Electromagnetic interference shielding properties of polymer-grafted carbon nanotube composites with high electrical resistance

被引:98
作者
Hayashida, Kenichi [1 ]
Matsuoka, Yoriko [2 ]
机构
[1] Toyota Cent Res & Dev Labs Inc, Mat & Proc Dept 2, Nagakute, Aichi 4801192, Japan
[2] Toyota Cent Res & Dev Labs Inc, Mat Anal & Evaluat Dept, Nagakute, Aichi 4801192, Japan
关键词
SANDWICH STRUCTURES; LOW PERCOLATION; ASPECT-RATIO; CONDUCTIVITY; LIGHTWEIGHT; ABSORPTION; NANOCOMPOSITES; FABRICATION; FILMS;
D O I
10.1016/j.carbon.2015.01.006
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Poly(methyl methacrylate) (PMMA)-grafted multiwalled CNTs were prepared, and then dispersed into additional PMMA matrix, yielding highly insulated PMMA-CNT composites. The volume resistivity of PMMA-CNT was as high as 1.3 x 10(15) Omega cm even at 7.3 wt% of the CNT. The individual CNTs electrically-isolated by the grafted PMMA chains in PMMA-CNT transmitted electromagnetic (EM) waves in the frequency range of 0.001-1 GHz, whereas the percolated CNTs in a conventional composite prepared by blending PMMA with the pristine CNTs strongly shielded the EM waves. This result suggests that the intrinsic conductivity of the CNT itself in PMMA-CNT does not contribute to the EM interference (EMI) shielding in the frequency range of 0.001-1 GHz. On the other hand, PMMA-CNT exhibited EMI shielding at the higher frequency range than 1 GHz because the dielectric loss of the CNT itself was rapidly increased over 1 GHz. At 110 GHz, PMMA-CNT with 7.3 wt% of the CNT had EMI SE of as high as 29 dB (0.57 mm thickness), though is slightly lower than that of the percolated conventional composite (35 dB). Thus, it is demonstrated that the highly insulated PMMA-CNT has the good EMI shielding at extremely high frequency range (30-300 GHz). (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:363 / 371
页数:9
相关论文
共 46 条
[1]   EMI shielding effectiveness of carbon based nanostructured polymeric materials: A comparative study [J].
Al-Saleh, Mohammed H. ;
Saadeh, Walaa H. ;
Sundararaj, Uttandaraman .
CARBON, 2013, 60 :146-156
[2]   Electromagnetic interference shielding mechanisms of CNT/polymer composites [J].
Al-Saleh, Mohammed H. ;
Sundararaj, Uttandaraman .
CARBON, 2009, 47 (07) :1738-1746
[3]   Lightweight Polypropylene/Stainless-Steel Fiber Composite Foams with Low Percolation for Efficient Electromagnetic Interference Shielding [J].
Ameli, Aboutaleb ;
Nofar, Mohammadreza ;
Wang, Sai ;
Park, Chul B. .
ACS APPLIED MATERIALS & INTERFACES, 2014, 6 (14) :11091-11100
[4]  
Born M., 1970, Principles of Optics: Electromagnetic Theory of Propagation, Interference, and Diffraction of Light, V4th
[5]  
Byrne MT, ADV MAT
[6]   CORRELATION BETWEEN SHIELDING EFFECTIVENESS MEASUREMENTS AND ALTERNATIVE METHODS FOR THE CHARACTERIZATION OF SHIELDING MATERIALS [J].
CATRYSSE, JA ;
DEGOEIJE, M ;
STEENBAKKERS, W ;
ANAF, L .
IEEE TRANSACTIONS ON ELECTROMAGNETIC COMPATIBILITY, 1993, 35 (04) :440-444
[7]   Carbon materials for structural self-sensing, electromagnetic shielding and thermal interfacing [J].
Chung, D. D. L. .
CARBON, 2012, 50 (09) :3342-3353
[8]   Electromagnetic interference shielding effectiveness of carbon materials [J].
Chung, DDL .
CARBON, 2001, 39 (02) :279-285
[9]   Small but strong: A review of the mechanical properties of carbon nanotube-polymer composites [J].
Coleman, Jonathan N. ;
Khan, Umar ;
Blau, Werner J. ;
Gun'ko, Yurii K. .
CARBON, 2006, 44 (09) :1624-1652
[10]   Broadband ac conductivity of conductor-polymer composites [J].
Connor, MT ;
Roy, S ;
Ezquerra, TA ;
Calleja, FJB .
PHYSICAL REVIEW B, 1998, 57 (04) :2286-2294