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材料导报  2021, Vol. 35 Issue (17): 17210-17217    https://doi.org/10.11896/cldb.20070082
  高分子与聚合物基复合材料 |
二维纳米材料改性环氧树脂的研究进展
陈九龙1, 王双2, 杜晓声2
1 北京航空航天大学前沿科学技术创新研究院,北京 100083
2 四川大学轻工科学与工程学院纺织研究所,成都 610065
Advances in Epoxy/two-dimensional Nanomaterial Composites
CHEN Jiulong1, WANG Shuang2, DU Xiaosheng2
1 Research Institute of Frontier Science, Beihang University, Beijing 100083, China
2 Textile Institute, College of Biomass Science and Engineering, Sichuan University, Chengdu 610065, China
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摘要 环氧树脂作为一类重要的基础材料,在复合材料、防腐涂料和电子封装材料等领域有着重要的应用。二维纳米材料因其独特的性能已成为近年来的研究热点之一。环氧树脂/二维纳米材料复合材料不仅能改善环氧树脂的力学性能,还可赋予材料优异的导电性、导热性、电绝缘性和阻燃性等。本文系统地梳理了石墨烯及氧化石墨烯、氮化硼、金属有机骨架化合物、迈克烯和层状双金属氢氧化物等近年来研究较多的二维纳米材料对环氧树脂的改性,并对环氧树脂的未来发展前景和其他潜在应用进行了展望。
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陈九龙
王双
杜晓声
关键词:  环氧树脂  二维纳米材料  复合材料  改性    
Abstract: As an important basic material, epoxy resin has been widely used in composite materials, anticorrosive coatings and electronic packaging materials. Two-dimensional nanomaterials have become one of the research hotspots in recent years due to their unique properties. The mechanical properties of the epoxy can not only be improved, but also the excellent electrical conductivity, thermal conductivity, electrical insulation and flame retardant of the epoxy resin/two-dimensional nanomaterial composites are obtained. In this paper, the modification of epoxy resin by two-dimensional nanomaterials, such as graphene and graphene oxide, boron nitride, metal organic framework compounds, MXene and layered bimetallic hydroxides, which have been widely studied in recent years, are systematically reviewed, and the future development prospect and other potential applications of epoxy resin are also prospected.
Key words:  epoxy resin    two-dimensional nanomaterials    composite    modification
                    发布日期:  2021-09-26
ZTFLH:  TQ323.5  
通讯作者:  thomasdu@sina.cn   
作者简介:  陈九龙,北京航空航天大学前沿科学技术创新研究院材料科学与工程专业硕士研究生。在2021年于四川大学匹兹堡学院获得学士学位。
王双,四川大学轻工科学与工程学院材料学专业博士研究生。目前主要从事柔性电子材料及器件方面的研究。
杜晓声,工学博士,副研究员。分别于2011年、2014年、2017年在四川大学轻工科学与工程学院获得学士、硕士、博士学位,2017年7月进入四川大学轻工科学与工程学院从事教学科研工作。近年来主持国家自然科学基金、四川省科技厅重点研发项目、四川大学研究基金等多项科研项目,以第一作者和通讯作者在J. Mater. Chem. A Chem. Eng. J.ACS Appl. Mater. Inter.等国际知名期刊发表SCI论文二十余篇,其中中科院一区文章8篇,单篇影响因子超过10以上4篇,申请并授权国家发明专利3项。主要研究方向为功能高分子材料、光热转换材料和相变储能材料的设计、合成及应用。
引用本文:    
陈九龙, 王双, 杜晓声. 二维纳米材料改性环氧树脂的研究进展[J]. 材料导报, 2021, 35(17): 17210-17217.
CHEN Jiulong, WANG Shuang, DU Xiaosheng. Advances in Epoxy/two-dimensional Nanomaterial Composites. Materials Reports, 2021, 35(17): 17210-17217.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.20070082  或          http://www.mater-rep.com/CN/Y2021/V35/I17/17210
1 Pierre Castan. U.S. patent, US2444333A, 1948.
2 Wan J T, Gan B, Li C, et al. Chemical Engineering Journal, 2016, 284, 1080.
3 Aradhana Ruchi, Mohanty Smita, Nayak Sanjay Kumar. International Journal of Adhesion and Adhesives, 2020, 99, 102596.
4 Bolcu A, Dumitru N, Bolcu D, et al. The 30th SIAR International Congress of Automotive and Transport Engineering. Springer Press, Germany, 2020.
