徐志伟, 郭启微, 王晓生, 等. 电子束辐照对碳纳米管结构及性能的影响[J]. 材料工程, 2010, (12): 92-97. XU Zhi-wei, GUO Qi-wei, WANG Xiao-sheng, et al. Effect of electron-beam irradiation on structure and properties of CNTs[J]. Journal of Materials Engineering, 2010, (12): 92-97.
[2]
MISEWICH J A, MARTEL R, AVOURIS P, et al. Electrically induced optical EMISSION from a carbon nanotube FET[J]. Science, 2003, 300(5620): 783-786.
[3]
WANG Q H, CORRIGAN T D, DAI J Y, et al. Field emission from nanotube bundle emitters at low fields[J]. Applied Physics Letters, 1997, 70(24): 3308-3310.
[4]
YUGE R, MIYAWAKI J, ICHIHASHI T, et al. Highly efficient field emission from carbon nanotube-nanohorn hybrids prepared by chemical vapor deposition[J]. ACS Nano, 2010, 4(12): 7337-7343.
[5]
GARRETT D J, BROOKSBY P A, RAWSON F J, et al. Reproducible fabrication of robust, renewable vertically aligned multiwalled carbon nanotube/epoxy composite electrodes[J]. Analytical Chemistry, 2011, 83(21):8347-8351.
[6]
BINDL D J, WU M Y, PREHN F C, et al. Efficiently harvesting excitons from electronic type-controlled semiconducting carbon nanotube films[J]. Nano Letters, 2011, 11(2): 455-460.
[7]
BIERCUK M J, LLAGUNO M C, RADOSAVLJEVIC M, et al. Carbon nanotube composites for thermal management[J]. Applied Physics Letters, 2002, 80(15): 2767-2769.
[8]
JIANG W T, DING G L, PENG H. Measurement and model on thermal conductivities of carbon nanotube nanorefrigerants[J]. International Journal of Thermal Sciences, 2009, 48(6): 1108-1115.
[9]
GUI X C, YE W, WEI J Q, et al. Optimization of electromagnetic matching of Fe-filled carbon nanotubes/ferrite composites for microwave absorption[J]. Journal of Physics D: Applied Physics, 2009, 42(7): 075002.
[10]
WANG C, RUITAO L, KANG F Y, et al. Synthesis and application of iron-filled carbon nanotubes coated with FeCo alloy nanoparticles[J]. Journal of Magnetism and Magnetic Materials, 2009, 321(13): 1924-1927.
[11]
GHASEMI A. Enhanced reflection loss and permittivity of self assembled Mg-Co-Zr substituted barium ferrite dot array on carbon nanotubes[J]. Journal of Magnetism and Magnetic Materials, 2012, 324(6): 1080-1083.
[12]
WANG W T, LI Q L, CHANG C B. Effect of MWCNTs content on the magnetic and wave absorbing properties of ferrite-MWCNTs composites[J]. Synthetic Metals, 2011, 161(1-2): 44-50.
[13]
ZHAO C Y, ZHANG A B, ZHENG Y P, et al. Electromagnetic and microwave-absorbing properties of magnetite decorated multiwalled carbon nanotubes prepared with poly(N-vinyl-2-pyrrolidone)[J]. Materials Research Bulletin, 2012, 47(2): 217-221.
[14]
ZHAN Y Q, ZHAO R, LEI Y J, et al. Preparation, characterization and electromagnetic properties of carbon nanotubes/Fe3O4 inorganic hybrid material[J]. Applied Surface Science, 2011, 257(9): 4524-4528.
[15]
CAO M S, YANG J, SONG W L,et al. Ferroferric oxide/multiwalled carbon nanotube vs polyaniline/ferroferric oxide/multiwalled carbon nanotube multiheterostructures for highly effective microwa ve absorption[J].ACS Applied Materials Interfaces, 2012, 4(12): 6949-6956.
[16]
KUANG Q, LIN Z W, LIAN W, et al. Syntheses of rare-earth metal oxide nanotubes by the sol-gel method assisted with porous anodic aluminum oxide temp1ates[J]. Journal of Solid State Chemistry,2007, 180(4): 1236-1242.
