Resin composition

By introducing furan modified resin, thermosetting resin and filler into the resin composition, the problem of difficulty in recycling existing resins is solved, and the resin composition with efficient recycling and excellent electrical properties is achieved, which promotes circular economy and resource efficiency.

CN120173355APending Publication Date: 2025-06-20ITEQ WUXIELECTRONICS TECH
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Patent Information

Application Number
CN202311739498.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-18
Publication Date
2025-06-20

AI Technical Summary

Technical Problem

The existing resin used in printed circuit boards is difficult to recycle, which makes it difficult to dispose of waste in electronic equipment and affects environmental and resource utilization efficiency.

Method used

A resin composition is provided, which comprises a furan modified resin, a thermosetting resin and a filler. The furan modified resin is formed by reacting a polymer resin with 2-furanmethylamine, and combines a thermosetting resin and a filler to improve the recyclability of the resin.

Benefits of technology

It is realized to provide resin compositions with excellent electrical performance, high heat resistance, high dimensional stability and recyclable, solve the problem of difficult resin recycling, and promote circular economy and resource efficiency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention discloses a resin composition, the resin composition comprises furan modified resin, thermosetting resin and filler, and the furan modified resin is obtained through reaction of polymer resin and 2-furan methylamine. The resin composition disclosed by the invention has the characteristics of excellent electrical performance, high heat resistance, high dimensional stability and recoverability.
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Description

Technical Field

[0001] The present invention relates to a resin composition, and particularly to a resin composition for printed circuit boards. Background Art

[0002] With the booming development of the information industry, electronic products are constantly innovated and have become one of the fastest-growing products in the global manufacturing industry. However, this also means that the life cycle of electronic and electrical equipment is shortened and the replacement rate increases, thus generating a large amount of waste of electrical and electronic equipment (WEEE).

[0003] Printed circuit boards are indispensable components in electronic and electrical equipment. If waste printed circuit boards are not properly treated, serious environmental problems are likely to occur. There are approximately 54.5% plastics in printed circuit boards, which mainly include insulating resins and fiberglass cloth. Since the resins used in printed circuit boards are all thermosetting resins and their properties are quite stable, it is also difficult to recycle them.

[0004] Therefore, how to improve the recovery rate of the resin system through the formulation improvement of the resin composition to improve the recycling of electronic equipment, promote circular economy and improve resource efficiency to overcome the above defects has become one of the important issues to be solved in this industry. Summary of the Invention

[0005] The technical problem to be solved by the present invention is to provide a resin composition in view of the deficiencies of the prior art.

[0006] To solve the above technical problem, one of the technical solutions adopted by the present invention is to provide a resin composition, which comprises a furan-modified resin, a thermosetting resin and a filler, wherein the furan-modified resin is obtained by reacting a polymer resin with 2-furfurylamine.

[0007] Furthermore, the furan-modified resin has the structure of the following general formula (1):

[0008]

[0009] In the general formula (1), m represents an integer from 3 to 7, and n represents an integer from 7 to 3.

[0010] Furthermore, the furan-modified resin has the structure of the following general formula (2):

[0011]

[0012] In the general formula (2), m represents an integer from 1 to 3, n represents an integer from 1 to 3, X represents an integer from 1 to 5, and Y represents an integer from 1 to 3.

[0013] Furthermore, the furan-modified resin includes a first furan-modified resin and a second furan-modified resin, and the weight ratio of the first furan-modified resin to the second furan-modified resin is 5 to 15.

[0014] Furthermore, the furan-modified resin includes a first furan-modified resin and a second furan-modified resin, and the weight ratio of the first furan-modified resin to the second furan-modified resin is 6 to 12.

[0015] Furthermore, the thermosetting resin is composed of a bisphenol A type benzoxazine resin, a thermosetting bismaleimide, and a brominated epoxy resin.

[0016] Furthermore, the weight ratio of the bisphenol A type benzoxazine resin, the thermosetting bismaleimide, and the brominated epoxy resin is 2:1:5 to 2:1:7.

[0017] Furthermore, the polymer resin is a polymer resin grafted with an acid anhydride.

[0018] Furthermore, the polymer resin is styrene maleic anhydride (SMA), styrene-ethylene / diene copolymer (SEBS), polypropylene (PP), polystyrene-polyethylene-polypropylene-polystyrene copolymer (SEPS), or styrene / isoprene copolymer (SIS).