5 Pesonen Maria, Suuronen Katri, Jolanki Riitta, et al. Contact Dermatitis, 2015, 73(2), 113.
6 Liu Q Y, Wang D H, Li Z K, et al. Materials, 2020, 13(9), 2145.
7 Ai Y F, Xia L, Pang F Q, et al. Composites Part B: Engineering, 2020, 193,108019.
8 Back Jong-Ho, Baek Dooyoung, Kim Taeyoon, et al. International Journal of Adhesion and Adhesives. 2020, 100, 102601.
9 Cheng X, Wang H B, Du Z L. Advanced Engineering Science, 2016, 48(2), 213(in Chinese).
成煦,王海波,杜宗良. 工程科学与技术. 2016, 48(2), 213.
10 Ruiz De Luzuriaga Alaitz, Martin Roberto, Markaide Nerea, et al. Materials Horizons. 2016, 3(3), 241.
11 Baroncini E A, Yadav S K, Palmese G R, et al. Journal of Applied Polymer Science, 2016, 45 (133), 1.
12 Singh Baljit,Mohanty Akash.Materials Research Express,2019,6(12561212),1.
13 Zhang P F, Fan Y, Li J Y, et al. Contemporary Chemical Industry, 2018, 47(5), 903(in Chinese).
张鹏飞,樊友,李靖宇,等. 当代化工. 2018, 47(5), 903.
14 Wang H P, Rong M Z, Zhang M Q. Progress in Chemistry, 2010, 22(12), 2397.
15 Sun X F, Ma S N, He J W, et al. Applied Mechanics and Materials, 2010, 26(28), 356.
16 Rafique Irum, Kausar Ayesha, Muhammad Bakhtiar. Polymer-Plastics Technology and Engineering, 2016, 55(15), 1653.
17 Wang Q, Shi W, Zhu B, et al. Journal of Materials Science & Technology, 2020, 40, 24.
18 Singh Baljit, Mohanty Akash. Materials Research Express, 2019, 6(12), 125316.
19 Kim Seong-Hwang, Rhee Kyong Yop, Park Soo-Jin. Composites Part B, 2020, 192, 107983.
20 Jiang H Y, Xia Q, Liu D J, et al. Analytica Chimica Acta, 2020, 1121, 1.
21 Abdellah A R, Abdelhamid H N, El-Adasy A A A M, et al. Journal of Environmental Chemical Engineering, 2020, 8(5), 1.
22 Wen Y Y, Wei Z T, Liu J H, et al. Journal of Energy Chemistry, 2020, 52, 1.
23 Liu Y, Zhang X B, Zhao Y C. Progress in Chemistry, 2020, 32(5), 642(in Chinese).
刘阳,张新波,赵樱灿.化学进展, 2020, 32(5), 642.
24 Chen G Z, Dang L, Yan F, et al. Applied Chemical Industry, 2020(1), 1(in Chinese).
陈国珍,党璐,严峰,等. 应用化工, 2020(1), 1.
25 Molle Alessandro, Goldberger Joshua, Houssa Michel, et al. Nature Materials, 2017, 16(2), 163.
26 Bao Y, Wei Y M. Fine Chemicals, 2020(1), 1(in Chinese).
鲍艳,魏艳敏. 精细化工, 2020(1), 1.
27 Bai S L, Zhao Y H. Advances in Mechanics. 2014,44(1), 236(in Chinese).
白树林,赵云红.力学进展,2014,44(1), 236.
28 Novoselov K S, Geim A K, Morozov S V, et al. Science, 2004, 306(5696), 666.
29 Hu Y J, Jin J, Zhang H, et al. Acta Physico-Chimica Sinica, 2010, 26(8), 2073(in Chinese).
胡耀娟,金娟,张卉,等. 物理化学学报. 2010, 26(8), 2073.
30 Plutnar Jan, Pumera Martin, Sofer Zdenek. Journal of Materials Chemistry C, 2018, 6(23), 6082.
31 Wang J, Hernandez Yenny, Lotya Mustafa, et al. Advanced Materials, 2009, 21(23), 2430.
32 Sattar Tabinda. Topics in Current Chemistry, 2019, 377(102), 1.
33 Saha Monimoy, Tambe Pankaj, Pal Soumen. Composite Interfaces, 2016, 23(3), 255.
34 Shah Syed Sajid Ali, Mustafa Haris, Nasir Habib, et al. Journal of the Chemical Society of Pakistan, 2018, 40(3), 511.