[17]
HE B J, SUN W L, WANG M, et al. New magnetic phenomena of rare earth ions-modified carbon nanotubes[J]. Materials Chemistry and Physics, 2006, 9(2-3): 202-205.
[18]
ZHANG L, ZHU H. Dielectric, magnetic, and microwave absorbing properties of multi-walled carbon nanotubes filled with Sm2O3 nanoparticles[J]. Materials Letters, 2009, 63(2): 272-274.
[19]
ZHANG L, ZHU H, SONG Y, et al. The electromagnetic characteristics and absorbing properties of multi-walled carbon nanotubes filled with Er2O3 nanoparticles as microwave absorbers[J]. Materials Science and Engineering: B, 2008, 153(1-3): 78-82.
[20]
LIU Z F, BAI G, HUANG Y, et al. Microwave absorption of single-walled carbon nanotubes/soluble cross-linked polyurethane composites[J]. Journal of Physical Chemistry C, 2007, 111(37): 13696-13700.
[21]
曹茂盛, 高正娟, 朱静. CNTs/Polyester复合材料的微波吸收特性研究[J]. 材料工程, 2003, (2): 34-36. CAO Mao-sheng, GAO Zheng-juan, ZHU Jing. Research on microwave absorbability towards CNTs/polyester composites[J]. Journal of Materials Engineering, 2003, (2): 34-36.
[22]
RIUS J M, TERRANDO M,JOFRE L. High-frequency RCS of complex radar target in real target in real time[J]. IEEE Transactions on Antennas and Propagation, 1993, 41(9): 1308-1319.
[23]
LIU R, LUN N, QI Y X, et al. Microwave absorption properties of TiN nanoparticles[J]. Journal of Alloys and Compounds, 2011, 509(41): 10032-10035.
[24]
ZHEN L, GONG Y X, JIANG J T, et al. Synthesis of CoFe/Al2O3 composite nanoparticles as the impedance matching layer of wideband multilayer absorber[J]. Journal of Applied Physics, 2011, 109(7): 07A332.
[25]
DENG L W, DING L, ZHOU K S, et al. Electromagnetic properties and microwave absorption of W-type hexagonal ferrites doped with La3+[J]. Journal of Magnetism and Magnetic Materials, 2011, 323(14): 1895-1898.
[26]
WANG C, LV R, HUANG Z H, et al. Synthesis and microwave absorbing properties of FeCo alloy particles/graphite nanoflake composites[J]. Journal of Alloys and Compounds, 2011, 509(2): 494-498.
[27]
IIJIMA S. Helical microtubules of graphitic carbon[J]. Nature, 1991, 354(6348): 56-58.
[28]
MICHELI D, APOLLO C, PASTORE R, et al. X-band microwave characterization of carbon-based nanocomposite material, absorption capability comparison and RAS design simulation[J]. Composites Science and Technology, 2010, 70(2): 400-409.
[29]
LI N, HUANG Y, DU F, et al. Electromagnetic interference (EMI) shielding of single-walled carbon nanotube epoxy composites[J]. Nano Letters, 2006, 6(6): 1141-1145.
[30]
LARRY L, SAJJAD H, DARIO P, et al. Size and mobility of excitons in (6,5) carbon nanotubes[J]. Nature Physics, 2009, 5(1): 54-58.
[31]
CHA H G, KUMAR S. Materials science-making strong fibers[J]. Science, 2008, 319 (5865): 908-909.
[32]
YU M F, LOURIE O, DYER M J, et al. Strength and breaking mechanism of multiwalled carbon nanotubes under tensile load[J]. Science, 2000, 287(5453): 637-640.
[33]
COLEMAN J N, KHAN U, GUN'KO Y K. Mechanical reinforcement of polymers using carbon nanotubes[J]. Advanced Materials, 2006, 18(6): 689-706.
[34]
AHMAD I, CAO H Z, CHEN H H, et al. Carbon nanotube toughened aluminium oxide nanocomposite[J]. Journal of the European Chemical Society, 2009, 30(4): 865-873.
[35]
DENG F, ITO M, NOGUCHI T, et al. Elucidation of the reinforcing mechanism in carbon nanotube/rubber nanocomposites[J]. ACS Nano, 2011, 5(5): 3858-3866.
