Nanoburl Graphites.
graphite flakes
graphite onions
nanoburls
pseudo-Schottky junctions
Journal
Advanced materials (Deerfield Beach, Fla.)
ISSN: 1521-4095
Titre abrégé: Adv Mater
Pays: Germany
ID NLM: 9885358
Informations de publication
Date de publication:
Apr 2021
Apr 2021
Historique:
revised:
06
02
2021
received:
03
11
2020
pubmed:
20
3
2021
medline:
20
3
2021
entrez:
19
3
2021
Statut:
ppublish
Résumé
A critical challenge for the application of graphite is low strength, which originates from the easy cleavage of graphite (0002) planes. Inspired by the burl strengthening mechanism observed in tree trunks, nanodiamond particles converted into graphite onions are used as "nanoburls" embedded in graphite (0002) lattice planes to eliminate the graphite (0002) plane cleavage of bulk graphites prepared by spark plasma sintering from graphite powders. Covalent bonds are built between carbon atoms by sp
Identifiants
pubmed: 33738845
doi: 10.1002/adma.202007513
doi:
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
e2007513Subventions
Organisme : Natural Science Foundation of China
ID : 91 963 204
Organisme : Natural Science Foundation of China
ID : 51 962 003
Organisme : Natural Science Foundation of China
ID : 51 991 344
Organisme : Beijing Natural Science Foundation
ID : Z190010
Informations de copyright
© 2021 Wiley-VCH GmbH.
Références
M. Dienwiebel, G. S. Verhoeven, N. Pradeep, J. W. Frenken, J. A. Heimberg, H. W. Zandbergen, Phys. Rev. Lett. 2004, 92, 126101.
Y. Guo, C. Liu, Q. Yin, C. Wei, S. Lin, T. B. Hoffman, Y. Zhao, J. H. Edgar, Q. Chen, S. P. Lau, J. Dai, H. Yao, H. S. P. Wong, Y. Chai, ACS Nano 2016, 10, 8980.
M. Xu, T. Liang, M. Shi, H. Chen, Chem. Rev. 2013, 113, 3766.
M. Hasegawa, K. Nishidate, Phys. Rev. B 2004, 70, 7.
W. Wang, S. Y. Dai, X. D. Li, J. R. Yang, D. J. Srolovitz, Q. S. Zheng, Nat. Commun. 2015, 6, 7.
P. Nemeth, K. McColl, L. A. J. Garvie, C. G. Salzmann, M. Murri, P. F. McMillan, Nat. Mater. 2020, 19, 1126.
Y. Zhao, J. Shi, H. Wang, Z. Tao, Z. Liu, Q. Guo, L. Liu, Carbon 2013, 51, 427.
Q. Y. Lin, T. Q. Li, Z. J. Liu, Y. Song, L. L. He, Z. J. Hu, Q. G. Guo, H. Q. Ye, Carbon 2012, 50, 2369.
Z. Liu, Q. Guo, J. Shi, G. Zhai, L. Lang, Carbon 2008, 46, 414.
B. H. Xiao, B. Y. Zhao, P. S. Yu, H. Bo, C. Gang, A. H. Ke, Carbon 2005, 43, 1032.
S. Li, Y. Song, S. Yan, J. Shi, L. Lang, X. Wei, Q. Guo, Carbon 2007, 45, 2092.
Z. Liu, Q. Guo, J. Shi, G. Zhai, L. Liu, Carbon 2007, 45, 1914.
Y. Song, S. Li, G. Zhai, J. Shi, Q. Guo, L. Liu, Z. Xu, J. Wang, Carbon 2008, 46, 1100.
M. D. Fang, W. L. Tseng, J. J. Jow, C. M. Lee, H. R. Chen, M. S. Wu, T. R. Ling, Carbon 2012, 50, 906.
G. Yuan, X. Li, Z. Dong, A. Westwood, Z. Cui, C. Ye, H. Du, F. Kang, Carbon 2012, 50, 175.
Z. J. Liu, Q. G. Guo, L. Liu, J. L. Shi, G. T. Zhai, New Carbon Mater. 2010, 25, 313.
Z. Yun, Z. Liu, H. Wang, J. Shi, J. Zhang, Z. Tao, Q. Guo, L. Lang, Carbon 2013, 53, 313.
U. G. K. Wegst, B. Hao, S. Eduardo, A. P. Tomsia, R. O. Ritchie, Nat. Mater. 2015, 14, 23.
C. Buksnowitz, C. Hackspiel, K. Hofstetter, U. Mueller, W. Gindl, A. Teischinger, J. Konnerth, Wood Sci. Technol. 2010, 44, 389.
