Scale-shaped Fe-Si-Al composite structure magnetic powder and preparation method thereof

文档序号:1659605 发布日期:2019-12-27 浏览:40次 中文

阅读说明:本技术 一种鳞片状铁硅铝复合结构磁粉及其制备方法 (Scale-shaped Fe-Si-Al composite structure magnetic powder and preparation method thereof ) 是由 刘立东 单震 朱航飞 于 2019-09-18 设计创作,主要内容包括:本发明属于软磁吸波材料领域,公开了一种鳞片状铁硅铝复合结构磁粉及其制备方法。本发明的鳞片状铁硅铝复合结构磁粉核心为鳞片状铁硅铝磁粉,中间包覆层为纳米二氧化硅绝缘层,最外层为偶联剂层;所述鳞片状铁硅铝磁粉的磁粉厚度为0.5μm-1.1μm,径厚比(径向尺寸与厚度)大于80:1;所述纳米二氧化硅绝缘层的厚度为20-40nm,偶联剂层厚度5-10nm。该磁粉具有均匀可控的铁硅铝/二氧化硅/偶联剂复合结构,不仅提高了磁粉的绝缘性,同时提高了磁粉在磁片中的分散性。(The invention belongs to the field of soft magnetic wave-absorbing materials, and discloses scale-shaped Fe-Si-Al composite structure magnetic powder and a preparation method thereof. The scaly iron-silicon-aluminum composite structure magnetic powder core is scaly iron-silicon-aluminum magnetic powder, the middle coating layer is a nano silicon dioxide insulating layer, and the outermost layer is a coupling agent layer; the magnetic powder thickness of the scaly iron-silicon-aluminum magnetic powder is 0.5-1.1 μm, and the diameter-thickness ratio (radial size and thickness) is more than 80: 1; the thickness of the nano silicon dioxide insulating layer is 20-40nm, and the thickness of the coupling agent layer is 5-10 nm. The magnetic powder has a uniform and controllable Fe-Si-Al/silica/coupling agent composite structure, so that the insulativity of the magnetic powder is improved, and the dispersibility of the magnetic powder in a magnetic sheet is improved.)

1. The scaly sendust composite structure magnetic powder is characterized in that the magnetic powder core is scaly sendust magnetic powder, the middle coating layer is a nano silicon dioxide insulating layer, and the outermost layer is a coupling agent layer; the magnetic powder thickness of the scaly iron silicon aluminum magnetic powder is 0.5-1.1 μm, and the diameter-thickness ratio is more than 80: 1; the thickness of the nano silicon dioxide insulating layer is 20-40nm, and the thickness of the coupling agent layer is 5-10 nm.

2. The scaly sendust composite structure magnetic powder according to claim 1, wherein the single silica particle size in the nano silica insulating layer is 5-15 nm.

3. The scale-like sendust composite structure magnetic powder of claim 1, wherein the coupling agent is one or more of a silane coupling agent, a titanate coupling agent, an aluminate coupling agent, and a bimetallic coupling agent.

4. The preparation method of the scale-shaped Fe-Si-Al composite structure magnetic powder is characterized by comprising the following steps of:

(1) surface activation treatment: adding the scaly iron silicon aluminum magnetic powder into sulfuric acid, and stirring, wherein the sulfuric acid solution can at least immerse the magnetic powder;

(2) repeatedly cleaning the magnetic powder with absolute ethyl alcohol after surface activation treatment, removing redundant sulfuric acid and impurities, and drying for later use;

(3) coating with silicon dioxide: preparing absolute ethyl alcohol and deionized water solution, putting the iron-silicon-aluminum sheet-shaped magnetic powder dried in the step (2) into a mixed solution of the absolute ethyl alcohol and the deionized water, stirring, dripping ethyl orthosilicate, stirring uniformly, then dripping ammonia water solution, adjusting the pH value of the system to be 8-10, and stirring while dripping to complete the silicon dioxide coating on the surface of the magnetic powder;

(4) after the silicon dioxide is coated, repeatedly cleaning the silicon dioxide-coated composite magnetic powder by using absolute ethyl alcohol, separating the silicon dioxide-coated composite magnetic powder, and drying for later use;

(5) coating with a coupling agent: and (3) adding a coupling agent into a solvent to obtain a mixed solution, uniformly stirring, adding the composite magnetic powder dried for later use in the step (4) into the mixed solution, wherein the mixed solution is required to be at least capable of immersing the magnetic powder, heating while stirring, and finishing the coating of the coupling agent after the magnetic powder is completely dried.

