欢迎登录材料期刊网

材料期刊网

高级检索

采用不同温度热处理纳米多壁碳管,研究纳米多壁碳管结构变化对相应复合材料的微波特性的影响.采用拉曼光谱分析表征纳米多壁碳管热处理前后的结构变化;测试纳米多壁碳管/石蜡复合材料在0.5 ~ 6GH介电谱.结果显示,热处理温度≤1000℃,纳米多壁碳管的ID/IG值基本不变,相应复合材料的复介电常数大致相等且吸波性能基本相同;热处理温度> 1000℃,ID/IG值明显减小,内部结构发生重排,纳米多壁碳管平均晶粒尺寸增大,相应的纳米多壁碳管复合材料的复介电常数无论实部还是虚部均明显下降,微波吸收峰向高频移动.通过热处理控制纳米多壁碳管的ID/IG值和平均晶粒尺寸,可以调整纳米多壁碳管复合材料的微波介电谱,达到调整纳米多壁碳管复合材料的微波吸收特性的目的.

参考文献

[1] Aimad Saib;Lukasz Bednarz;Raphael Daussin;Christian Bailly;Xudong Lou;Jean-Michel Thomassin;Christophe Pagnoulle;Christophe Detrembleur;Robert Jerome;Isabelle Huynen .Carbon Nanotube Composites for Broadband Microwave Absorbing Materials[J].IEEE Transactions on Microwave Theory and Techniques,2006(6):2745-2754.
[2] DECROSSAS E;MAHMOUD A;SABBAGH EL.Broadband characterization of carbon nanotube networks[A].Fort Lauderdale,2010:208-211.
[3] QIAO Y J;CAO M S;ZHANG L.Investigation on Potential Microwave Absorbability of Polyester-composites Filled with Carbon Nanotubes[A].Zhuhai,2006:1331-1334.
[4] Watts PCP.;Ponnampalam DR.;Hsu WK.;Barnes A.;Chambers B. .The complex permittivity of multi-walled carbon nanotube-polystyrene composite films in X-band[J].Chemical Physics Letters,2003(5-6):609-614.
[5] C. A. Grimes;E. C. Dickey;C. Mungle;K. G. Ong;D. Qian .Effect of purification of the electrical conductivity and complex permittivity of multiwall carbon nanotubes[J].Journal of Applied Physics,2001(8):4134-4137.
[6] 张增富,罗国华,范壮军,项荣,周丽,魏飞.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(03):296-300.
[7] Wei-li Song;Mao-sheng Cao;Zhi-ling Hou .High-temperature microwave absorption and evolutionary behavior of multiwalled carbon nanotube nanocomposite[J].Scripta materialia,2009(2):201-204.
[8] 吕瑞涛,康飞宇,韦进全,顾家琳,王昆林,吴德海.填充α-Fe碳纳米管的电磁性能研究[J].无机材料学报,2008(01):23-28.
[9] Xuchun Gui;Kunlin Wang;Anyuan Cao;Jinquan Wei;Ruitao Lv;Feiyu Kang;Qinke Shu;Yi Jia;Dehai Wu .Selective Microwave Absorption of Iron-Rich Carbon Nanotube Composites[J].Journal of nanoscience and nanotechnology,2010(3):1808-1813.
[10] DRESSELHAUS M S;JORIO A;SOUZA F A G et al.Defect characterization in graphene and carbon nanotubes using Raman spectroscopy philosophical[J].Transactions of The Royal Society (A):Mathematical Physical & Engineering Sciences,2010,368:5355-5377.
[11] FERRARI A C;ROBERTSON J .Interpretation of Raman spectra of disordered and amorphous carbon[J].Physical Review (B),2000,61(20):14095-14107.
[12] LI FQ;ZUO J;LU B et al.The raman scatting of carbon nanotubes[J].Spectroscopy and Spectral Analysis,1997,17(06):7-9.
[13] P. Delhaes;M. Couzi;M. Trinquecoste .A comparison between Raman spectroscopy and surface characterizations of multiwall carbon nanotubes[J].Carbon: An International Journal Sponsored by the American Carbon Society,2006(14):3005-3013.
[14] FITZER E;MUELLER K;SCHAEFER W;WALKER P L.In Chemistry and Physics of Carbon:Vol 7[M].New York,USA:Marcel Dekker,Inc,1971:237-383.
[15] Yokomichi H .Changes in electron spin resonance spectra of carbon nanotubes by thermal annealing[J].Vacuum: Technology Applications & Ion Physics: The International Journal & Abstracting Service for Vacuum Science & Technology,2004(3/4):677-681.
[16] OCHIAI Y;ENOMOTO R;ISHII S et al.Thermal annealing effect in multi-wall carbon nanotubes[J].Physica B,2002,323(1/2/3/4):256-258.
[17] Kim YA.;Hayashi T.;Osawa K.;Dresselhaus MS.;Endo M. .Annealing effect on disordered multi-wall carbon nanotubes[J].Chemical Physics Letters,2003(3-4):319-324.
[18] Pimenta MA;Dresselhaus G;Dresselhaus MS;Cancado LG;Jorio A;Saito R .Studying disorder in graphite-based systems by Raman spectroscopy[J].Physical chemistry chemical physics: PCCP,2007(11):1276-1291.
[19] LI Y;CHEN C X;PAN X Y et al.Multiband microwave absorption films based on defective multiwalled carbon nanotubes added carbonyliron/acrylic resin[J].Physica (B):Condensed Matter,2009,404(8/9/10/11):1343-1346.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%