A. L. Shigo, Can. J. Bot. 1985, 63, 1391.
K. Lin, H. Fang, F. Wen, L. Wang, W. Jiang, J. Li, Carbon 2019, 149, 436.
J. Ran, K. Lin, H. Yang, J. Li, L. Wang, J. Wan, Appl. Phys. A 2018, 124, 262.
J. Lee, T. Kim, Y. Jung, K. Jung, J. Park, D.-M. Lee, H. S. Jeong, J. Y. Hwang, C. R. Park, K.-H. Lee, S. M. Kim, Nanoscale 2016, 8, 18972.
P. Delhaes, Carbon 2002, 40, 641.
E. J. Garcia, B. L. Wardle, A. J. Hart, Composies, Part A 2008, 39, 1065.
T. Q. Tran, J. K. Y. Lee, A. Chinnappan, L. Nguyen Huu, L. T. Tran, D. Ji, W. A. D. M. Jayathilaka, V. V. Kumar, S. Ramakrishna, J. Mater. Sci. Technol. 2020, 42, 46.
R. T. Tung, Appl. Phys. Lett. 1991, 58, 2821.
Y. Liu, J. Guo, E. Zhu, L. Liao, S. Lee, M. Ding, I. Shakir, V. Gambin, Y. Huang, X. Duan, Nature 2018, 557, 696.
A. N. Ozerin, T. S. Kurkin, L. A. Ozerina, V. Y. Dolmatov, Crystallogr. Rep. 2008, 53, 60.
V. Mochalin, O. Shenderova, D. Ho, Y. Gogotsi, Nat. Nanotechnol. 2012, 7, 11.
E. D. Obraztsova, M. Fujii, S. Hayashi, V. L. Kuznetsov, Y. V. Butenko, A. L. Chuvilin, Carbon 1998, 36, 821.
D. Roy, M. Chhowalla, H. Wang, N. Sano, I. Alexandrou, T. W. Clyne, G. A. J. Amaratunga, Chem. Phys. Lett. 2003, 373, 52.
C. Jonathan, J. K. Mcdonough, P. Filipe, M. Rene, N. Ioannis, G. Yury, O. Sebastian, Nanotechnology 2013, 24, 205703.
A. Weibel, R. Bouchet, R. Denoyel, P. Knauth, J. Eur. Ceram. Soc. 2007, 27, 2641.
K. N. P. Kumar, K. Keizer, A. J. Burggraaf, T. Okubo, H. Nagamoto, S. Morooka, Nature 1992, 358, 48.
M. Mazaheri, Z. Razavi Hesabi, S. K. Sadrnezhaad, Scr. Mater. 2008, 59, 139.
V. L. Kuznetsov, A. L. Chuvilin, Y. V. Butenko, I. Y. Malkov, V. M. Titov, Chem. Phys. Lett. 1994, 222, 343.
Q. Zou, Y. G. Li, B. Lv, M. Z. Wang, L. H. Zou, Y. C. Zhao, Inorg. Mater. 2010, 46, 127.
Z. A. Munir, U. Anselmi-Tamburini, M. Ohyanagi, J. Mater. Sci. 2006, 41, 763.
Y. W. Bao, W. Wang, Y. C. Zhou, Acta Mater. 2004, 52, 5397.
M. Inagaki, F. Kang, M. Toyoda, H. Konno, Advanced Materials Science and Engineering of Carbon, Elsevier, New York 2014, 387.
X. Zhang, R. Schneider, E. Müller, D. Gerthsen, Carbon 2016, 102, 198.
S. Urbonaite, S. Wachtmeister, C. Mirguet, E. Coronel, W. Zou, S. Csillag, G. Svensson, Carbon 2007, 45, 2047.
B. Silvi, A. Savin, Nature 1994, 371, 683.
L. Changgu, W. Xiaoding, J. W. Kysar, H. James, Science 2008, 321, 385.
F. Liu, P. M. Ming, J. Li, Phys. Rev. B 2007, 76, 7.
P. E. Blöchl, Phys. Rev. B 1994, 50, 17953.
G. Kresse, J. Furthmuller, Phys. Rev. B 1996, 54, 11169.
G. Kresse, J. Furthmuller, Comp. Mater. Sci. 1996, 6, 15.
S. Shi, J. Gao, Y. Liu, Y. Zhao, Q. Wu, W. Ju, C. Ouyang, R. Xiao, Chin. Phys. B 2016, 25.
J. P. Perdew, K. Burke, M. Ernzerhof, Phys. Rev. Lett. 1996, 77, 3865.
K. Momma, F. Izumi, J. Appl. Crystallogr. 2011, 44, 1272.