[0019] Furthermore, the resin composition further includes a solvent, and the solvent is toluene, γ-butyrolactone, methyl ethyl ketone, cyclohexanone, butanone, acetone, xylene, methyl isobutyl ketone, N,N-dimethylformamide, N,N-dimethylacetamide, N-methylpyrrolidone, or a mixture thereof.

[0020] One of the beneficial effects of the present invention is that the resin composition provided by the present invention can provide a resin composition with excellent electrical properties, high heat resistance, high dimensional stability, and recyclability through the technical solutions of "the resin composition includes a furan-modified resin, a thermosetting resin, and a filler" and "the furan-modified resin is obtained by reacting a polymer resin with 2-furfurylamine".

[0021] To further understand the features and technical content of the present invention, please refer to the following detailed description of the present invention. However, the provided detailed description is only for reference and illustration, and is not used to limit the present invention. Detailed Description of the Invention

[0022] The following are specific examples to illustrate the embodiments of the "resin composition" disclosed in the present invention. Those skilled in the art can understand the advantages and effects of the present invention from the content disclosed in this specification. The present invention can be implemented or applied through other different specific embodiments, and various details in this specification can also be modified and changed based on different viewpoints and applications without departing from the concept of the present invention. The following embodiments will further detail the related technical content of the present invention, but the disclosed content is not intended to limit the protection scope of the present invention.

[0023] It should be understood that although terms such as "first", "second", "third", etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are mainly used to distinguish one element from another. Additionally, the term "or" used herein should, depending on the actual situation, possibly include any one or a combination of more of the associated listed items.

[0024] The present invention provides a resin composition, particularly a resin composition for printed circuit boards. The resin composition of the present invention comprises a furan-modified resin, a thermosetting resin, and a filler. Specifically, the furan-modified resin is a reaction product of a polymer resin and 2-furanmethanamine. The polymer resin is Styrene maleic anhydride (SMA), Styrene Ethylene Butylene Styrene (SEBS), Polypropylene (PP), Styrene EthylenePropylene Styrene (SEPS), or Styrene Isoprene Styrene (SIS).

[0025] In an embodiment of the present invention, the furan-modified resin can be obtained by reacting Styrene maleic anhydride (SMA) with 2-furanmethanamine (2-Furanmethanamin). Styrene maleic anhydride is a polymer composed of styrene and maleic anhydride monomers. Olefin-toughened polymers have excellent electrical properties and good impact resistance, and grafting of olefin-toughened polymers with maleic anhydride can increase compatibility. Therefore, Styrene maleic anhydride can simultaneously have excellent electrical properties, high heat resistance, high dimensional stability, and specific reactivity of acid anhydride groups.

[0026] In another embodiment of the present invention, the furan-modified resin can be obtained by reacting styrene-ethylene / diene copolymer (SEBS) with 2-furfurylamine. SBS resin (Styrene Butadiene Styrene block polymer) is a triblock copolymer formed by polymerizing styrene and butadiene through block polymerization, which has the characteristic of being easy to process, but is susceptible to aging due to the influence of O2, O3, UV, etc. SEBS is hydrogenated SBS, which has a high content of 1,2-vinyl structure, improves the disadvantage of easy aging, and increases the use temperature and compression set resistance.

[0027] In yet another embodiment of the present invention, the furan-modified resin can be obtained by reacting styrene-ethylene / diene copolymer (SEBS) with 2-furfurylamine. SEPS is a polymer of hydrogenated styrene and isoprene, which can improve the double bond content in the diene soft segment, thereby improving the disadvantage of easy aging and increasing the use temperature.

[0028] In still another embodiment of the present invention, the furan-modified resin can be obtained by reacting styrene / isoprene copolymer (SIS) with 2-furfurylamine. SIS has good thermal stability, excellent processability and elasticity, and has environmental protection characteristics.

[0029] For example, the furan-modified resin can be selected from the furan-modified resins synthesized by the methods described in Synthesis Example 1 to Synthesis Example 5 below. For example, two furan-modified resins can be selected and used in combination as the first furan-modified resin and the second furan-modified resin. Preferably, the weight ratio of the first furan-modified resin to the second furan-modified resin is 5 to 15. More preferably, the weight ratio of the first furan-modified resin to the second furan-modified resin is 6 to 12.