5. The method for preparing the scaly sendust composite structure magnetic powder according to claim 1, wherein the stirring rate in the step (1) is 800-2000 rpm; preferably, the sulfuric acid mass concentration in the step (1) is not higher than 0.05%; more preferably, the surface activation treatment time in the step (1) is 5 to 10 minutes.

6. The method for preparing the scaly sendust composite structure magnetic powder according to claim 1, wherein the weight ratio of the absolute ethyl alcohol to the deionized water in the step (3) is (10-20): 1.

7. the method for preparing the scale-like sendust composite structure magnetic powder according to claim 1, wherein the amount of ethyl orthosilicate added in step (3) is 1-5% of the weight of the sendust magnetic powder.

8. The method for preparing the scaly sendust composite structure magnetic powder according to claim 1, wherein the stirring rate in the step (3) is 800-2000 rpm.

9. The method for preparing the scale-like sendust composite structure magnetic powder according to claim 1, wherein the solvent in the step (5) is one or a mixture of several of alcohol solvents or ketone solvents.

10. The method for producing a scaly sendust composite structure magnetic powder according to claim 1, wherein the amount of coupling agent added in step (5) is 0.1-1.5% by weight of the magnetic powder.

Technical Field

The invention relates to the field of magnet powder, in particular to scaly Fe-Si-Al composite structure magnet powder and a preparation method thereof.

Background

With the rapid development of electronic communication technology, electronic components are developing towards miniaturization, high integration and high frequency, and the problems of electromagnetic interference and electromagnetic compatibility are increasingly prominent, especially the problem of electromagnetic interference under high frequency. The flexible wave-absorbing magnetic sheet material for absorbing/shielding electromagnetic noise is mainly compounded by a high-molecular binder and soft magnetic alloy magnetic powder and is widely applied to electronic communication products. The magnetic conductivity is a key index of the wave-absorbing magnetic sheet, and the higher the magnetic conductivity is, the better the electromagnetic noise suppression effect is. Meanwhile, in order to reduce the risk of short circuit of the electronic component, the high insulation of the magnetic sheet is also important.

The soft magnetic alloy magnetic powder is the key to influence the performance of the flexible wave-absorbing magnetic sheet, and the components, intrinsic characteristics, morphology and the like of the soft magnetic alloy magnetic powder have important influences on the performance of the magnetic sheet. At present, the most of soft magnetic alloy magnetic powder in the wave-absorbing magnetic sheet adopts scaly iron-silicon-aluminum magnetic powder, which has the characteristics of low magnetocrystalline anisotropy coefficient, low hysteresis expansion coefficient, high magnetic conductivity and the like, and meanwhile, the scaly shape with high shape anisotropy is beneficial to breaking through the limitation of the Snoek limit of the magnetic powder and obtaining higher magnetic conductivity under high frequency. In general, when the magnetic powder component is fixed, the higher the aspect ratio of the scale-like magnetic powder (the ratio of the radial dimension of the scale-like magnetic powder to the thickness of the magnetic powder), the higher the filling ratio of the magnetic powder in the polymer binder, and the higher the magnetic permeability of the magnetic sheet. However, when the filling ratio of the magnetic powder is too high or the aspect ratio of the magnetic powder is too large, the scaly magnetic powder in the magnetic sheet is easy to "bridge" and easily form a conductive network, so that the resistivity of the magnetic sheet is significantly reduced, the cutoff frequency is reduced, and the magnetic permeability of the magnetic sheet at high frequency is seriously affected. Furthermore, the increased conductivity of the magnetic sheet greatly increases the risk of shorting the device during use. Therefore, how to improve the insulation and the dispersibility of the magnetic powder is a problem to be solved urgently in the field.

Coating the surface of the scaly magnetic powder with an insulating material is an effective method for solving the above problems, however, the scaly magnetic powder has extremely irregular shape and large specific surface area, and meanwhile, the surface of the magnetic powder is not flat, burrs are formed on the edge, and a uniform coating layer is difficult to form.

Disclosure of Invention

The invention aims to overcome the defects of the background technology and provide the scaly sendust composite structure magnetic powder which has a uniform and controllable sendust/silicon dioxide/coupling agent composite structure, so that the insulativity of the magnetic powder is improved, and the dispersibility of the magnetic powder in a magnetic sheet is improved.

In order to achieve the purpose of the invention, the scaly iron-silicon-aluminum composite structure magnetic powder core is scaly iron-silicon-aluminum magnetic powder, the middle coating layer is a nano silicon dioxide insulating layer, and the outermost layer is a coupling agent layer; the magnetic powder thickness of the scaly iron-silicon-aluminum magnetic powder is 0.5-1.1 μm, and the diameter-thickness ratio (radial size and thickness) is more than 80: 1; the thickness of the nano silicon dioxide insulating layer is 20-40nm, and the thickness of the coupling agent layer is 5-10 nm.

