Electromagnetic wave absorbing sheet and its manufacturing method
The electromagnetic wave absorbing sheet with a magnetic layer of flat carbonyl iron powder addresses the limitations of existing sheets by enhancing noise suppression in the 28 GHz millimeter wave band, achieving high transmission attenuation and flexibility for curved surfaces.
Patent Information
- Application Number
- JP2025520998
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-07-27
- Filing Date
- 2024-05-29
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2044-05-29
AI Technical Summary
Existing electromagnetic wave absorbing sheets do not effectively suppress noise in the 28 GHz millimeter wave band used in 5G, and their magnetic materials, particularly carbonyl iron, have poor crystalline magnetic anisotropy due to varying reduction treatment and flattening processes, limiting noise suppression effectiveness.
An electromagnetic wave absorbing sheet with a magnetic layer containing flat carbonyl iron powder, characterized by a half-value width of the (200) plane of α-iron detected by powder X-ray diffraction between 0.15 and 0.40, ensuring high noise suppression in the microwave to millimeter wave band, including a method of reducing and flattening the carbonyl iron powder.
The sheet provides high transmission attenuation rates of 10 dB or more in the 28 GHz millimeter wave band, effectively suppressing electromagnetic noise on uneven or curved surfaces, with improved magnetic anisotropy and flexibility.
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Abstract
Description
[Technical Field]
[0001] The present application relates to an electromagnetic wave absorbing sheet that absorbs electromagnetic waves in the microwave to millimeter wave band in the near field. [Background technology]
[0002] With the advancement of wireless communication technologies, exemplified by mobile phones, various devices and sensors are now wirelessly connected to networks. Furthermore, in the medical field, cordless devices are becoming increasingly common to prevent infection, and medical devices are beginning to connect wirelessly. These communications require high speed and large capacity over relatively short distances, and therefore use high frequencies. With the increase in devices using such high frequencies, the risk of malfunctions in electronic devices and communications due to malfunctions caused by electromagnetic noise generated by the devices and interference with the electromagnetic waves used is increasing. Furthermore, in recent years, millimeter-wave radar has begun to be installed in vehicles to prevent automobile collisions. Since malfunctions in these medical and automotive devices could affect human lives, malfunctions must be avoided. Therefore, there is a growing need to apply electromagnetic wave absorbing sheets to circuit elements and transmission lines that emit and receive electromagnetic waves in the microwave to millimeter-wave bands as a measure to prevent malfunctions caused by electromagnetic noise and the resulting interference in devices, a so-called EMC (Electromagnetic Compatibility) measure.
[0003] Furthermore, in response to the recent increase in speed and capacity of mobile communication systems, the expansion of fifth-generation mobile communication systems (5G) and local 5G is underway. 5G uses the Sub6 band (3.7 GHz, 4.5 GHz band) and the 28 GHz millimeter wave band. In response to this technological trend toward using higher frequency electromagnetic waves, there is a growing demand for electromagnetic wave absorbers and sheet-shaped electromagnetic wave absorbing sheets that can suppress electromagnetic wave noise in higher frequency bands.
[0004] In light of this situation, Patent Document 1 proposes a near-field noise suppression sheet in which the half-width of the peak of the bcc(200) plane of Fe detected by powder X-ray diffraction is 0.4 or more and the imaginary part of the magnetic permeability μ″ at 10 GHz is 2.0 or more. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] JP 2022-150016 A (Patent No. 7209761 A) Summary of the Invention [Problem to be solved by the invention]
[0006] However, the evaluation disclosed in Patent Document 1 is the result of evaluating the imaginary part of the permeability μ" at 10 GHz, and does not confirm the high noise suppression effect in the 28 GHz band, which is the millimeter wave band used in 5G. In addition, the half-width of the peak of the bcc(200) plane of Fe detected by powder X-ray diffraction is powder The amount of carbonyl iron varies depending on whether or not it has been subjected to reduction treatment and the degree of flattening. powder is carbonyl iron with reduction powder Because the crystallite size is smaller and flattening processability is poor, the crystalline magnetic anisotropy cannot be increased, and even if the half-width at the peak of the Fe bcc (200) plane is 0.4 or more, the noise suppression effect in the 28 GHz millimeter wave band cannot be improved.
[0007] The present application solves the above problem by providing an electromagnetic wave absorbing sheet that can be attached to uneven or curved surfaces of electronic devices that need to be protected from the effects of electromagnetic noise, and that has electromagnetic wave absorbing performance in the near-field from the microwave band to the millimeter wave band. [Means for solving the problem]
[0008] The electromagnetic wave absorbing sheet of the present application is an electromagnetic wave absorbing sheet including a substrate and a magnetic layer, the magnetic layer including a magnetic material and a binder, and the magnetic material including flat carbonyl iron. powder The magnetic layer is characterized in that the half-value width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction is 0.15 or more and less than 0.40.
