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Direct deposition of graphene nanowalls on ceramic powders for the fabrication of a ceramic matrix composite |
Hai-Tao Zhou(周海涛)1, Da-Bo Liu(刘大博)1, Fei Luo(罗飞)1, Ye Tian(田野)1, Dong-Sheng Chen(陈冬生)1, Bing-Wei Luo(罗炳威)1, Zhang Zhou(周璋)2, Cheng-Min Shen(申承民)2 |
1 Beijing Institute of Aeronautical Materials, Aero Engine Corporation of China, Beijing 100095, China;
2 Beijing National Laboratory of Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China |
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Abstract Uniform mixing of ceramic powder and graphene is of great importance for producing ceramic matrix composite. In this study, graphene nanowalls (GNWs) are directly deposited on the surface of Al2O3 and Si3N4 powders using chemical vapor deposition system to realize the uniform mixing. The morphology and the initial stage of the growth process are investigated. It is found that the graphitic base layer is initially formed parallel to the powder surface and is followed by the growth of graphene nanowalls perpendicular to the surface. Moreover, the lateral length of the graphene sheet could be well controlled by tuning the growth temperature. GNWs/Al2O3 powder is consolidated by using sparking plasma sintering method and several physical properties are measured. Owing to the addition of GNWs, the electrical conductivity of the bulk alumina is significantly increased.
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Received: 28 March 2019
Revised: 03 April 2019
Accepted manuscript online:
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PACS:
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81.05.ue
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(Graphene)
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81.05.Mh
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(Cermets, ceramic and refractory composites)
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81.15.Gh
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(Chemical vapor deposition (including plasma-enhanced CVD, MOCVD, ALD, etc.))
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Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 51602300 and 51602299) and the National Key Research and Development Program of China (Grant No. 2018FYA0305800). |
Corresponding Authors:
Bing-Wei Luo, Cheng-Min Shen
E-mail: luobingwei@126.com;cmshen@iphy.ac.cn
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Cite this article:
Hai-Tao Zhou(周海涛), Da-Bo Liu(刘大博), Fei Luo(罗飞), Ye Tian(田野), Dong-Sheng Chen(陈冬生), Bing-Wei Luo(罗炳威), Zhang Zhou(周璋), Cheng-Min Shen(申承民) Direct deposition of graphene nanowalls on ceramic powders for the fabrication of a ceramic matrix composite 2019 Chin. Phys. B 28 068102
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[1] |
Inam F, Yan H X, Jayaseelan D D, Peijs T and Reece M J 2010 J. Eur. Ceram. Soc. 30 153
|
[2] |
Cho J, Boccaccini A R and Shaffer M S P 2009 J. Mater. Sci. 44 1934
|
[3] |
Cho J, Inam F, Reece M J, Chlup Z, Dlouhy I, Shaffer M S P and Boccaccini A R 2011 J. Mater. Sci. 46 4770
|
[4] |
Wu Y and Kim G Y 2011 J. Mater. Process. Technol. 211 1341
|
[5] |
Esawi A and Morsi K 2007 Compos. Part. A 38 646
|
[6] |
Esawi A M K, Morsi K, Sayed A, Taher M and Lanka S 2011 Compos. Part. A 42 234
|
[7] |
Fan Y C, Wang L J, Li J L, Li J Q, Sun S K, Chen F, Chen L D and Jiang W 2010 Carbon 48 1743
|
[8] |
He T, Li J L, Wang L J, Zhu J J and Jiang W 2009 Mater. Trans. 50 749
|
[9] |
Tapaszto O, Tapaszto L, Marko M, Kern F, Gadow R and Balazsi C 2011 Chem. Phys. Lett. 511 340
|
[10] |
Liu J, Yan H X and Jiang K 2013 Ceram. Int. 39 6215
|
[11] |
Cygan T, Wozniak J, Kostecki M, Petrus M, Jastrzębska A, Ziemkowska W and Olszyna A 2017 Ceram. Int. 43 6180
|
[12] |
Sedlák R, Kovalčíková A, Múdra E, Rutkowski P, Dubiel A, Girman V, Bystrický R and Duszaa J 2017 J. Eur. Ceram. Soc. 37 3773
|
[13] |
Walker L S, Marotto V R, Rafiee M A, Koratkar N and Corral E L 2011 ACS Nano 5 3182
|
[14] |
Wang K, Wang Y F, Fan Z J, Yan J and Wei T 2011 Mater. Res. Bull. 46 315
|
[15] |
Gutierrez-Gonzalez C F, Smirnov A, Centeno A, Fernández A, Alonso B, Rocha V G, Torrecillas R, Zurutuza A and Bartolome J F 2015 Ceram. Int. 41 7434
|
[16] |
Porwal H, Grasso S and Reece M J 2013 Adv. Appl. Ceram. 112 443
|
[17] |
Markandana K, Chin J K and Tan M 2017 J. Mater. Res. 32 84
|
[18] |
Zhang Y, Du J L, Tang S, Liu P, Deng S Z, Chen J and Xu N S 2012 Nanotechnol. 23 015202
|
[19] |
Jiang L L, Yang T Z, Liu F, Dong J, Yao Z H, Shen C M, Deng S Z, Xu N S, Liu Y Q and Gao H J 2013 Adv. Mater. 25 250
|
[20] |
Sun J Y, Chen Y B, Cai X, Ma B J, Chen Z L, Priydarshi M K, Chen K, Gao T, Song X J, Ji Q Q, Guo X F, Zou D C, Zhang Y F and Liu Z F 2015 Nano Res. 8 3496
|
[21] |
Chen X D, Chen Z L, Sun J Y, Zhang Y F and Liu Z F 2016 Acta Phys. -Chim. Sin. 32 14
|
[22] |
Zhou H T, Yu N, Zou F, Yao Z H, Gao G and Shen C M 2016 Chin. Phys. B 25 096106
|
[23] |
Zhou H T, Liu D B, Luo F, Luo B W, Tian Y, Chen D S and Shen C M 2018 Micro & Nano Lett. 13 842
|
[24] |
Zou F, Zhou H T, Yu N, Yao Z H, Liu F and Shen C M 2016 Chem. Phys. Lett. 664 29
|
[25] |
Dong J, Yao Z H, Yang T Z, Jiang L L and Shen C M 2013 Sci. Rep. 3 1733
|
[26] |
Gupta A, Chen G, Joshi P, Tadigadapa S and Eklund P C 2006 Nano Lett. 6 2667
|
[27] |
Graf D, Molitor F, Ensslin K, Stampfer C, Jungen A, Hierold C and Wirtz L 2007 Nano Lett. 7 238
|
[28] |
Vitchev R, Alexander Malesevic A, Petrov R, Kemps R, Mertens M, Annick Vanhulsel A and Haesendonck C 2010 Nanotechnol. 21 095602
|
[29] |
Zhou M, Bi H, Lin T Q, Lv X J, Wan D Y, Huang F Q and Lin J H 2014 Carbon 75 314
|
[30] |
Li Q S, Zhang Y J, Gong H Y, Sun H B, Li T, Guo X and Ai S H 2015 Ceram. Int. 41 13547
|
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