[0030] Synthesis Example 1

[0031] Add 200 grams of SMA (S / M = 3 / 1) and 600 grams of dimethylacetamide (DMAc) solvent to a 3-liter four-neck separable reaction flask equipped with a heating device, a thermometer, a stirrer, and a condenser. Heat up to about 60 °C and stir evenly until completely dissolved. Under stirring, add 50 grams of furfurylamine (FA, purchased from ALDRICH) and 2 grams of methylpyridine (3-PICOLINE), then start heating up to 90 °C to completely dissolve it, heat and gradually raise the temperature of the synthesis solution to 130 °C and react for 1 hour. The reaction formula is shown as Reaction Formula A. After complete reaction, lower the temperature to room temperature to obtain the graft polymer SMA-gF having the structure represented by General Formula (1).

[0032]

[0033] In general formula (1), m represents an integer from 3 to 7, and n represents an integer from 7 to 3.

[0034] Synthesis Example 2

[0035] 200 g of MA-grafted SEBS and 600 g of toluene solvent were added to a 3-L four-neck separable reaction flask equipped with a heating device, a thermometer, a stirrer, and a condenser tube. The temperature was raised to about 60 °C and stirred evenly until completely dissolved. Under stirring, 50 g of furfurylamine (FA, purchased from ALDRICH) and 2 g of 3-picoline were added, and the temperature was raised to 90 °C to completely dissolve it. The synthesis solution was heated and gradually raised to a temperature of 120 °C and reacted for 1 hour. The reaction formula is shown as Reaction Formula B. After the reaction was complete, the temperature was lowered to room temperature, and the grafted polymer SEBS-gF having the structure represented by general formula (2) was obtained.

[0036]

[0037]

[0038] In general formula (2), m represents an integer from 1 to 3, n represents an integer from 1 to 3, X represents an integer from 1 to 5, and Y represents an integer from 1 to 3.

[0039] Synthesis Example 3

[0040] 200 g of maleic anhydride (MA)-grafted polypropylene (PP) and 600 g of toluene solvent were added to a 3-L four-neck separable reaction flask equipped with a heating device, a thermometer, a stirrer, and a condenser tube. The temperature was raised to about 60 °C and stirred evenly until completely dissolved. Under stirring, 50 g of furfurylamine (FA, purchased from ALDRICH) and 2 g of 3-picoline were added, and the temperature was raised to 90 °C to completely dissolve it. The synthesis solution was heated and gradually raised to a temperature of 120 °C and reacted for 1 hour. After the reaction was complete, the temperature was lowered to room temperature, and the grafted polymer PP-gF was obtained.

[0041] Synthesis Example 4

[0042] 200 g of maleic anhydride (MA)-grafted styrene-ethylene-propylene-styrene copolymer (SEPS) and 600 g of toluene solvent were added to a 3-L four-neck separable reaction flask equipped with a heating device, a thermometer, a stirrer, and a condenser. The temperature was raised to about 60 °C and stirred evenly until completely dissolved. Under stirring, 50 g of furfurylamine (FA, purchased from ALDRICH) and 2 g of 3-picoline were added, and then the temperature was raised to 90 °C until completely dissolved. The synthetic solution was heated and gradually raised to 120 °C and reacted for 1 hour. After complete reaction, the temperature was lowered to room temperature to obtain the graft polymer SEPS-gF.

[0043] Synthesis Example 5

[0044] 200 g of maleic anhydride (MA)-grafted styrene / isoprene copolymer (SIS) and 600 g of toluene solvent were added to a 3-L four-neck separable reaction flask equipped with a heating device, a thermometer, a stirrer, and a condenser. The temperature was raised to about 60 °C and stirred evenly until completely dissolved. Under stirring, 50 g of furfurylamine (FA, purchased from ALDRICH) and 2 g of 3-picoline were added, and then the temperature was raised to 90 °C until completely dissolved. The synthetic solution was heated and gradually raised to 120 °C and reacted for 1 hour. After complete reaction, the temperature was lowered to room temperature to obtain the graft polymer SIS-gF.

[0045] The thermosetting resin in the resin composition may be composed of a low hygroscopicity and low expansibility bisphenol A (BPA)-type benzoxazine resin, a high heat resistance thermosetting bismaleimide, and a high toughness and high adhesion brominated epoxy resin. For example, the bisphenol A-type benzoxazine resin may be BPA-BZ produced by Yuanhong, the thermosetting bismaleimide may be BMIKI-70 produced by Daiwa Chemical, and the brominated epoxy resin may be an artificial resin produced by Changchun. However, the above examples are only one possible embodiment and are not intended to limit the present invention.