[0009] The method for producing an electromagnetic wave absorbing sheet of the present application is a method for producing the electromagnetic wave absorbing sheet of the present application, comprising the steps of: powder and a step of reducing the reduced carbonyl iron. powder and a process of flattening the reduced carbonyl iron. powder The method is characterized by comprising the steps of: mixing a binder and a solvent to prepare a coating material for forming a magnetic layer; and applying the coating material for forming a magnetic layer to a substrate and drying it. [Effects of the Invention]
[0010] According to the present application, an electromagnetic wave absorbing sheet can be provided that can be attached to uneven or curved surfaces of electronic devices where the effects of electromagnetic noise should be prevented, and that has electromagnetic wave absorption performance (noise suppression effect) in the near-field from the microwave band to the millimeter wave band. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 is a schematic cross-sectional view showing an example of an electromagnetic wave absorbing sheet according to an embodiment. [Figure 2] FIG. 2 is a schematic cross-sectional view showing another example of the electromagnetic wave absorbing sheet according to the embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0012] (Electromagnetic wave absorbing sheet) An embodiment of the electromagnetic wave absorbing sheet of the present application will be described. The electromagnetic wave absorbing sheet of this embodiment includes a substrate and a magnetic layer, the magnetic layer including a magnetic material and a binder, and the magnetic material is flat carbonyl iron. powderThe magnetic layer is characterized in that the half-value width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction is 0.15 or more and less than 0.40.
[0013] In the electromagnetic wave absorbing sheet of the present application, the magnetic layer contains flat carbonyl iron as the magnetic material. powder The magnetic layer has a peak full width at half maximum of 0.15 or more and less than 0.40 for the α-iron (200) plane as detected by powder X-ray diffraction, and therefore has high electromagnetic wave absorption performance from the microwave band to the millimeter wave band, and can exhibit high noise suppression effect particularly in the 28 GHz millimeter wave band used in 5G. More specifically, an electromagnetic wave absorbing sheet can be provided that has a high transmission attenuation rate of 10 dB or more in the 28 GHz millimeter wave band.
[0014] In this application, the "millimeter wave band" is defined to include the 28.2 to 29.1 GHz band that can be used for local 5G.
[0015] The electromagnetic wave absorbing sheet of this embodiment will be described below with reference to the drawings. Fig. 1 is a schematic cross-sectional view showing an example of the electromagnetic wave absorbing sheet of this embodiment. In Fig. 1, the electromagnetic wave absorbing sheet 10 comprises a substrate 11 and a magnetic layer 12 disposed on the substrate 11. In Fig. 1, the electromagnetic wave absorbing sheet 10 has a two-layer structure consisting of the substrate 11 and the magnetic layer 12, but it may also have a three-layer structure by further disposing an adhesive layer on the magnetic layer 12 side.
[0016] 2 is a schematic cross-sectional view showing another example of the electromagnetic wave absorbing sheet of this embodiment. In Fig. 2, the electromagnetic wave absorbing sheet 10' includes a substrate 11, a metal layer 13 disposed on the substrate 11, and a magnetic layer 12 disposed on the metal layer 13. In Fig. 2, the electromagnetic wave absorbing sheet 10' has a three-layer structure consisting of the substrate 11, the magnetic layer 12, and the metal layer 13, but it may also have a four-layer structure by further disposing an adhesive layer on the magnetic layer 12 side.
[0017] The overall thickness of the electromagnetic wave absorbing sheet of this embodiment is not particularly limited and can be 20 to 1000 μm, but is more preferably 20 to 100 μm. If the overall thickness of the electromagnetic wave absorbing sheet is too thin, the thickness of the magnetic layer will also be thin, reducing the electromagnetic wave absorption properties and the strength of the entire sheet. On the other hand, if the overall thickness of the electromagnetic wave absorbing sheet is too thick, the flexibility will be reduced, making it difficult to attach the sheet to uneven or curved surfaces of electronic devices.
[0018] Next, each component of the electromagnetic wave absorbing sheet of this embodiment will be described.
[0019] <Base material> The substrate used in the electromagnetic wave absorbing sheet of this embodiment serves as a base on which the magnetic layer is formed.
[0020] The substrate may be any flexible material capable of ensuring adhesion to the magnetic layer, and typically a resin film is used. Examples of resins constituting the substrate include polyolefin resins (polyethylene, polypropylene, etc.), polyester resins (polyethylene terephthalate (PET), polyethylene naphthalate (PEN), polybutylene terephthalate (PBT), polybutylene naphthalate (PBN), etc.), polyimide resins, polyamide resins, ethylene-vinyl acetate copolymers, ionomer resins, ethylene-(meth)acrylic acid copolymers, ethylene-(meth)acrylic acid ester copolymers, ethylene-butene copolymers, ethylene-hexene copolymers, polyurethane resins, polyether ketone resins, polyether resins, polyethersulfone resins, polystyrene resins (polystyrene, etc.), polyvinyl chloride resins, polyvinylidene chloride resins, polyvinyl alcohol resins, polyvinyl acetate resins, vinyl chloride-vinyl acetate copolymers, polycarbonate resins, fluorine-based resins, silicone resins, cellulose resins, and crosslinked versions of these resins. Among these, polyethylene terephthalate (PET) is more preferable in terms of mechanical properties and cost. One or more of these resin materials can be used. The resin material may have a functional group as needed. A functional monomer or a modifying monomer may be grafted onto the resin material.
