Electromagnetic-wave-absorbing particle for GHz band and electromagnetic-wave-absorbing material including the same
11702349 · 2023-07-18
Assignee
- Hyundai Motor Company (Seoul, KR)
- Kia Motors Corporation (Seoul, KR)
- KOREA NATIONAL UNIVERSITY OF TRANSPORTATION INDUSTRY-ACADEMIC COOPERATION FOUNDATION (Chungju-si, KR)
Inventors
- Hyung Suk Kim (Gwangmyeong-si, KR)
- Eun Soo Lim (Pyeongtaek-si, KR)
- Ji Eun Yoo (Yangju-si, KR)
- Young Min Kang (Chungju-si, KR)
Cpc classification
C08K2201/014
CHEMISTRY; METALLURGY
H05K9/0081
ELECTRICITY
C01G49/0036
CHEMISTRY; METALLURGY
International classification
Abstract
Electromagnetic-wave-absorbing particles for a GHz band are represented by the following [Empirical Formula 1] and include M-type hexaferrite as a major phase:
Sr.sub.1-xR.sub.xFe.sub.y-2zM.sub.2zO.sub.a, [Empirical Formula 1] where R is one or more selected from Ba, Ca, and La, M is one or more selected from Zn, Ti, and Zr, 0<x≤0.8, 8≤y≤14, 0<z≤1.5, and a is 19.
Claims
1. Electromagnetic-wave-absorbing particles for a GHz band, which are represented by [Empirical Formula 2] below and which include M-type hexaferrite as a major phase:
Sr.sub.1-xR.sub.xFe.sub.y-2zZn.sub.zTi.sub.zO.sub.19, [Empirical Formula 2] wherein R is one or more selected from Ba, Ca, and La, 0<x≤0.8, 8≤y≤14, and 0<z≤1.5.
2. The electromagnetic-wave-absorbing particles of claim 1, wherein, when a value of z is 0.6, the electromagnetic-wave-absorbing particles maximally absorb an electromagnetic wave in a band of 9 to 10.5 GHz.
3. The electromagnetic-wave-absorbing particles of claim 2, wherein the electromagnetic-wave-absorbing particles have a value of x between 0.094 to 0.15.
4. An electromagnetic-wave-absorbing material for a GHz band, comprising: a polymer resin; and electromagnetic-wave-absorbing particles, which are mixed with the polymer resin and are represented by [Empirical Formula 2] below and which include M-type hexaferrite as a major phase:
Sr.sub.1-xR.sub.xFe.sub.y-2zZn.sub.zTi.sub.zO.sub.19, [Empirical Formula 2] wherein R is one or more selected from Ba, Ca, and La, 0<x≤0.8, 8≤y≤14, and 0<z≤1.5.
5. The electromagnetic-wave-absorbing material of claim 4, further comprising a permittivity-adjusting agent.
6. The electromagnetic-wave-absorbing material of claim 5, wherein the permittivity-adjusting agent is graphite.
7. The electromagnetic-wave-absorbing material of claim 6, wherein the permittivity-adjusting agent is contained in an amount of 5.0 wt % or less based on 100 wt % of a mass of electromagnetic-wave-absorbing particles.
8. The electromagnetic-wave-absorbing material of claim 7, wherein the permittivity-adjusting agent is contained in an amount of 2.0 to 5.0 wt % based on 100 wt % of the mass of the electromagnetic-wave-absorbing particles.
9. The electromagnetic-wave-absorbing material of claim 7, wherein the electromagnetic-wave-absorbing material absorbs an electromagnetic wave in a band of 24 GHz.
10. The electromagnetic-wave-absorbing material of claim 5, further comprising a reaction accelerator for accelerating a reaction of the permittivity-adjusting agent.
11. The electromagnetic-wave-absorbing material of claim 10, wherein the reaction accelerator is contained in an amount of 6.0 to 7.0 wt % based on 100 wt % of a mass of electromagnetic-wave-absorbing particles.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other objects, features and advantages of the present disclosure will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) Hereinafter, embodiments of the present disclosure will be described in more detail with reference to the accompanying drawings. However, the present disclosure is not limited to the embodiments disclosed below, but will be implemented in various different forms. These embodiments are provided to complete the disclosure of the present disclosure and to fully inform a person of ordinary skill of the scope of the disclosure.
(9) An electromagnetic-wave-absorbing material for a GHz band according to an embodiment of the present disclosure is obtained by mixing absorbing particles including M-type hexaferrite as a major phase with a polymer resin.
(10) In addition, a permittivity-adjusting agent for adjusting permittivity may be further added to the electromagnetic-wave-absorbing material.
(11) The absorbing particles are represented by the following [Empirical Formula 1].
Sr.sub.1-xR.sub.xFe.sub.y-2zM.sub.2zO.sub.a [Empirical Formula 1]
(12) In Empirical Formula 1, R is one or more selected from Ba, Ca, and La, M is one or more selected from Zn, Ti, and Zr, 0<x≤0.8, 8≤y≤14, 0<z≤1.5, and a is 19.
