeric films with a film thickness in the range of 10 μm-70 μm have a more flexible structure. With the flexible structure, the products can be coated without leaving any space on their surfaces, which provides an effective thermal insulation.
[0048] In another embodiment of the invention, halloysite nanotubes loaded with the phase change material may be dispersed in said polymeric film and/or coated on the surface of the polymeric film. It is determined that it exhibits a good dispersion depending on the surface properties, where the halloysite nanotubes are dispersed in the polymeric film. In this case, the phase change materials are homogeneously distributed in the film and the desired thermal insulation is provided more effectively.
[0049] According to the invention, a method of producing a polymeric composition containing at least one polymer and halloysite nanotubes comprises the steps of: [0050] loading at least a portion of the halloysite nanotubes with a phase change material, wherein each of the loaded halloysite nanotubes contains at most one type of phase change material, [0051] mixing the halloysite nanotubes loaded with the phase change material with at least one polymer in order to obtain a polymeric composition.
[0052] In the production method mentioned herein, all of the loaded halloysite nanotubes may contain one type of phase change material.
[0053] According to another embodiment, the loaded halloysite nanotubes in said production method may contain at least two different phase change materials.
[0054] In order to obtain the polymeric composition of the present invention, said method may comprise the steps of: [0055] dissolving the phase change material in a solvent and subjecting it sonication together with the halloysite nanotubes, [0056] impregnating the phase change material into the halloysite nanotubes by removing the solvent in the medium by vacuuming.
[0057] According to the invention, the polymer used in said production method may be a type of thermoplastic polymer. Said thermoplastic polymer may include polyethylene, polypropylene, polyethylene terephthalate, polyamide, polystyrene, polyvinylchloride, polycarbonate, or a combination thereof. Particularly preferred thermoplastic polymer is polyethylene.
[0058] According to the invention, the melting temperature of the phase change material used in the production method may range from −20° C. to 20° C.
[0059] According to another embodiment, in said production method, halloysite nanotubes may be loaded with organic phase change materials. Said phase change material may contain fatty acid, polymeric material, paraffin-based material, or a combination thereof. In an embodiment of the invention, triethylene glycol, polyethylene glycol 400, polyethylene glycol 600, or a combination thereof may be used as phase change material.
[0060] According to another embodiment of the invention, in the production method of said polymeric composition, in addition to the halloysite nanotubes loaded with the phase change material, hollow halloysite nanotubes can also be added.
[0061] According to another embodiment of the invention, the polymeric composition obtained by said production method can be shaped in the form of a film. The extrusion method can be used in shaping the polymeric film. The thickness of said polymeric film can be in the range of 10-70 μm. A Digimatic Micrometer can be used for measuring the film thickness.
[0062] According to the invention, said production method may comprise the steps of dispersing halloysite nanotubes loaded with the phase change material in the polymeric film and/or coating them on the surface of the polymeric film.
[0063] The invention also includes the use of a polymeric composition containing at least one polymer and halloysite nanotubes, wherein at least a portion of said halloysite nanotubes is loaded with a phase change material and each of the loaded halloysite nanotubes contains at most one kind of phase change material, as a packaging material. In the transportation and storage of the cold chain products, it is aimed to cut off the contact with air in order to prevent spoilage of the product. At this point, it is preferred that said products are packaged with packaging materials. Packaging materials must have a cooling effect in order to enable the transportation and storage of the products without breaking the cold chain. The inventors have found that the desired cooling effect is achieved with the polymeric composition of the present invention containing at least one polymer and halloysite nanotubes. The phase change material in the polymeric composition of the invention, which is used as a packaging material, cools the environment by absorbing the heat of the environment during the transformation from the solid state to the liquid state. Thus, the temperature of the products that need to be kept cold for a certain period of time can remain at the desired levels.
[0064] According to another embodiment of the invention, the packaging material containing said polymeric composition can be in the form of a film. The packaging material in the form of a film containing the polymeric composition of the invention is used for coating products that are intended to be kept cold. It is known to use phase change materials in cooling systems such as paper and foam. However, since said systems do not offer practical use in all cases, the packaging material containing said polymeric composition can be designed in the form of a film in order to cover the products that are desired to be kept cold.
[0065] The invention also includes the packaging material being a food packaging material. Said packaging material may also be a pharmaceutical packaging material.
[0066] Below is an exemplary embodiment of the polymeric composition described according to the present invention. The scope of protection of the present invention is defined by the claims and is not limited to the content of the example.
EXAMPLE
[0067] According to an embodiment of the invention, the polymeric composition in the form of a film is synthesized as follows. At first, the phase change material is dissolved in methanol, which is then mixed with halloysite nanotubes. The resulting mixture is subjected to sonication. In order to remove the methanol in the medium, vacuuming is performed at 70° C. In this way, the phase change material is impregnated into the halloysite nanotubes, which is allowed to stand at 50° C. for 24 hours. The polymeric composition thus prepared is extruded and a flexible polymeric film is obtained.