[0021] The surface of the substrate may be subjected to a known surface treatment to improve adhesion to the adjacent magnetic layer. Specific examples of such surface treatments include corona discharge treatment, ozone exposure treatment, high-voltage shock exposure treatment, and ionizing radiation treatment. The substrate may also be subjected to a coating treatment with an undercoat (such as silicone treatment), a primer treatment, a matte treatment, a crosslinking treatment, or the like.
[0022] The substrate may be in the form of a single layer or a laminate of two or more layers. If necessary, known auxiliary agents such as fillers, flame retardants, antidegradants, antistatic agents, softeners, and plasticizers may be added to the substrate.
[0023] The thickness of the substrate is not particularly limited, but is preferably 5 to 20 μm, and more preferably 10 to 15 μm. When the thickness of the substrate is within the above range, the electromagnetic wave-absorbing sheet of the present embodiment can achieve both strength and flexibility.
[0024] <Magnetic layer> The magnetic layer used in the electromagnetic wave absorbing sheet of this embodiment contains a magnetic material and a binder. The thickness of the magnetic layer is not particularly limited, but if it is too thin, the electromagnetic wave absorption property decreases, and if it is too thick, the flexibility decreases, so it is usually set in the range of 5 to 70 μm. In addition, the surface resistance value of the magnetic layer is 10 5 It is preferably Ω / square or higher. If the surface resistance of the magnetic layer is too low, there is a risk of short-circuiting when the electromagnetic wave absorbing sheet is attached to the uneven or curved surface of an electronic device. The surface resistance of the magnetic layer is measured using a resistance meter "Hiresta-MCP-HT450" manufactured by Mitsubishi Analytech Co., Ltd.
[0025] The materials constituting the magnetic layer will now be described.
[0026] [Binder] The binder is not particularly limited, and a wide range of resin binders can be used, but in order to increase the flexibility of the electromagnetic wave absorbing sheet, it is preferable to use polyester resin, acrylic resin, polyurethane resin, etc. In particular, carbonyl iron, which has high water dispersibility, is preferred. powder A water-soluble polyester resin having excellent affinity with the resin is most preferred.
[0027] [Magnetic material] The magnetic material is flat carbonyl iron. powder When a magnetic layer is formed together with the binder, the half-width of the peak of the α-iron (200) plane detected by powder X-ray diffraction of the magnetic layer is 0.15 or more and less than 0.40, thereby providing an electromagnetic wave absorbing sheet with a high transmission attenuation rate of 10 dB or more in the 28 GHz millimeter wave band.
[0028] The magnetic material is a soft magnetic material with high initial magnetic permeability, and can exhibit electromagnetic wave absorption performance even when contained in a small amount in the magnetic layer, so that electromagnetic wave noise suppression effects can be exhibited even when the magnetic layer is made thin.
[0029] In general, flat magnetic powder has higher magnetic anisotropy than spherical magnetic powder, making it easier to achieve high noise suppression effects at high frequencies. Furthermore, when high-frequency electromagnetic waves, such as those in the millimeter wave band, are incident on a soft magnetic material, an alternating current flows through the soft magnetic material. Flattening a soft magnetic material so that its thickness is equal to or less than the skin depth of the alternating current increases the imaginary part of the magnetic permeability of the soft magnetic material, making it easier to achieve noise suppression effects.
[0030] The magnetic material is obtained by thermally decomposing iron pentacarbonyl, represented by Fe(CO)5, to obtain raw material powder, which is then subjected to a milling process (disaggregation of secondary particles), a classification process (adjustment of particle size distribution), and a reduction treatment process to obtain reduced carbonyl iron. powder and then reducing the carbonyl iron powder can be obtained by flattening.
[0031] In general, reduced carbonyl iron powder is non-reducing carbonyl iron powder The crystallite size is larger than that of non-reduced carbonyl iron. powder Therefore, reduced carbonyl iron is easier to flatten than powder When the flattening treatment is performed, carbonyl iron powder The crystalline distortion increases, and the magnetic anisotropy or shape anisotropy is increased, which can be expected to result in a further increase in magnetic permeability.
[0032] The above carbonyl iron powder The crystallinity index of can be expressed by the half-width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction. If the half-width is less than 0.15, it is carbonyl iron. powder If the flattening process is not progressing well and the half-width is 0.40 or more, the flattening process is too much and the flat carbonyl iron powderFor this reason, when the magnetic layer is formed together with a binder, the magnetic material is flat reduced carbonyl iron, the full width at half maximum of the peak of the (200) plane of α-iron detected by powder X-ray diffraction of the magnetic layer being 0.15 or more and less than 0.40. powder The above carbonyl iron is used. powder The half-width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction, which is an index of the crystallinity of carbonyl iron, is powder The value varies depending on whether reduction treatment has been performed or not and the degree of flattening.
[0033] The half-width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction is measured as follows. The measurement device used is a Rigaku X-ray diffractometer "Smart-Lab." The measurement surface is the surface direction of the magnetic layer side of the electromagnetic wave absorbing sheet, and the measurement is performed using a focused optical system. The measurement range is 2θ = 50° to 80°, the scanning speed is 1° / min or less, and the sampling interval is 0.01° or less, and continuous measurement is performed at a constant speed. For the diffraction peak detected by measurement near 2θ = 65°, the half-width is the peak width at half the maximum peak intensity value after subtracting the background.