[36]
INAM F, YAN H X, JAYASEELAN D D, et al. Electrically conductive alumina-carbon nanocomposites prepared by spark plasma sintering[J]. Journal of the European Ceramic Society, 2010, 30(2): 153-157.
[37]
ZHAN G D, KUNTZ J D, WAN J L, et al. Single-wall carbon nanotubes as attractive toughening agents in alumina-based nanocomposites[J]. Nature Materials, 2003, 2(1): 38-42.
[38]
LIAO Y Z, ZHANG C, ZHANG Y, et al. Carbon nanotube/polyaniline composite nanofibers: facile synthesis and chemosensors[J]. Nano Letters, 2011, 11(3): 954-959.
[39]
AHMAD K, PAN W, SHI S L. Electrical conductivity and dielectric properties of multiwalled carbon nanotube and alumina composites[J]. Applied Physics Letters, 2006, 89(13): 133122.
[40]
XIE H Q, CHEN L F. Review on the preparation and thermal performances of carbon nanotube contained nanofluids[J]. Journal of Chemical and Engineering Data, 2011, 56(4): 1030-1041.
[41]
POP E, MANN D, WANG Q, et al. Thermal conductance of an individual single-wall carbon nanotube above room temperature[J]. Nano Letters, 2006, 6(1): 96-100.
[42]
CHOI T Y, POULIKAKOS D, THARIAN J, et al. Measurement of the thermal conductivity of individual carbon nanotubes by the four-point three-omega method[J]. Nano Letters, 2006, 6(8): 1589-1593.
[43]
KIM P, SHI L, MAJUMDAR A, et al. Thermal transport measurements of individual multiwalled nanotubes[J]. Physics Review Letters, 2001, 87 (21): 4-8.
[44]
O'CONNELL M J, BACHILO S M, HUFFMAN C B, et al. Band gap fluorescence from individual single-walled carbon nanotubes[J]. Science, 2002, 297(5581): 593-596.
[45]
ST-ANTOINE B C, MéNARD D, MARTEL R. Single-walled carbon nanotube thermopile for broadband light detection[J]. Nano Letters, 2011, 11(2): 609-613.
[46]
ODOM T W, HUANG J L, KIM P, et al. Atomic structure and electronic properties of single-walled carbon nanotubes[J]. Nature, 1998, 319: 62-64.
[47]
LU J P. Elastic properties of carbon nanotubes and nanoropes[J]. Physics Review Letters, 1997, 79(7): 1297-1300.
[48]
ZHOU O, FLEMING R M, MURPHY D W, et a1. Defects in carbon nano-structures[J]. Science, 1994, 263(5154): 1744-1747.
[49]
YI W, LU L, ZHANG D L, et al. Linear specific hear of carbon nanotubes[J]. Physical Review B, 1999, 59: R9015-R9018.
[50]
BERBER S, KWON Y K, TOMANEK D. Unusually high thermal conductivity of carbon nanotubes[J]. Physics Review Letters, 2000, 84(20): 4613-4616.
[51]
CHE J, CAGIN T, GODDARD W A. Thermal conductivity of carbon nanotubes[J]. Nanotechnology, 2000, 11: 65-69.
[52]
BACHILO S M, STRANO M S, KITTRELL C, et al. Structure-assigned optical spectra of single-walled carbon nanotubes[J]. Science, 2002, 298(5602): 2361-2366.
[53]
SUN W X, HUANG Z P, ZHANG L, et al. Luminescence from multi-walled carbon nanotubes and the Eu(Ⅲ)/multi-walled carbon nanotube composite[J]. Carbon, 2003, 41(8): 1685-1687.
[54]
WEI J Q, ZHU H W, WU D H, et al. Carbon nanotubes filaments in household light bulbs[J]. Applied Physics Letters, 2004, 84(24): 4869-4871.
[55]
MINTMIRE J W, DUNLAP B I, WHITE C T. Are fullerene tubules metallic[J]. Physical Review Letters, 1992, 68(5): 631-634.
[56]
EBBESEN T W, LEZEC H J, HIURA H, et al. Electrical conductivity of individual carbon nanotubes[J]. Nature, 1996, 382(6586): 54-56.