[0046] In an embodiment of the present invention, in order to balance the electrical properties, heat resistance, and dimensional stability of the resin, the weight ratio of the bisphenol A-type benzoxazine resin, the thermosetting bismaleimide, and the brominated epoxy resin is 2:1:5, 2:1:6, or 2:1:7. In addition, the filler in the resin composition may be silica (SiO2), alumina (Al2O3), talc, mica, boron nitride (BN), aluminum nitride (AlN), etc.

[0047] In the process of preparing the resin composition of the present invention, a solvent can be added so that the components of the resin composition, such as furan-modified resin, thermosetting resin, filler, toughening agent, etc., can be uniformly mixed with a homogenizer and dissolved or dispersed in the solvent to form a varnish-like form for subsequent processing and utilization. The solvent can be any inert solvent that can dissolve or disperse the components of the resin composition but does not react with these components. Solvents that can be used to dissolve or disperse the components of the resin composition include but are not limited to: toluene, γ-butyrolactone, methyl ethyl ketone, cyclohexanone, butanone, acetone, xylene, methyl isobutyl ketone, N,N-dimethyl formamide (DMF), N,N-dimethyl acetamide (DMAc), and N-methyl pyrrolidone (NMP). Each solvent can be used alone or in combination. The amount of the solvent is not particularly limited. In principle, as long as it can uniformly dissolve or disperse each component of the resin composition therein. In a preferred embodiment of the present invention, a mixture of toluene, methyl ethyl ketone, and γ-butyrolactone is used as the solvent.

[0048] The resin composition of the present invention is prepared by the following method according to the weights shown in Table 1. Taking Example 1 as an example, according to the weights shown in Table 1, 30 g of the graft polymer SMA-gF and SEBS-gF 2.5 g of Synthesis Example 1, 10 g of BPA-BZ, and 5 g of BMI KI-70 are added to 100 g of methyl ethyl ketone (MEK) and fully dissolved. Take 30 g of brominated epoxy resin, uniformly mix and dissolve it with a homogenizer. After it is completely dissolved, 35 g of silica is added, and it is continuously uniformly mixed and dispersed in the solvent with a homogenizer to form a varnish liquid. The above resin composition is coated.

[0049] Examples 2 to 9 are repeated the same steps as in Example 1 according to the weights shown in Table 1 to prepare a varnish-like resin composition.

[0050] Furthermore, the substrate is impregnated or coated with the resin composition, and the impregnated or coated substrate is dried to obtain a prepreg sheet. Specifically, after the substrate is impregnated or coated, it can be heated and dried at 80°C to 180°C for 1 to 10 minutes to obtain a prepreg sheet in a semi-cured state. In an embodiment of the present invention, 2116 reinforced fiberglass cloth is used as the reinforcing material (substrate), and it is heated and dried at 175°C for 2 to 15 minutes to obtain a prepreg sheet in a semi-cured state.

[0051] Table 1 shows the compositions of Examples EX1 to EX9 of the resin composition of the present invention and the characteristics of the prepreg sheets prepared.

[0052] Table 1

[0053]

[0054]

[0055] Table 2 shows the compositions of Comparative Examples C1 to C6 of the resin composition and the properties of the prepreg sheets produced therefrom.

[0056]

[0057]

[0058] In Tables 1 and 2, BPA-BZ is a bisphenol A type benzoxazine resin produced by Yuanhong; the filler is 10um cut SiO2 produced by Silica; BMI KI-70 is a thermosetting bismaleimide produced by Daiwa Chemical; the brominated epoxy resin is an artificial resin produced by Changchun; the reinforcing material is E-Glass cloth 2116 produced by Taibo; the toughening agent is 100 or nano core-shell type resin (CSR); the copper foil is H1 0.5OZ produced by Nan Ya.

[0059] The coefficient of thermal expansion in the Z-axis (CTE) was measured according to the IPC-TM-650-2.4.24 test specification. Using a thermal mechanical analyzer (TMA), the coefficient of thermal expansion (CTE) of the sample to be measured at a temperature below Tg was measured, and the rate of change of the coefficient of thermal expansion in the Z-axis direction (z-CTE) was measured. z-CTE was measured in the temperature range of 50°C to 260°C, and the unit was %.

[0060] The peel strength refers to the adhesion of the metal foil to the laminated prepreg sheet. In this test, a copper foil with a width of 1 / 8 inch was vertically peeled off from the plate surface, and the strength required was used to express the strength of the adhesion. The unit of the peel strength is pounds per inch (lbf / in).