[0034] The magnetic material used is a flat carbonyl iron powder. Here, flat carbonyl iron powder is defined as a carbonyl iron powder having a flatness of 5.0 or more, where the aspect ratio (short side length / thickness) is the ratio of the short side length of the flat carbonyl iron powder to the thickness of the flat carbonyl iron powder. The short side length of the flat carbonyl iron powder refers to the length of the minor axis of an imaginary ellipse, assuming that the carbonyl iron powder is an ellipse when viewed from above. The thickness of the flat carbonyl iron powder refers to the length of the axis perpendicular to the imaginary flat ellipse, assuming that the carbonyl iron powder is an ellipse.
[0035] The above flat carbonyl iron powder The half-width value of carbonyl iron powderThe thickness of the flat carbonyl iron particles having a half-value width of 0.15 or more and less than 0.40 is not particularly limited because it varies depending on whether or not a reduction treatment has been performed and the degree of flattening. However, carbonyl iron particles having a thickness of 0.1 μm or more and 10 μm or less are usually used.
[0036] The maximum diameter of the flat carbonyl iron particles is not particularly limited, but carbonyl iron particles having a maximum diameter of 100 μm or less are preferred. Here, "maximum diameter" refers to the maximum length in the longitudinal direction of the carbonyl iron particles in an image of the cross section of the magnetic layer observed with a scanning electron microscope (SEM). By using carbonyl iron particles having a maximum diameter of 100 μm or less, it is possible to suppress an increase in the surface area of carbonyl iron particles with low electrical resistance, and therefore the surface resistance of the magnetic layer can be increased to 10 5 It can be Ω / square or more.
[0037] The thickness and maximum diameter of the carbonyl iron particles are determined by observing the cross section of the magnetic layer with an SEM and taking the arithmetic mean values of the thickness and maximum diameter of 100 carbonyl iron particles selected from the observed image.
[0038] The content of the magnetic material in the magnetic layer is preferably 30 to 70% by volume, more preferably 50 to 65% by volume. If the content is less than 30% by volume, the electromagnetic wave absorption performance (noise suppression effect) of the magnetic layer tends to be insufficient, while if it exceeds 70% by volume, the proportion of binder in the magnetic layer decreases, reducing the adhesion of the magnetic layer to the substrate, making the magnetic layer more susceptible to cracking and powder falling when bent, and also reducing the surface resistance of the magnetic layer.
[0039] The above flat carbonyl iron powder The specific gravity of the cellulose is not particularly limited, but is generally about 7.2.
[0040] <Metal layer> As shown in Fig. 2, by disposing a metal layer on the electromagnetic wave absorbing sheet of this embodiment, it is possible to impart electric field shielding performance to the electromagnetic wave absorbing sheet and suppress not only magnetic noise but also electrical noise. In Fig. 2, the metal layer is disposed between the substrate and the magnetic layer, but it may also be disposed on the outer surface of the magnetic layer.
[0041] The type of metal constituting the metal layer is not particularly limited as long as it has flexibility and adhesion to the magnetic layer, but aluminum, copper, etc. are preferred because they are inexpensive, can be easily processed into a thin film, and have excellent flexibility.
[0042] The thickness of the metal layer is not particularly limited, but if it is too thick, flexibility decreases, so it is usually set in the range of 0.1 to 1 μm.
[0043] The metal layer can be used alone as a metal foil, but can also be used by forming a metal thin film on the above-mentioned substrate by vapor deposition or sputtering.
[0044] <Adhesive layer> When an adhesive layer is disposed on the electromagnetic wave absorbing sheet of this embodiment, the thickness of the adhesive layer is preferably 10 to 50 μm, more preferably 15 to 35 μm. If the thickness is less than 10 μm, sufficient adhesive strength may not be obtained. If the thickness exceeds 50 μm, the adhesive effect of the adhesive layer becomes saturated and the overall thickness of the electromagnetic wave absorbing sheet increases, reducing the flexibility of the electromagnetic wave absorbing sheet, reducing its ability to follow when attached to electronic components, and making it difficult to wrap around wiring, etc.
[0045] (Breaking characteristics of electromagnetic wave absorbing sheet) [Elongation at break] The electromagnetic wave absorbing sheet of the present application preferably has a breaking elongation, as defined in JIS (Japanese Industrial Standards) K7127, of greater than 75%. When the breaking elongation is greater than 75%, the electromagnetic wave absorbing sheet of the present application can conform to the adherend more easily when attached to an uneven or curved surface of an electronic device. In particular, when the electromagnetic wave absorbing sheet of the present application is wrapped around a cable or connector, no cracks occur in the magnetic layer, and the magnetic layer does not peel off from the substrate. The breaking elongation is more preferably 95% or greater, and even more preferably 100% or greater. While the upper limit of the breaking elongation is not particularly limited, it is typically 150% or less.
[0046] [Breaking stress] The electromagnetic wave absorbing sheet of the present application preferably has a breaking stress, as defined in JIS K7127, of 30 MPa or more. When the electromagnetic wave absorbing sheet of the present application is attached to an uneven or curved surface of an electronic device, the electromagnetic wave absorbing sheet's ability to conform to the adherend is improved. In particular, even when the electromagnetic wave absorbing sheet of the present application is wrapped around a cable or connector, cracks do not occur in the magnetic layer, and the magnetic layer does not peel off from the substrate. The breaking stress is more preferably 35 MPa or more. While there is no particular upper limit for the breaking stress, it is typically 70 MPa or less.