[57]
DAI H J, WONG E W, LIEBER C M. Probing electrical transport in nanomaterials:conductivity of individual carbon nanotubes[J]. Science, 1996, 272(526): 523-526.
[58]
HUANG Y, OKADA M, TANAKA K, et a1. Estimation of superconducting transition temperature in metallic carbon nanotubes[J]. Physics Review B, 1996, 53(9): 5129.
[59]
EOM J Y, KWON H S. Preparation of single-walled carbon nanotube/silicon composites and their lithium storage properties[J]. ACS Applied Materials & Interfaces, 2011, 3(4):1015-1021.
[60]
KIM J B, LEE S K, KIM C G. Comparison study on the effect of carbon nano materials for single-layer microwave absorbers in X-band[J]. Composites Science and Technology, 2008, 68(14): 2909-2916.
[61]
YANG Y L, MOOL C G, KENNETH D L, et al. Novel carbon nanotube-polystyrene foam composites for electromagnetic interference shielding[J]. Nano Letters, 2005, 5(11): 2131-2134.
[62]
HUANG Y, LI N, MA Y F, et al. The influence of single-walled carbon nanotube structure on the electromagnetic interference shielding efficiency of its epoxy composites[J]. Carbon, 2007, 45(8): 1614-1621.
[63]
LIU Z F, BAI G, HUANG Y, et al. Reflection and absorption contributions to the electromagnetic interference shielding of single-walled carbon nanotube/polyurethane composites[J]. Carbon, 2007, 45(4): 821-827.
[64]
WATTS P C P, WEN K H, HAROLD W K, et al. Are bulk defective carbon nanotubes less electrically conducting?[J]. Nano Letters, 2003, 3(4): 549-553.
[65]
WATTS P C P, HSU W K, BARNES A, et al. High permittivity from defective multiwalled carbon nanotubes in the X-band[J]. Advanced Materials, 2003, 15(7-8): 600-603.
[66]
HSU W K, NAKALIMA T. Electrically conducting boron-doped multi-walled carbon nanotube bundles[J]. Carbon, 2002, 40(3): 462-464.
[67]
张增富,罗国华,范壮军,等.不同结构碳纳米管的电磁波吸收性能研究[J].物理化学学报,2006, 22(3): 296-300. ZHANG Zeng-fu, LUO Guo-hua, FAN Zhuang-jun, et al. Complex permittivity and permeability spectra of different kinds of carbon nanotubes[J]. Acta Physico-Chimica Sinica, 2006, 22(3): 296-300.
[68]
SRIVASTAVA R K, NARAYANAN T N, MARY A P, et al. Ni filled flexible multi-walled carbon nanotube-polystyrene composite films as efficient microwave absorbers[J]. Applied Physics Letters, 2011, 99(11): 113116.
[69]
SUI J H, ZHANG C, LI J, et al. Microwave absorption and catalytic activity of carbon nanotubes decorated with cobalt nanoparticles[J]. Materials Letters, 2012, 75(5): 158-160.
[70]
CHE R C, PENG L M, DUAN X F. Microwave absorption enhancement and complex permittivity permeability of Fe encapsulated within carbon nanotubes[J]. Advanced Materials, 2004, 16(5): 401-405.
[71]
ZHU H, LIN H Y, GUO H F, et al. Microwave absorbing property of Fe-filled carbon nanotubes synthesized by a practical route[J]. Materials Science and Engineering: B, 2007, 138(1): 101-104.
[72]
ZHU H, ZHANG L, ZHANG L Z, et al. Electromagnetic absorption properties of Sn-filled multi-walled carbon nanotubes synthesized by pyrolyzing[J]. Materials Letters, 2010, 64(3): 227-230.
[73]
ZHAO D L, LI X, SHEN Z M. Preparation and electromagnetic and microwave absorbing properties of Fe-filled carbon nanotubes[J]. Journal of Alloys and Compounds, 2009, 471(1-2): 457-460.
[74]
ZOU T C, LI H P, ZHAO N Q, et al. Electromagnetic and microwave absorbing properties of multi-walled carbon nanotubes filled with Ni nanowire[J]. Journal of Alloys and Compounds, 2010, 496(1-2): L22-L24.