Furthermore, the single silicon dioxide particle in the nano silicon dioxide insulating layer has the granularity of 5-15nm, has good bonding force with the core scaly iron-silicon-aluminum magnetic powder, and is uniformly coated on the surface of the magnetic powder.

The coupling agent layer has good binding force with the silicon dioxide intermediate layer, has good coupling effect with a high molecular adhesive, is not limited in category, comprises one or more of silane coupling agent, titanate coupling agent, aluminate coupling agent and bimetallic coupling agent, and is specifically determined according to the type and physicochemical characteristics of the high molecular adhesive in the magnetic sheet.

Further, aiming at the unique composite structure magnetic powder, the invention also provides a simple and controllable preparation method of the scaly iron-silicon-aluminum composite structure magnetic powder, and the preparation method comprises the following steps:

(1) surface activation treatment: adding the scaly iron silicon aluminum magnetic powder into sulfuric acid, and stirring, wherein the sulfuric acid solution can at least immerse the magnetic powder;

(2) repeatedly cleaning the magnetic powder with absolute ethyl alcohol after surface activation treatment, removing redundant sulfuric acid and impurities, and drying for later use;

(3) coating with silicon dioxide: preparing absolute ethyl alcohol and deionized water solution, putting the iron-silicon-aluminum sheet-shaped magnetic powder dried in the step (2) into a mixed solution of the absolute ethyl alcohol and the deionized water, stirring, dripping ethyl orthosilicate, stirring uniformly, then dripping ammonia water solution, adjusting the pH value of the system to be 8-10, and stirring while dripping to complete the silicon dioxide coating on the surface of the magnetic powder;

(4) after the silicon dioxide is coated, repeatedly cleaning the silicon dioxide-coated composite magnetic powder by using absolute ethyl alcohol, separating the silicon dioxide-coated composite magnetic powder, and drying for later use;

(5) coating with a coupling agent: and (3) adding a coupling agent into a solvent to obtain a mixed solution, uniformly stirring, adding the composite magnetic powder dried for later use in the step (4) into the mixed solution, wherein the mixed solution is required to be at least capable of immersing the magnetic powder, heating while stirring, and finishing the coating of the coupling agent after the magnetic powder is completely dried.

Further, the stirring speed in the step (1) is 800-.

Further, the sulfuric acid mass concentration in the step (1) is not higher than 0.05%.

Further, the surface activation treatment time in the step (1) is 5-10 minutes, so that the magnetic powder and dilute sulfuric acid are prevented from excessively reacting, and the magnetic performance is prevented from being deteriorated.

Further, the weight ratio of the absolute ethyl alcohol to the deionized water in the step (3) is (10-20): 1.

further, the adding amount of the ethyl orthosilicate in the step (3) is 1-5% of the mass of the iron-silicon-aluminum-magnetic powder.

Further, the stirring speed in the step (3) is 800-.

In the step of coating the silicon dioxide, the thickness of the coating layer of the silicon dioxide is controlled by controlling the adding amount of Tetraethoxysilane (TEOS) and the stirring time. The particle size of the silicon dioxide particles is determined by the proportion of the absolute ethyl alcohol and the deionized water and the stirring speed, the stirring speed is preferably 800-2000 r/min, and the stirring time after the ammonia water solution is dropped is preferably 0.5-30 hours. And after the silicon dioxide coating is finished, repeatedly cleaning the composite magnetic powder by using absolute ethyl alcohol, removing silicon dioxide particles and unreacted ammonia water in the free solution, finally separating the composite magnetic powder by adopting a magnetic separation or centrifugal separation mode, and drying for later use.

Further, the solvent in the step (5) is one or a mixture of several of alcohol solvents or ketone solvents.

Further, in the step (5), the amount of the coupling agent added is 0.1-1.5% by weight of the magnetic powder.

In the step of coating the coupling agent, the coupling agent is required to have higher solubility in a solvent, the solvent is a non-aqueous system, the coating thickness of the coupling agent is controlled by the proportion of the coupling agent to the magnetic powder, the preferable addition amount of the coupling agent is 0.1-1.5% of the weight of the magnetic powder, the stirring speed and the drying temperature are not limited, and finally the scaly ferri-silicon-aluminum magnetic powder/silicon dioxide/coupling agent composite structure magnetic powder is obtained.

The invention is different from the prior scaly iron-silicon-aluminum magnetic powder in both composite structure and preparation method, and has the advantages that:

(1) the magnetic powder structure is different from the prior art; compared with untreated scaly iron-silicon-aluminum magnetic powder, the scaly magnetic powder with the three-layer composite structure provided by the invention has the characteristics of high-frequency magnetic conductivity, excellent insulating property, easiness in dispersion and the like.