[0047] Furthermore, it is most preferable that the electromagnetic wave absorbing sheet of the present application has a breaking elongation of more than 75% as defined in JIS K 7127 and a breaking stress of at least 30 MPa as defined in JIS K 7127. This can further improve both the strength and wrapability (conformability) of the electromagnetic wave absorbing sheet, particularly when the electromagnetic wave absorbing sheet of the present application is used by wrapping it around a cable or a connector.
[0048] The breaking elongation and breaking stress of the electromagnetic wave-absorbing sheet of the present application are measured by the method specified in JIS K7127. Specifically, the prepared electromagnetic wave-absorbing sheet is pulled at a pulling rate of 50 mm / min using a tension-compression tester to break a test piece. From the elongation at which the test piece breaks, the breaking elongation is calculated by (breaking displacement / gauge line distance before pulling) x 100. Furthermore, the breaking stress is calculated from the breaking test force per unit area of the fracture surface at which the test piece breaks.
[0049] (Method of manufacturing an electromagnetic wave absorbing sheet) An embodiment of a method for producing an electromagnetic wave absorbing sheet according to the present invention will be described. The method for producing an electromagnetic wave absorbing sheet according to the present invention is a method for producing the electromagnetic wave absorbing sheet according to the present invention, which comprises the steps of: powder and a step of reducing the reduced carbonyl iron. powder and a process of flattening the reduced carbonyl iron. powder The method includes a step of mixing a binder and a solvent to prepare a coating material for forming a magnetic layer, and a step of applying the coating material for forming a magnetic layer to a substrate and drying it.
[0050] Carbonyl iron powder > Carbonyl iron before reduction treatment powder can be obtained by reacting raw iron powder with carbon monoxide (CO gas) to synthesize iron pentacarbonyl represented by Fe(CO)5, which is then thermally decomposed to produce raw powder, which is then subjected to a milling process (to deagglomerate secondary particles) and a classification process (to adjust the particle size distribution) in that order.
[0051] <Reduction treatment> Next, the carbonyl iron obtained above powder is reduced to form reduced carbonyl iron powder The reduction treatment is usually carried out by hydrogen reduction treatment (hydrogen annealing).
[0052] <Flattening processing> Next, the reduced carbonyl iron powder is flattened to produce flat reduced carbonyl iron. powder The specific method for the flattening treatment is not particularly limited, but for example, mechanical processing using a ball mill, a bead mill, or the like can be applied.
[0053] The flat reduced carbonyl iron produced by the above process powder In the case of the spherical reduced carbonyl iron, the half-width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction can be 0.15 or more and less than 0.40. powder , spherical non-reducing carbonyl iron powder , and flat non-reducing carbonyl iron powder In either case, it is difficult to make the half-width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction equal to or greater than 0.15 and less than 0.40.
[0054] <Paint for forming magnetic layer> The coating material for forming the magnetic layer is reduced carbonyl iron that has been flattened. powder The magnetic layer can be prepared by mixing a binder and a solvent. In this case, if a water-soluble polyester resin with excellent paint properties is used as the binder, the paint properties of the magnetic layer-forming paint are improved, and the magnetic layer can be easily applied to the substrate using a normal coating process.
[0055] Examples of the solvent that can be used include water, ethyl alcohol, methyl alcohol, n-propyl alcohol, isopropyl alcohol, n-butyl alcohol, isobutyl alcohol, ethylene glycol, and propylene glycol.
[0056] The content of the solvent is not particularly limited, but may be 50.0% by mass or more and 99.5% by mass or less relative to the total mass of the coating material for forming the magnetic layer.
[0057] The coating material for forming the magnetic layer may further contain a surface conditioner, an antifoaming agent, a thickener, and the like.
[0058] <Magnetic layer formation> Examples of methods that can be used to apply the magnetic layer-forming coating material onto a substrate include bar coating, reverse coating, gravure coating, microgravure (registered trademark) coating, die coating, dipping, spin coating, slit coating, and spray coating.
[0059] The drying after application is preferably carried out at 100 to 150°C for 5 to 60 minutes under conditions that allow the solvent component of the magnetic layer-forming coating material to evaporate. If the solvent remains in the magnetic layer, the strength tends to decrease. Drying methods include, for example, hot air drying, heat drying, vacuum drying, and natural drying. [Example]
[0060] The present application will be described in detail below using examples. However, the present application is not limited to the following examples. Unless otherwise specified, "parts" in the following means "parts by mass."
[0061] Example 1 <Preparation of paint for forming magnetic layer> The following components were mixed and dispersed to prepare a coating material for forming a magnetic layer. (1) Magnetic material (flat reduced carbonyl iron powder manufactured by Tenichi Co., Ltd., product name “RPZ”): 37.6 parts (2) Binder (water-soluble polyester resin solution, manufactured by GOO Chemical Co., Ltd., trade name "PLASCOAT Z-3310", solid content concentration: 25.0% by mass, solvent: water): 9.6 parts (3) Binder (water-soluble polyester resin solution, manufactured by GOO Chemical Co., Ltd., trade name "Pluscoat Z-760", solid content concentration: 25.0% by mass, solvent: water): 9.6 parts (4) Crosslinking agent (oxazoline group-containing water-soluble polymer, manufactured by Nippon Shokubai Co., Ltd., trade name “Epocross WS-500”): 4.0 parts (5) Thickener (water-based rheology additive, manufactured by BYK, trade name “LAPONITE-RD”): 1.0 part (6) Solvent (n-propyl alcohol): 10.0 parts (7) Pure water: 28.2 parts
[0062] In the coating material for forming the magnetic layer, the content of the magnetic material was 60% by volume relative to the total solid content of the coating material for forming the magnetic layer.