35 Tian S K. Journal of Functional Materials, 2020, 51(6), 6052(in Chinese).
田时开. 功能材料, 2020, 51(6), 6052.
36 Kulkarni H B, Tambe P, Joshi G M. Composite Interfaces, 2018, 25(5-7), 381.
37 Zhang Z Y, Zhang W H, Li D S, et al. International Journal of Molecular Sciences, 2015, 16(1), 2239.
38 Liu J J, Yuen R K K, Hong N N, et al. Polymers for Advanced Technologies, 2018, 29(5), 1478.
39 Xie W G, Zhao D L, Jing L, et al. Polymer Materials Science & Engineering, 2012, 28(9), 129(in Chinese).
谢卫刚,赵东林,景磊,等. 高分子材料科学与工程, 2012, 28(9), 129.
40 Xie Z P, Zhang H Q, Yuan X B, et al. Polymer Bulletin, 2018(11), 1(in Chinese).
谢志鹏,张会旗,原续波,等. 高分子通报, 2018(11), 1.
41 Wang X B, Li J W, Luo Y J. Polymer Materials Science & Engineering, 2013, 29(7), 161(in Chinese).
王学宝,李晋庆,罗运军. 高分子材料科学与工程, 2013, 29(7), 161.
42 Malik P, Bhasha S, Jain P. Oriental Journal of Chemistry, 2018, 34(3), 1597.
43 Huang G J, Chen Z G, Li M D, et al. Acta Chimica Sinica, 2016, 74(10), 789(in Chinese).
黄国家,陈志刚,李茂东,等. 化学学报, 2016, 74(10), 789.
44 Zhao Y Z, Zhao Y, Guo Z. Modern Plastics Processing and Applications, 2019, 31(6), 5(in Chinese).
赵玉真,赵阳,郭准. 现代塑料加工应用, 2019, 31(6), 5.
45 Jayan Jitha S, Saritha Appukuttan, Deeraj B D S, et al. Materials Che-mistry and Physics, 2020, 248, 122930.
46 Ren X Y, Chen H, Lin X B, et al. Modern Chemical Industry, 2020(1), 1(in Chinese).
任翔宇,陈惠,林祥宝,等. 现代化工, 2020(1), 1.
47 Xu J, Yang Y. Heilongjiang Science and Technology Information, 2019(16), 168(in Chinese).
徐晶,杨宇. 黑龙江科技信息, 2019(16), 168.
48 Xing J Y, Xue G, Zhang B, et al. China Adhesives, 2020, 29(6), 7(in Chinese).
邢继烨,薛刚,张斌,等. 中国胶粘剂, 2020, 29(6), 7.
49 Kausar Ayesha, Rafique Irum, Anwar Zanib, et al. Polymer-Plastics Technology and Engineering, 2016, 55(7), 704.
50 Greim Jochen, Schwetz Karl A. Ullmann’s Encyclopedia of Industrial Chemistry, Wiley Press, USA, 2000.
51 He Y Q, Xu N, Junior Lucas Binnah, et al. Applied Surface Science, 2020, 520, 1.
52 Vijayaraghavan V, Zhang L C. JOM, 2020, 72, 6.
53 Joy Jomon, George Elssa, Thomas Sabu, et al. New Journal of Chemistry, 2020, 44(11), 4494.
54 Jang Inseok, Shin Kyung-Ho, Yang Il, et al. Colloids and Surfaces A-Physicochemical and Engineering Aspects, 2017, 518, 64.
55 Mun So Youn, Lim Hyung Mi, Lee Seung-Ho. Materials Research Bulletin, 2018, 97, 19.
56 Mostovoy A S, Vikulova M A, Lopukhova M I. Scientific Reports, 2020, 10(1), 1.
57 Hrushikesh B K, Pankaj B T, Girish M J. Composite Interfaces, 2020, 27(6), 1.
58 Nayak Sagar Kumar, Mohanty Smita, Nayak Sanjay K. SN Applied Sciences, 2019, 1, 3374.
59 Wan P Y, Zhao N, Qi F G, et al. Progress in Organic Coatings, 2020, 146, 105713.
60 Gao J, Yuan Z K, Yu J H, et al. Insulating Materials, 2014, 47(2), 19(in Chinese).
高建,袁正凯,虞锦洪,等. 绝缘材料, 2014, 47(2), 19.