(2) In order to solve the problems that the surface of the scaly magnetic powder is uneven, has defects and impurities and is not easy to completely and uniformly coat, the invention innovatively provides that surface activation treatment is carried out before coating, so that the coating effect is greatly improved; through the coating of the nano silicon dioxide, the insulativity of the magnetic powder is obviously improved. When the magnetic powder is filled in the high polymer material to prepare the magnetic sheet, the resistivity of the magnetic sheet is obviously improved, and finally the magnetic sheet has higher magnetic conductivity and insulativity under high frequency. Meanwhile, the outermost layer is coated with the coupling agent, so that the interface bonding property of the magnetic powder and the polymer binder is obviously enhanced, the dispersion of the magnetic powder in the polymer binder is facilitated, the agglomeration and bridging of the magnetic powder are effectively avoided, the insulativity of the magnetic sheet is further improved, and the risk of short circuit of the magnetic sheet in the using process is greatly reduced.

(3) The invention accurately and strictly controls the thickness of the silicon dioxide coating layer and the coupling agent coating layer through the process parameters and the reagent dosage. The magnetic performance of the scale-shaped magnetic powder can be greatly reduced by the excessively thick silicon dioxide coating layer and the coupling agent layer, the insulation and coupling effects cannot be effectively achieved by the excessively thin coating layer, and the electrical conductivity of the magnetic powder cannot be remarkably reduced. Therefore, only if the thicknesses of the silica coating layer and the coupling agent coating layer are strictly controlled, the high-frequency magnetic properties and the insulating properties of the magnetic sheet can be optimized.

(4) The scaly iron-silicon-aluminum magnetic powder has large diameter-thickness ratio, large specific surface area and rough surface, and simultaneously, the edge is provided with a small amount of burrs, so that the complete and uniform coating is difficult in the coating process. Aiming at the problem, before the silicon dioxide coating, the scaly iron-silicon-aluminum magnetic powder is subjected to surface activation treatment to remove impurities on the surface of the magnetic powder, repair the surface defects of the magnetic powder and activate the coating interface of the magnetic powder, so that the silicon dioxide coating layer can be more uniformly, completely and tightly coated on the surface of the magnetic powder, and finally the purpose of improving the insulativity of the magnetic powder is achieved.

(5) In the process of coating the silicon dioxide insulating layer, a mixed solution system of ethanol and deionized water is innovatively used as a solvent, so that the granularity of the silicon dioxide can be regulated and controlled according to the proportion of the ethanol and the deionized water, the using amount of the deionized water is reduced, and the oxidation of magnetic powder in the coating process can be effectively avoided.

Detailed Description

In order to make the objects, technical solutions and advantages of the present invention more apparent, the present invention is further described in detail with reference to the following embodiments. Additional aspects and advantages of the invention will be set forth in part in the description which follows and, in part, will be obvious from the description, or may be learned by practice of the invention. It is to be understood that the following description is only illustrative of the present invention and is not to be construed as limiting the present invention.

The terms "comprises," "comprising," "includes," "including," "has," "having," "contains," "containing," or any other variation thereof, as used herein, are intended to cover a non-exclusive inclusion. For example, a composition, process, method, article, or apparatus that comprises a list of elements is not necessarily limited to only those elements but may include other elements not expressly listed or inherent to such composition, process, method, article, or apparatus.

When an amount, concentration, or other value or parameter is expressed as a range, preferred range, or as a range of upper preferable values and lower preferable values, this is to be understood as specifically disclosing all ranges formed from any pair of any upper range limit or preferred value and any lower range limit or preferred value, regardless of whether ranges are separately disclosed. For example, when a range of "1 to 5" is disclosed, the described range should be interpreted to include the ranges "1 to 4", "1 to 3", "1 to 2 and 4 to 5", "1 to 3 and 5", and the like. When a range of values is described herein, unless otherwise stated, the range is intended to include the endpoints thereof and all integers and fractions within the range.

The indefinite articles "a" and "an" preceding an element or component of the invention are not intended to limit the number requirement (i.e., the number of occurrences) of the element or component. Thus, "a" or "an" should be read to include one or at least one, and the singular form of an element or component also includes the plural unless the number clearly indicates the singular.

Furthermore, the description below of the terms "one embodiment," "some embodiments," "an example," "a specific example," or "some examples," etc., means that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the invention. In this specification, the schematic representations of the terms used above are not necessarily for the same embodiment or example. Further, the technical features of the embodiments of the present invention may be combined with each other as long as they do not conflict with each other.

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