[0063] <Magnetic layer formation> Next, a 12 μm thick PET film (manufactured by Toyobo Co., Ltd., product name "Ester Film E5100") was used as a substrate, and the above-mentioned magnetic layer-forming paint was applied to one main surface of the substrate using a bar coater, followed by drying at 120°C for 5 minutes, thereby producing an electromagnetic wave-absorbing sheet of Example 1 in which a magnetic layer was formed on one main surface. The thickness of the above-mentioned magnetic layer was 64 μm.
[0064] Example 2 A spherical reduced carbonyl iron powder (trade name "RZE") manufactured by Tenichi Co., Ltd., milling balls (zirconia balls φ5 mm), and a solvent (ethanol) were placed in a wet ball mill and flattened for 2 hours. The shape of the flattened powder after drying was observed under an optical microscope, and powders with a major axis of 10 μm or more were prepared as flattened reduced carbonyl iron powder.
[0065] An electromagnetic wave absorbing sheet of Example 2 was produced in the same manner as Example 1, except that the magnetic material was changed to the flat reduced carbonyl iron powder prepared above and the thickness of the magnetic layer was changed to 68 μm.
[0066] Example 3 The electromagnetic wave absorbing sheet of Example 3 was prepared in the same manner as Example 1, except that the content of the magnetic material was changed to 40 volume % relative to the total solid content of the paint for forming the magnetic layer, and the thickness of the magnetic layer was changed to 56 μm.
[0067] Example 4 <Preparation of paint for forming magnetic layer> The following components were added to a palindrome kneader and kneaded at a rotation speed of 35 rpm while cooling with cold water to prevent the temperature from rising, to prepare a magnetic material-containing compound. (1) Magnetic material (flat reduced carbonyl iron powder manufactured by Tenichi Co., Ltd., product name “RPZ”): 88.3 parts (2) Binder (silicone rubber, manufactured by Shin-Etsu Chemical Co., Ltd., product name “KE-951KU”): 11.7 parts
[0068] Next, the magnetic material-containing compound thus prepared was dissolved in a planetary mixer together with toluene (solvent) to prepare a magnetic layer-forming paint. The magnetic material content in the magnetic layer-forming paint was 60% by volume relative to the total solid content of the magnetic layer-forming paint.
[0069] <Magnetic layer formation> Next, a 12 μm thick PET film (manufactured by Toyobo Co., Ltd., product name "Ester Film E5100") was used as a substrate, and the above-mentioned magnetic layer-forming paint was applied to one main surface of the substrate using a comma coater, followed by electron beam crosslinking to produce an electromagnetic wave-absorbing sheet of Example 4 in which a magnetic layer was formed on one main surface. The thickness of the magnetic layer was 64 μm.
[0070] Example 5 <Preparation of paint for forming magnetic layer> The following components were added to a palindrome kneader and kneaded at a rotation speed of 35 rpm while cooling with cold water to prevent the temperature from rising, to prepare a magnetic material-containing compound. (1) Magnetic material (flat reduced carbonyl iron powder manufactured by Tenichi Co., Ltd., product name “RPZ”): 80.0 parts (2) Binder (acrylic rubber, manufactured by Zeon Corporation, product name "AR-51"): 20.0 parts
[0071] The electromagnetic wave absorbing sheet of Example 5 was prepared in the same manner as Example 4, except that the magnetic material-containing compound was used, the content of the magnetic material was changed to 40 volume % relative to the total solid content of the paint for forming the magnetic layer, and the thickness of the magnetic layer was changed to 100 μm.
[0072] (Comparative Example 1) An electromagnetic wave absorbing sheet of Comparative Example 1 was produced in the same manner as in Example 1, except that the magnetic material was changed to spherical reduced carbonyl iron powder manufactured by Tenichi Co., Ltd. (product name "RZE") and the thickness of the magnetic layer was changed to 63 μm.
[0073] (Comparative Example 2) An electromagnetic wave absorbing sheet of Comparative Example 2 was produced in the same manner as Example 1, except that the magnetic material was changed to spherical non-reduced carbonyl iron powder manufactured by Tenichi Co., Ltd. (product name "YW3") and the thickness of the magnetic layer was changed to 45 μm.
[0074] (Comparative Example 3) An electromagnetic wave absorbing sheet of Comparative Example 3 was produced in the same manner as in Example 1, except that the magnetic material was changed to flat non-reduced carbonyl iron powder (product name "YP") manufactured by Tenichisha, and the thickness of the magnetic layer was changed to 41 μm.