61 Chen J, Huang X Y, Zhu Y K, et al. Advanced Functional Materials, 2017, 27(5), 1604754.
62 Chen S L, Cai H W, Liu S N, et al. Insulating Materials, 2019, 52(12), 19(in Chinese).
陈守丽,蔡会武,刘圣楠,等. 绝缘材料, 2019, 52(12), 19.
63 Bahiraei Mehdi, Heshmatian Saeed. Energy Conversion and Management, 2018, 172, 438.
64 Gao C, Shen Y C, Wang T W. Materials Research Express, 2020, 7(0653086), 1.
65 Andriani Yosephine, Wang X B, Seng Debbie Hwee Leng, et al. IEEE Transactions on Components Packaging and Manufacturing Technology, 2020, 10(6), 990.
66 Huang K, Guo S, Wang R Y, et al. Chinese Journal of Catalysis, 2020, 41(11), 1754.
67 Chughtai Adeel H, Ahmad Nazir, Younus Hussein A, et al. Chemical Society Reviews, 2015, 44(19), 6804.
68 Qin Q, Sun Y X, Wang N X, et al. Chemical Industry and Engineering Progress, 2017, 36(4), 1306(in Chinese).
秦茜,孙玉绣,王乃鑫,等. 化工进展, 2017, 36(4), 1306.
69 Guo P R, Hu S L. Atomic Energy Science and Technology, 2020, 54(4), 583(in Chinese).
郭沛然,胡石林. 原子能科学技术, 2020, 54(4), 583.
70 Xu G W, Wu Y P, Dong W W, et al. Small, 2017, 13(22), 1602996.
71 Kulkarni H B, Tambe P B, Joshi G M. Composite Interfaces, 2020, 27, 6.
72 Eddaoudi M, Kim J, Rosi N, et al. Science, 2002, 295(5554), 469.
73 Raju Khan, Shaswat Barua. Two-Dimensional Nanostructures for Biome-dical Technology, Elsvier Press, Elsevier, Netherlands, 2020.
74 Jun B M, Al-Hamadani Y A J, Son A, et al. Separation and Purification Technology, 2020, 247, 116947.
75 Li Y, Jiang B, Huang Y D. Applied Surface Science, 2020, 514, 145870.
76 Pan Y T, Wan J T, Zhao X L, et al. Chemical Engineering Journal, 2017, 330, 1222.
77 Hu C, Xiao J D, Mao X D, et al. Materials Letters, 2019, 240, 113.
78 Sang L, Cheng Y M, Yang R, et al. Journal of Thermal Analysis and Calorimetry, 2021, 144, 1.
79 Huang R, Guo X Y, Ma S Y, et al. Polymers, 2020, 1, 12.
80 Seidi Farzad, Jouyandeh Maryam, Taghizadeh Mohsen, et al. Materials, 2020, 13, 12.
81 Jouyandeh Maryam, Tikhani Farimah, Shabanian Meisam, et al. Journal of Alloys and Compounds, 2020, 829, 154547.
82 Zhang J, Li Z, Zhang L, et al. Carbon, 2019, 153, 407.
83 Ma S C, Hou Y B, Xiao Y L, et al. Materials Chemistry and Physics, 2020, 247, 122875.
84 Motamedi M, Ramezanzadeh M, Ramezanzadeh B, et al. Chemical Engineering Journal, 2020, 382, 122820.
85 Ramezanzadeh Mohammad, Ramezanzadeh Bahram, Mahdavian Mohammad, et al. Carbon, 2020, 161, 231.
86 Naguib Michael, Kurtoglu Murat, Presser Volker, et al. Advanced Materials, 2011, 23(37), 4248.
87 Barsoum Michel W. Progress in Solid State Chemistry, 2000, 28(1), 201.
88 Sun D D, Hu Q K, Li Z Y, et al. Journal of Synthetic Crystals, 2014, 43(11), 2950(in Chinese).
孙丹丹,胡前库,李正阳,等. 人工晶体学报. 2014, 43(11), 2950.
89 Naguib M, Mochalin V N, Barsoum M W, et al. Advanced Materials, 2014, 26, 7.
90 Cheng H M. Chinese Science Bulletin, 2020, 65(18), 1794(in Chinese).
成会明. 科学通报, 2020, 65(18), 1794.