[0061] For the heat resistance test, the dried metal foil laminate was immersed in a soldering bath at 288°C for 100 seconds, and this process was repeated 3 times. When the appearance remained unchanged, it indicated excellent heat resistance and was recorded as "○"; when there were bubbles or bulges on the appearance, it indicated poor heat resistance and was recorded as "×".

[0062] The drilling white stripe test involves mechanically drilling 100 holes with a diameter of 1 mm and observing the number of white stripes and hole cracks. The dielectric constant (Dk) is measured according to the IPC-TM-650 2.5.5 test specification. The dielectric constant represents the electronic insulation characteristics of the fabricated film, and a lower value indicates better electronic insulation characteristics. The dielectric loss (Df) is measured according to the IPC-TM-650 2.5.5 test specification.

[0063] Advantages of the embodiments

[0064] One of the advantages of the present invention is that the resin composition provided by the present invention can provide a resin composition with excellent electrical properties, high heat resistance, high dimensional stability, and recyclability through the technical solutions of "the resin composition comprises a furan-modified resin, a thermosetting resin, and a filler" and "the furan-modified resin is obtained by reacting a polymer resin with 2-furfurylamine".

[0065] Furthermore, the furan-modified resin in the resin composition is a chemical modification in which an acid anhydride-grafted polymer resin reacts with 2-furfurylamine to form a crosslinkable functional group, which can further increase compatibility and achieve excellent heat resistance effects. More specifically, the resin composition of the present invention comprises a furan-modified styrene maleic anhydride copolymer, which can maintain the required toughness without the additional use of a toughening agent.

[0066] In addition, the resin composition of the present invention may include more than one furan-modified resin, preferably used in combination with a first furan-modified resin and a second furan-modified resin, and can increase the toughness and excellent heat resistance of the resin composition for applications in electronic and electrical products.

[0067] The content disclosed above is only the preferred feasible embodiments of the present invention, and does not limit the protection scope of the claims of the present invention. Therefore, all equivalent technical changes made by using the content of the specification of the present invention are included in the protection scope of the claims of the present invention.

Claims

1. A resin composition, characterized in that, The resin composition comprises a furan-modified resin, a thermosetting resin and a filler, wherein the furan-modified resin is obtained by reacting a polymer resin with 2-furfurylamine.

2. The resin composition according to claim 1, characterized in that, The furan-modified resin has a structure of the following general formula (1): In the general formula (1), m represents an integer from 3 to 7, and n represents an integer from 7 to 3.

3. The resin composition according to claim 1, characterized in that, The furan-modified resin has a structure of the following general formula (2): In the general formula (2), m represents an integer from 1 to 3, n represents an integer from 1 to 3, X represents an integer from 1 to 5, and Y represents an integer from 1 to 3.

4. The resin composition according to claim 1, characterized in that, The furan-modified resin comprises a first furan-modified resin and a second furan-modified resin, and the weight ratio of the first furan-modified resin to the second furan-modified resin is 5 to 15.

5. The resin composition according to claim 1, characterized in that, The furan-modified resin comprises a first furan-modified resin and a second furan-modified resin, and the weight ratio of the first furan-modified resin to the second furan-modified resin is 6 to 12.

6. The resin composition according to claim 1, characterized in that, The thermosetting resin is composed of a bisphenol A benzoxazine resin, a thermosetting bismaleimide and a brominated epoxy resin.

7. The resin composition according to claim 1, characterized in that, The weight ratio of the bisphenol A benzoxazine resin, the thermosetting bismaleimide and the brominated epoxy resin is 2:1:5 to 2:1:

7.

8. The resin composition according to claim 1, characterized in that, The polymer resin is a polymer resin grafted with an acid anhydride.

9. The resin composition according to claim 1, characterized in that, The polymer resin is styrene maleic anhydride, styrene-ethylene / diene copolymer, polypropylene, polystyrene-polyethylene-polypropylene-polystyrene copolymer or styrene / isoprene copolymer.

10. The resin composition according to claim 1, characterized in that, The resin composition further comprises a solvent, and the solvent is toluene, γ-butyrolactone, methyl ethyl ketone, cyclohexanone, butanone, acetone, xylene, methyl isobutyl ketone, N,N-dimethylformamide, N,N-dimethylacetamide, N-methylpyrrolidone or a mixture thereof.