[0075] Comparative Example 4 Tenichi Corporation's flat reduced carbonyl iron powder (product name "RPZ"), grinding balls (zirconia balls φ5 mm), and a solvent (ethanol) were placed in a wet ball mill and flattened for 10 hours. The shape of the flattened powder after drying was observed under an optical microscope, and powders with a major axis of 10 μm or more were prepared as flat reduced carbonyl iron powders.
[0076] An electromagnetic wave absorbing sheet of Comparative Example 4 was produced in the same manner as in Example 1, except that the magnetic material was changed to the flat reduced carbonyl iron powder prepared above.
[0077] For the electromagnetic wave absorbing sheets produced in Examples 1 to 5 and Comparative Examples 1 to 4, the half-width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction of the magnetic layer, the surface resistance of the magnetic layer, the transmission attenuation rate (Rtp) at 28 GHz, the breaking elongation, and the breaking stress were measured.
[0078] <Half width> The half-width of the peak of the (200) plane of α-iron detected in the powder X-ray diffraction of the magnetic layer was measured using the X-ray diffractometer "Smart-Lab" manufactured by Rigaku Corporation, as described above.
[0079] <Surface resistance value> As mentioned above, the surface resistance value of the magnetic layer was measured using a resistance meter "Hiresta-MCP-HT450" manufactured by Mitsubishi Analytech Co., Ltd.
[0080] <Transmission attenuation rate> The magnetic noise suppression effect of the manufactured electromagnetic wave absorbing sheet was evaluated by measuring the transmission attenuation rate (Rtp) at 28 GHz using the microstrip line method. Specifically, the transmission attenuation rate at 28 GHz of the electromagnetic wave absorbing sheet was measured using Keycom's near-field noise suppression sheet evaluation system, which complies with the measurement system (Rtp measurement system) of IEC No. IEC62333-1 and IEC62333-2.
[0081] <Elongation at break and breaking stress> The breaking elongation and breaking stress of the prepared electromagnetic wave absorbing sheets were measured according to the methods specified in JIS K7127. Specifically, the prepared electromagnetic wave absorbing sheets were pulled at a pulling speed of 50 mm / min using a MinebeaMitsumi "Technograph" tension and compression testing machine to break the test specimens. The breaking elongation was calculated from the elongation at the time the test specimen broke by multiplying (breaking displacement / gauge line distance before tensioning) by 100. The breaking stress was also calculated from the breaking test force per unit area of the fracture surface at the time the test specimen broke.
[0082] The above results are shown in Tables 1 and 2 together with the type of magnetic material used in the magnetic layer of the produced electromagnetic wave absorbing sheet, its characteristics, the thickness of the magnetic layer, the content of the magnetic material, and the type of binder.
[0083] [Table 1]
[0084] [Table 2]
[0085] As can be seen from Table 1, in the electromagnetic wave absorbing sheets of Examples 1 to 5, the half-width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction of the magnetic layer was 0.15 or more and less than 0.40, and the transmission attenuation rate (Rtp) was 10 dB or more at 28 GHz, demonstrating a high magnetic noise suppression effect.
[0086] Furthermore, the electromagnetic wave absorbing sheets of Examples 1 to 3, which used water-soluble polyester as the binder, had elastic elongation rates of more than 75% and elastic stress rates of 30 MPa or more. On the other hand, the electromagnetic wave absorbing sheets of Example 4, which used silicone rubber as the binder, and Example 5, which used acrylic rubber as the binder, had elastic elongation rates of 75% or less and elastic stress rates of less than 30 MPa. Therefore, when the electromagnetic wave absorbing sheets were wound around a stainless steel mandrel having a diameter of 3 mm in accordance with JIS K5600-5-1, the electromagnetic wave absorbing sheets of Examples 1 to 3 could be wound without any problems, but the electromagnetic wave absorbing sheets of Examples 4 and 5 had small elastic elongation rates, which caused breakage within the sheet, and small breaking stress, which made winding difficult.
[0087] On the other hand, in Comparative Example 1, spherical reduced carbonyl iron was used, which had not been subjected to flattening treatment. powder In Comparative Example 2, the half-width was low at 0.07 and the transmission attenuation rate was low at 5.7 dB. powder In Comparative Example 3, the flattened non-reduced carbonyl iron was used, resulting in a half-width of 1.48, which is more than 0.4, and the transmission attenuation rate was low at 3.4 dB, possibly because no flattening treatment was performed. powder The half-width was 2.25, which is more than 0.4, and the non-reduced carbonyl iron powder The transmission attenuation rate was low at 6.3 dB, possibly due to excessive flattening treatment. Furthermore, in Comparative Example 4, the half-width was 0.50, which was more than 0.4, and the transmission attenuation rate was low at 8.0 dB. This indicates that the flattened reduced carbonyl iron powder It can be seen that even if the half width is outside the range of 0.15 to 0.40, the noise suppression effect decreases.