91 Yu X, Michael N, Mochalin V, et al. Journal of the American Chemical Society, 2014, 136, 17.
92 Zhang H, Wang L B, Chen Q, et al. Materials & Design, 2016, 92, 682.
93 Hantanasirisakul Kanit, Zhao M Q, Urbankowski Patrick, et al. Advanced Electronic Materials, 2016, 2, 16000506.
94 Al-Hamadani Y A J, Jun B M, Yoon M, et al. Chemosphere, 2020, 254, 126821.
95 Sliozberg Y, Andzelm Jan, Hatter Christine B, et al. Composites Science and Technology, 2020, 192, 108124.
96 Monastyreckis G, Mishnaevsky L, Hatter C B, et al. Carbon, 2020, 162, 402.
97 Hatter C B, Shah J, Anasori B, et al. Composites Part B—Engineering, 2020, 182, 107603.
98 Kang R Y, Zhang Z Y, Guo L C, et al. Cemented Carbide, 2019, 36(3), 213(in Chinese).
康瑞洋,张振宇,郭梁超,等. 硬质合金, 2019, 36(3), 213.
99 Feng A L, Hou T Q, Jia Z R, et al. Nanomaterials, 2020, 1, 10.
100 Song P, Qiu H, Wang L, et al. Sustainable Materials and Technologies, 2020, 24(e00153), 1.
101 Liu J P, Peng W C, Li Y, et al. Transactions of Tianjin University, 2020, 26(3), 149.
102 Shuck Christopher E, Gogotsi Yury. Chemical Engineering Journal, 2020, 1, 1.
103 Sliozberg Yelena, Andzelm Jan, Nataraj Latha, et al. Abstracts of Papers of the American Chemical Society, 2019, 258, 1.
104 Guo L C, Zhang Z Y, Li M H, et al. Composites Communications, 2020, 19, 134.
105 Ji C, Wang Y, Ye Z Q, et al. Acs Applied Materials & Interfaces, 2020, 12(21), 24298.
106 Nie H S, Hou W G. Acta Physico-Chimica Sinica, 2011, 27(8), 1783(in Chinese).
聂宏骞,侯万国. 物理化学学报, 2011, 27(8), 1783.
107 Lei L X, Zhang W F, Hu M, et al. Chinese Journal of Inorganic Che-mistry, 2005, 21(4), 451(in Chinese).
雷立旭,张卫锋,胡猛,等. 无机化学学报, 2005, 21(4), 451.
108 Guo X X, Zhang F Z, Evans D G, et al. Chemical Communications, 2010, 46(29), 5197.
109 Evans D G, Slade R. Structure and Bonding, Springer Press, Germany, 2006.
110 Zhou L L, Xie R G, Wang L J. Progress in Chemistry. 2019, 31(Z1), 275(in Chinese).
周伶俐,谢瑞刚,王林江. 化学进展. 2019, 31(Z1), 275.
111 Huang S C, Deng C, Zhao Z Y, et al. Polymer Degradation and Stability, 2020, 178, 109179.
112 Li W T, Zhou S G, Zhao W J. Surface Technology, 2019, 48(1), 241(in Chinese).
李文涛,周升国,赵文杰. 表面技术, 2019, 48(1), 241.
113 Su Y, Qiu S H, Yang D P, et al. Journal of Hazardous Materials, 2020, 391, 122215.
114 Zhang Z D, Qin J Y, Zhang W C, et al. Chemical Engineering Journal, 2020, 381(UNSP 122777), 1.
115 Wang N, Gao H Y, Zhang J, et al. Progress in Organic Coatings, 2019, 135, 74.
116 Ding J M, Zhang Y, Zhang X, et al. Journal of Thermal Analysis and Calorimetry, 2020, 140(1), 149.
117 Zhu P, Gu Z J, Hong S, et al. Polymers for Advanced Technologies, 2018, 29(7), 2147.
118 Peng G C, Qiao Q Q, Huang K, et al. Progress in Organic Coatings, 2020, 140, 105514.
119 Xu Z S, Deng N, Yan L. Journal of Coatings Technology and Research, 2020, 17(1), 157.
120 Karami Zohre, Ganjali Mohammad Reza, Dehaghani Maryam Zarghami, et al. Polymers, 2020, 12(5), 1.
121 Karami Z, Jouyandeh M, Ali J A, et al. Progress in Organic Coatings, 2019, 136(UNSP 105264), 1.
122 Zhou S, Kang Y N, Huang R Q, et al. Journal of Applied Polymer Science, 2020, e49386, 1.
123 Li H B, Zuo J D, Dong B Q, et al. International Journal of Concrete Structures and Materials, 2020, 14, 181.
124 Wang W, Yuan Y, Yu B, et al. Journal of Hazardous Materials, 2020, 387, 122006.
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