[75]
LIN H Y, ZHU H, GUO H F, et al. Microwave-absorbing properties of Co-filled carbon nanotubes[J]. Materials Research Bulletin, 2008, 43(10): 2697-2702.
[76]
LIN H Y, ZHU H, GUO H F, et al. Investigation of the microwave-absorbing properties of Fe-filled carbon nanotubes[J]. Materials Letters, 2007, 61(16): 3547-3550.
[77]
YI H B, WEN F S, QIAO L, et al. Microwave electromagnetic properties of multiwalled carbon nanotubes filled with Co nanoparticles[J].Journal of Applied Physics, 2009, 106(10): 103922.
[78]
PARK K Y, LEE S E,KIM C G, et al.Fabrication and electromagnetic characteristics of electromagnetic wave absorbing sandwich structures[J]. Composites Science and Technology, 2006, 66(3-4): 576-584.
[79]
THOMASSIN J M, HUYNEN I, ROBERT J, et al. Functionalized polypropylenes as efficient dispersing agents for carbon nanotubes in a polypropylene matrix; application to electromagnetic interference (EMI) absorber materials[J]. Polymer, 2010, 51(1): 115-121.
[80]
向长淑, 杨炯, 朱勇, 等. 碳纳米管/石英复合材料的电磁波吸收性能[J]. 无机材料学报, 2007, 22(1): 101-105. XIANG Chang-shu, YANG Jiong, ZHU Yong, et al. Electromagnetic wave absorbing properties of carbon nanotube-fused silica composites[J]. Journal of Inorganic Materials, 2007, 22(1): 101-105.
[81]
刘学建, 黄智勇, 向长淑, 等. 反应烧结工艺制备碳纳米管/氮化硅陶瓷基复合材料[J]. 硅酸盐学报, 2006, 34(2): 133-136. LIU Xue-jian, HUANG Zhi-yong, XIANG Chang-shu, et al. Carbon nanotubes/silicon nitride ceramic matric composites fabricated by reaction-bonded process[J]. Journal of the Chinese Ceramic Society, 2006, 34(2): 133-136.
[82]
SONG W L, CAO M S, WEN B, et al. Synthesis of zinc oxide particles coated multiwalled carbon nanotubes: dielectric properties, electromagnetic interference shielding and microwave absorption[J]. Materials Research Bulletin, 2012, 47(7): 1747-1754.
[83]
LU M M, YUAN J, WEN B, et al. Carbon materials with quasi-graphene layers: the dielectric, percolation properties and the electronic transport mechanism[J]. Chinese Physics B, 2013, 22(3): 037701.
[84]
SONG W L, CAO M S, HOU Z L, et al. High dielectric loss and its monotonic dependence of conducting-dominated multiwalled carbon nanotubes/silica nanocomposite on temperature ranging from 373 to 873K in X-band[J]. Applied Physics Letters, 2009, 94(23): 233110.
[85]
SONG W L, CAO M S, HOU Z L, et al. High-temperature microwave absorption and evolutionary behavior of multiwalled carbon nanotube nanocomposite[J]. Scripta Materialia, 2009, 61(2): 201-204.
[86]
华绍春, 王汉功, 汪刘应, 等. 微弧等离子喷涂碳纳米管/纳米Al2O3-TiO2复合涂层的吸波性能研究[J]. 物理学报, 2009, 58(9): 6534-6541. HUA Shao-chun, WANG Han-gong, WANG Liu-ying, et al. Absorption properties of micro-plasma sprayed carbon nanotube-nanostructure A12O3-TiO2 composite coatings[J]. Acta Physica Sinica, 2009, 58(9): 6534-6541.
[87]
汪刘应,徐卓,华绍春, 等. 微弧等离子喷涂碳纳米管/纳米Al2O3-TiO2复合涂层高温性能研究[J]. 无机材料学报, 2011, 26(3): 239-243. WANG Liu-ying, XU Zhuo, HUA Shao-chun, et al. High temperature performance of micro-plasma sprayed CNTs/A12O3-TiO2 composite coating[J]. Journal of Inorganic Materials, 2011, 26(3): 239-243.