(13) R necessarily includes one or more of Ba, Ca, and La, and may also include a rare-earth element that may be substituted at the Sr site.
(14) In addition, M is a potential metal that may be substituted at the Fe site, and the value of y−2z is the content of Fe that maintains a hexagonal system as a major phase. It is preferable to maintain 8≤y≤14 and 0<z≤1.5.
(15) The value of a, which is an oxygen content, is an important factor in maintaining a hexagonal system, and it is preferable that the value of a be maintained at about 19.
(16) The absorbing particles may be represented by the following [Empirical Formula 2], in which Zn and Ti are selected as M.
Sr.sub.1-xR.sub.xFe.sub.y-2zZn.sub.zTi.sub.zO.sub.19 [Empirical Formula 2]
(17) With the above composition, it is possible to absorb electromagnetic waves of a desired frequency range in a band of several to tens of GHz.
(18) Next, a process of deriving [Empirical Formula 1] as described above will be described.
(19) First, the magnetic resonance frequency corresponding to the frequency at which an absorption rate is maximum follows [Snoek's law] below.
(20) [Snoek's law]
(21)
(22) In [Snoek's law], μ.sub.s means magnetic permeability, γ means gyromagnetic ratio, M.sub.s means saturation magnetization, and f.sub.r means magnetic resonance frequency.
(23) Since the gyromagnetic ratio of a material is a constant according to the characteristics of the material, and f.sub.r (magnetic resonance frequency) is determined by a saturation magnetization value (M.sub.s) and the value of (μ.sub.s−1).
(24) Therefore, in [Empirical Formula 1], after the value of x was fixed to 0.094 and the value of y was fixed to 11, the values of M.sub.s and μ.sub.s in the composition for which the value of z was changed were measured through BH curve measurement.
(25) In addition, f.sub.r (magnetic resonance frequency) at which the absorption rate of the electromagnetic wave was maximized for each sample was derived through Snoek's Law, and the results are shown in Table 1 below.
(26) TABLE-US-00001 TABLE 1 Classifi- cation (μ.sub.s − 1) (No.) z μ.sub.s − 1 f.sub.r (μ.sub.s − 1)f.sub.r M.sub.s f.sub.r/M.sub.s 1 0 0.242 14.56 3.52352 2000 0.00176176 2 0 0.036 >50 3.06 2000 0.00153 3 0.8 0.076 40 3.04 1660 0.00183133 4 1 0.154 20 3.08 1630 0.00188957 5 1.2 0.298 10.1 3.0098 1630 0.0018465 6 1.4 Slope 3.2 — — —
(27) From Table 1, it can be confirmed that when a z value is more than 0 and 1.5 or less, the value of f.sub.r (magnetic resonance frequency) becomes a value corresponding to a band of several to tens of GHz. For example, in order to set the value of f.sub.r (magnetic resonance frequency) to be 24 GHz, it can be seen that the value of (μ.sub.s−1) has the closest value when z is 1. The value of (μ.sub.s−1) when the value of f.sub.r (magnetic resonance frequency) is 24 GHz may be theoretically calculated using Snoek's Law, and the calculated value of (μ.sub.s−1) is preferably 0.128.
(28) Accordingly, several samples in which the content of each of Sr and La was adjusted in the composition in the case of z of 1 were manufactured, and an experiment was conducted to obtain the sample having the value of (μ.sub.s−1) that was close to 0.128. The results are shown in
(29)
(30) As can be seen from
(31) Therefore, it can be confirmed that the absorbing particles exhibiting an absorption mechanism caused by a ferromagnetic resonance phenomenon at 24 GHz have a composition of Sr.sub.0.85La.sub.0.15Fe.sub.9Zn.sub.1.0Ti.sub.1.0O.sub.19.
(32) Based on this, it can be seen that absorbing particles in which the value of x is 0.094 and the value of z is 1.2 have the highest absorption ability in a band of 9 to 10.5 GHz.
(33) Next, for the purpose of matching the impedance of the absorbing material including the absorbing particles and the polymer resin mixed therein, the permittivity of the absorbing material was controlled.
(34) In this embodiment, graphite was added as a permittivity-adjusting agent to the absorbing material in order to control the permittivity of the absorbing material.
(35) The absorbing material was manufactured so as to have a composition of Sr.sub.0.906La.sub.0.094Fe.sub.9.8Zn.sub.0.6Ti.sub.0.6O.sub.19, and the amount of graphite mixed with the absorbing material was changed to measure changes in magnetic permeability and permittivity.
(36)
(37) As can be confirmed from
(38) Therefore, it can be confirmed that the permittivity is adjusted without changing the magnetic permeability of the absorbing material by mixing the graphite as the permittivity-adjusting agent and appropriately adjusting the mixing amount thereof.
(39) Meanwhile, even when the value of f.sub.r (magnetic resonance frequency) of the absorbing particles coincides with the frequency of the electromagnetic wave to be absorbed, the absorbing particles may not significantly absorb the electromagnetic wave at the value of f.sub.r (magnetic resonance frequency). Accordingly, it is necessary to match the impedance in a vacuum with the impedance of the absorbing material.
