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References
1. Miracle DB (2005) Metal matrix composites–from science to technological significance.
Compos Sci Technol 65(15–16):2526–2540
2. Bakshi SR, Lahiri D, Agarwal A (2010) Carbon nanotube reinforced metal matrix composites-a
review. Int Mater Rev 55(1):41–64
3. Ibrahim IA, Mohamed FA, Lavernia EJ (1991) J Mater Sci 26:1137–1156
4. Borkar T, Sosa J, Hwang JY, Scharf TW, Tiley J, Fraser H, Banerjee R (2014) Laser-deposited
in situ TiC-reinforced nickel matrix composites: 3D microstructure and tribological properties.
JOM 66(6):935–942
5. Chen WX, Tu JP, Wang LY, Gan HY, Xu ZD, Zhang XB (2003) Tribological application of
carbon nanotubes in a metal-based composite coating and composites. Carbon 41(2):215–222
6. Popov VN (2004) Carbon nanotubes: properties and application. Mater Sci Eng: R: Reports
43(3):61–102
7. Chen LY, Konishi H, Fehrenbacher A, Ma C, Xu JQ, Choi H, Xu H-F, Pfefferkorn FE, Li XC
(2012) Novel nanoprocessing route for bulk graphene nanoplatelets reinforced metal matrix
nanocomposites. Scripta Mater 67(1):29–32
8. Shukla AK, Nayan N, Murty SVSN, Mondal K, Sharma SC, George KM, Bakshi SR (2013)
Processing copper–carbon nanotube composite powders by high energy milling. Mater Charact
84:58–66
9. Zhang D, Zhan Z (2016) Preparation of graphene nanoplatelets-copper composites by a
modified semi-powder method and their mechanical properties. J Alloy Compd 658:663–671
10. Kondoh K, Threrujirapapong T, Imai H, Umeda J, Fugetsu B (2009) Characteristics of powder
metallurgy pure titanium matrix composite reinforced with multi-wall carbon nanotubes.
Compos Sci Technol 69(7–8):1077–1081
11. Mu XN, Zhang HM, Cai HN, Fan QB, Zhang ZH, Wu Y, Fu ZJ, Yu DH (2017) Microstructure
evolution and superior tensile properties of low content graphene nanoplatelets reinforced pure
Ti matrix composites. Mater Sci Eng, A 687:164–174
12. Bisht A, Srivastava M, Kumar RM, Lahiri I, Lahiri D (2017) Strengthening mechanism
in graphene nanoplatelets reinforced aluminum composite fabricated through spark plasma
sintering. Mater Sci Eng, A 695:20–28
13. Zhang X, Li S, Pan B, Pan D, Liu L, Hou X, Chu M, Kondoh K, Zhao M (2019) Regulation of
interface between carbon nanotubes-aluminum and its strengthening effect in CNTs reinforced
aluminum matrix nanocomposites. Carbon 155:686–696
14. Rashad M, Pan F, Hu H, Asif M, Hussain S, She J (2015) Enhanced tensile properties of
magnesium composites reinforced with graphene nanoplatelets. Mater Sci Eng, A 630:36–44
15. Goh CS, Wei J, Lee LC, Gupta M (2005) Development of novel carbon nanotube reinforced
magnesium nanocomposites using the powder metallurgy technique. Nanotechnology 17(1):7
16. Suarez S, Soldera F, Oliver CG, Acevedo D, Mücklich F (2012) Thermomechanical behavior of
bulk Ni/MWNT composites produced via powder metallurgy. Adv Eng Mater 14(7):499–502
17. Borkar T, Mohseni H, Hwang J, Scharf TW, Tiley JS, Hong SH, Banerjee R (2015) Excellent
strength–ductility combination in nickel-graphite nanoplatelet (GNP/Ni) nanocomposites. J
Alloy Compd 646:135–144
18. Tjong SC (2013) Recent progress in the development and properties of novel metal matrix
nanocomposites reinforced with carbon nanotubes and graphene nanosheets. Mater Sci Eng:
R: Reports 74(10):281–350
19. Nieto A, Bisht A, Lahiri D, Zhang C, Agarwal A (2017) Graphene reinforced metal and ceramic
matrix composites: a review. Int Mater Rev 62(5):241–302
20. Hu Z, Tong G, Lin D, Chen C, Guo H, Xu J, Zhou L (2016) Graphene-reinforced metal matrix
nanocomposites–a review. Mater Sci Technol 32(9):930–953
21. Scharf TW, Neira A, Hwang JY, Tiley J, Banerjee R (2009) Self-lubricating carbon nanotube
reinforced nickel matrix composites. J Appl Phys 106(1):013508
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