[0088] Regarding the embodiments of the present application including the above Examples 1 to 5, the following additional embodiments are disclosed. (Additional Form 1) An electromagnetic wave absorbing sheet including a substrate and a magnetic layer, the magnetic layer includes a magnetic material and a binder; The magnetic material is a flat carbonyl iron powder Including, An electromagnetic wave absorbing sheet, wherein the half-value width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction of the magnetic layer is 0.15 or more and less than 0.40. (Additional Form 2) An electromagnetic wave-absorbing sheet according to Additional Form 1, wherein the breaking elongation specified in JIS K7127 is greater than 75%. (Additional Form 3) An electromagnetic wave-absorbing sheet according to Additional Form 1, which has a breaking elongation as specified in JIS K7127 of 95% or more. (Additional Form 4) An electromagnetic wave-absorbing sheet according to any one of Additional Forms 1 to 3, which has a breaking stress as specified in JIS K7127 of 30 MPa or more. (Additional Form 5) An electromagnetic wave-absorbing sheet according to any one of Additional Forms 1 to 3, which has a breaking stress as specified in JIS K7127 of 35 MPa or more. (Additional Form 6) The flat carbonyl iron powder However, reduced carbonyl iron powder 6. The electromagnetic wave-absorbing sheet according to any one of Additional Forms 1 to 5, wherein: (Additional Form 7) The electromagnetic-wave-absorbing sheet according to any one of Additional Forms 1 to 6, wherein the content of the magnetic material in the magnetic layer is 30 to 70% by volume. (Additional Form 8) The electromagnetic-wave-absorbing sheet according to any one of Additional Forms 1 to 6, wherein the content of the magnetic material in the magnetic layer is 50 to 65% by volume. (Additional Form 9) The electromagnetic wave-absorbing sheet according to any one of Additional Forms 1 to 8, wherein the binder contains a water-soluble polyester resin. (Additional Form 10) The electromagnetic wave-absorbing sheet according to any one of Additional Forms 1 to 9, wherein the substrate is a resin film. (Additional Form 11) The surface resistance of the magnetic layer is 10 5 11. The electromagnetic wave-absorbing sheet according to any one of Supplementary Forms 1 to 10, having a resistivity of Ω / square or more. (Additional Form 12) The electromagnetic wave-absorbing sheet according to any one of Additional Forms 1 to 11, further comprising a metal layer. (Additional Form 13) An electromagnetic wave-absorbing sheet according to any one of Additional Forms 1 to 12, which has an overall thickness of 20 to 1000 μm. (Additional Form 14) A method for producing the electromagnetic wave absorbing sheet according to any one of Additional Forms 1 to 13, comprising: carbonyl iron powder a step of reducing the Reduced carbonyl iron powder a step of flattening the Flattened reduced carbonyl iron powder a step of mixing a binder and a solvent to prepare a coating material for forming a magnetic layer; and applying the magnetic layer-forming paint to a substrate and drying the paint. (Additional Form 15) The method for producing an electromagnetic wave-absorbing sheet according to Additional Form 14, wherein the reduction treatment is a hydrogen reduction treatment.
[0089] The present application may be implemented in other forms than those described above. The embodiments disclosed in the present application are merely examples and are not intended to be limiting. The scope of the present application shall be interpreted in accordance with the appended claims rather than the above description, and all modifications within the scope of the claims are intended to be embraced within the scope of the claims. [Explanation of symbols]
[0090] 10, 10' electromagnetic wave absorbing sheet 11 Base material 12 Magnetic layer 13 Metal layer
Claims
1. An electromagnetic wave absorbing sheet including a substrate and a magnetic layer, the magnetic layer includes a magnetic material and a binder; the magnetic material includes flat carbonyl iron powder, An electromagnetic wave absorbing sheet, wherein the half-value width of the peak of the (200) plane of α-iron detected by powder X-ray diffraction of the magnetic layer is 0.15 or more and less than 0.
40.
2. 2. The electromagnetic wave absorbing sheet according to claim 1, which has a breaking elongation as defined in JIS K7127 of more than 75%.
3. 2. The electromagnetic wave absorbing sheet according to claim 1, which has a breaking stress as specified in JIS K7127 of 30 MPa or more.
4. 2. The electromagnetic wave absorbing sheet according to claim 1, wherein the flat carbonyl iron powder is reduced carbonyl iron powder.
5. 2. The electromagnetic wave absorbing sheet according to claim 1, wherein the content of the magnetic material in the magnetic layer is 30 to 70% by volume.
6. 2. The electromagnetic wave absorbing sheet according to claim 1, wherein the binder contains a water-soluble polyester resin.
7. 2. The electromagnetic wave absorbing sheet according to claim 1, wherein the substrate is a resin film.
8. The surface resistance of the magnetic layer is 10 5 2. The electromagnetic wave absorbing sheet according to claim 1, wherein the resistance is Ω / square or more.
9. The electromagnetic wave absorbing sheet according to claim 1 , further comprising a metal layer.
10. 2. The electromagnetic wave absorbing sheet according to claim 1, wherein the total thickness is 20 to 1000 μm.
11. A method for producing the electromagnetic wave absorbing sheet according to any one of claims 1 to 10, comprising: A step of reducing the carbonyl iron powder; a step of flattening the reduced carbonyl iron powder; a step of mixing the flattened reduced carbonyl iron powder, a binder, and a solvent to prepare a coating material for forming a magnetic layer; and applying the magnetic layer-forming paint to a substrate and drying the paint.
12. The method for producing an electromagnetic wave absorbing sheet according to claim 11, wherein the reduction treatment is a hydrogen reduction treatment.
Citation Information
Patent Citations
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JP2006060008A
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JP2016081955A
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