(40) The impedance (Z.sub.o) in a vacuum and the impedance (Z.sub.in) of the absorbing particles may be calculated using the following [Relational Expression].
Z.sub.in/Z.sub.0=√{square root over (μ.sub.r/ε.sub.r)} tanh[j(2πfd/c)√{square root over (μ.sub.rε.sub.r)}] [Relational Expression]
(41) Accordingly, in order to match the impedance (Z.sub.o) in a vacuum and the impedance (Z.sub.in) of the absorbing particles, the value of Z.sub.in/Z.sub.o may be adjusted to be as close to 1 as possible, thereby obtaining the material having the highest absorption rate of electromagnetic waves in the desired frequency band.
(42) What can be inferred from the above Relational Expression is that the value of Z.sub.in/Z.sub.o is adjusted by adjusting the permittivity in the state in which the magnetic permeability is not changed.
(43) Therefore, when graphite is used as the permittivity-adjusting agent, as in the previous description, the permittivity is capable of being changed alone without changing magnetic permeability. Accordingly, the value of Z.sub.in/Z.sub.o may be adjusted to a value that is as close to 1 as possible by mixing graphite with the absorbing material, so that the absorption rate may coincide with the f.sub.r (magnetic resonance frequency) of the absorbing material in the desired frequency band.
(44) In addition, in this embodiment, in order to control the permittivity of the absorbing material, graphite may be added as a permittivity-adjusting agent to the absorbing material, and a reaction accelerator for promoting the reaction of the permittivity-adjusting agent may be further added thereto.
(45) It is preferable that the reaction accelerator be contained in an amount of 6 to 7 wt % based on 100 wt % of the mass of electromagnetic-wave-absorbing particles. In addition, for example, a “Dyhard” model may be used as the reaction accelerator.
(46) The absorbing material was manufactured so as to have a composition of Sr.sub.0.906La.sub.0.094Fe.sub.9.8Zn.sub.0.6Ti.sub.0.6O.sub.19, and the amount of graphite mixed with the absorbing material that was mixed with 6.7 wt % of the reaction accelerator in advance was changed to measure changes in magnetic permeability and permittivity.
(47)
(48) As can be confirmed from
(49) Therefore, it can be confirmed that the permittivity is adjusted without changing the magnetic permeability of the absorbing material by mixing the graphite as the permittivity-adjusting agent and appropriately adjusting the mixing amount thereof in the state in which the absorbing material is mixed with the reaction accelerator.
(50) Next, the reflection loss of the absorbing material that was mixed with graphite as the permittivity-adjusting agent while changing the mixing amount of the graphite was measured.
(51) The absorbing material was manufactured so as to have a composition of Sr.sub.0.906La.sub.0.094Fe.sub.9.8Zn.sub.0.6Ti.sub.0.6O.sub.19, and the amount of graphite mixed with the absorbing material was changed to measure changes in magnetic permeability and reflection loss.
(52) As can be confirmed from
(53) As can be confirmed from
(54) Therefore, when the graphite is added as the permittivity-adjusting agent, it can be confirmed that it is possible to effectively absorb electromagnetic waves in a band of several to tens of GHz when the graphite is contained in an amount of 5 wt % or less based on 100 wt % of the mass of the electromagnetic-wave-absorbing particles.
(55) Next, the permittivity and reflection loss of the absorbing material that was mixed with the graphite as the permittivity-adjusting agent while changing the mixing amount of the graphite were measured.
(56) The absorbing material was manufactured so as to have a composition of Sr.sub.0.906La.sub.0.094Fe.sub.9Co.sub.1.0Ti.sub.1.0O.sub.19, and the amount of the graphite that was mixed with the absorbing material was changed to measure changes in magnetic permeability and reflection loss.
(57)
(58) As can be confirmed from
(59) Therefore, when the graphite is added as the permittivity-adjusting agent, it can be confirmed that it is possible to effectively absorb electromagnetic waves in a band of several to tens of GHz when the graphite is contained in an amount of 5 wt % or less, and preferably 2.0 to 5.0 wt % based on 100 wt % of the mass of the electromagnetic-wave-absorbing particles.
(60) In addition, as can be confirmed from
(61) Therefore, when the reaction accelerator is added, it can be confirmed that it is possible to effectively absorb electromagnetic waves in a band of several to tens of GHz and to adjust the maximum absorption band and absorption amount thereof when the reaction accelerator is contained in an amount of 6.0 to 7.0 wt % based on 100 wt % of the mass of the electromagnetic-wave-absorbing particles.
(62) Although the present disclosure has been described with reference to the accompanying drawings and the above-described preferred embodiments, the present disclosure is not limited thereto, but is limited by the claims to be described later. Therefore, various modifications and variations of the present disclosure can be made by those of ordinary skill in the art within the scope of the technical spirit of the claims to be described later.