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  1. NTU Theses and Dissertations Repository
  2. 工學院
  3. 機械工程學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/39476
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor張所鋐
dc.contributor.authorYi-Shin Tsaien
dc.contributor.author蔡逸信zh_TW
dc.date.accessioned2021-06-13T17:29:27Z-
dc.date.available2016-08-23
dc.date.copyright2011-08-23
dc.date.issued2011
dc.date.submitted2011-08-20
dc.identifier.citation1. S. Iijima, “Helical microtubules of graphitic carbon.” Nature, 354(6348): p.p. 56-58 (1999).
2. H. Hou, Z. Jun, F. Weller, and A. Greiner,“Large-scale synthesis andcharacterization of helically coiled carbon nanotubes by use of Fe(CO)5 as floatingcatalyst precursor,” Chem. Mater., 15, 3170 (2003).
3. W. R. Davis, R. J. Slawson, and G. R. Rigby,“An unusual form of carbon,” Nature,171, 756 (1953).
4. D. Li, et al.,“ Highly efficient synthesis of carbon nanocoils by catalyst particles prepared by a sol–gel method,”Carbon,170-175,48 (2010 ).
5. R. Kanada, L. Pan, S. Akita, N. Okazaki, K. Hirahara, and Y. Nakayama, “Synthesis of multiwalled carbon nanocoils using codeposited thin film of Fe–Sn as catalyst,” Jpn. J. Appl. Phys. 1949. 47 (2008)
6. V. K Varadan, J. Xie, “Synthesis of carbon nanocoils by microwave CVD,” Smart Mater. Struct. 728–734, 11 (2002).
7. S. Motojima, M. Kawaguchi, K. Nozaki, and H. Iwanaga, “Growth of regularly coiled carbon filaments by Ni catalyzed pyrolysis of acetylene, and their morphology and extension characteristics,” Appl. Phys. Lett. 56 (1990) 321.
8. S. Motojima, Q Chen,“ Three-dimensional growth mechanism of cosmo-mimetic carbon microcoils obtained by chemical vapor deposition,” J. Appl. Phys. 85 (1999) 3919.
9. S. Yang , X. Chen, S. Motojima, M. Ichihara ,“ Morphology and microstructure of spring-like carbon micro-coils/nano-coils prepared by catalytic pyrolysis of acetylene using Fe-containing alloy catalysts,” Carbon 43 (2005) 827.
10. M. Zhang, Y. Nakayama, L. Pan, “Synthesis of carbon tubule nanocoils in high yield using iron-coated indium tin oxide as catalyst”, Jpn. J. Appl. Phys. 39(2000)1242.
11. N. Okazaki, S. Hosokawa, T. Goto, Y. Nakayama,“ Synthesis of carbon tubule nanocoils using Fe-In-Sn-O fine particles as catalysts,” J. Phys. Chem. B 109 (2005) 17366.
12. N. K. Chang, B. C. Wei, S. H. Chang, “Growth of carbon nanocoils from Fe/Sn deposited by electron beam evaporation,” Taiwan-Tohoku Joint International Symposium for Mechanical Science Based on Nanotechnology, Taipei, Taiwan, pp.39-40, Dec. 7, 2007. (Oral: NK)
13. Y. Kajuhara, T. Hihara, K. Sumiyama and S. Motojima,” Electrical resistivity of carbon micro coil measured by a multi-probe unit installed in a scanning electron microscope”, Japanese Journal of Applied Physics Vol. 44, No. 9A, 2005, pp. 6867–6869.
14. Y. Kato, N. Adachi, T. Okuda, T. Yoshida, S. Motojima and T. Tsuda,” Evaluation of induced electromotive force of a carbon micro coil”, Jpn. J. Appl. Phys. Vol. 42 (2003) pp. 5035–5037 Part 1, No. 8, August 2003.
15. K. Yamamotoa, T. Hirayamab, M. Kusunokib, S. Yang, S. Motojima, “ Electron holographic observation of micro-magnetic fields current-generated from single carbon coil,” Ultramicroscopy 106 (2006) 314.
16. X. Chen, S. Zhang, Dmitriy. A. Dikin, W. Ding, Rodney S. Ruoff, L. Pan , Y. Nakayama,” Mechanics of a carbon nanocoil”, Nano Letters (2003) Vol.3 No. 9 1299-1304.
17. Alexandre F. da Fonseca, Douglas S. Galva,” Mechanical properties of nanosprings”, Physical Review Letters Vol.92 No.17 30 April 2004.
18. Y. Kato, T. Kojima, H. Miwa, T. Tsuda, T. Yoshida, S. Motojima, “ Expanding and contracting motions of carbon micro-coils induced by alternating current,” Jpn. J. Appl. Phys. 45(2006) 2695.
19. S. Motojima, X. Chen, S. Yang, M. Hasegawa, “Properties and potential applications of carbon microcoils/nanocoils” Diamond & Related Materials 13 (2004) 1989–1992.
20. N. J. Tang, Y. Yang, K. J. Lin, W. Zhong, C. T. Au, and Youwei Du ”Synthesis of Plait-Like Carbon Nanocoils in Ultrahigh Yield, and Their Microwave Absorption Properties” J. Phys. Chem. C 2008, 112, 10061–10067.
21. N. J. Tang, W. Zhong, C. T. Au, Y. Yang, M. G. Han, K. J. Lin, and Y. W. Du “Synthesis, microwave electromagnetic, and microwave absorption properties of twin carbon nanocoils” J. Phys. Chem. C 2008, 112, 19316–19323.
22. S. Motojima, Y. Noda, and S. Hoshiya “Electromagnetic wave absorption property of carbon microcoils in 12–110 GHz region” JOURNAL OF APPLIED PHYSICS VOLUME 94, NUMBER 4.
23. S. Motojima, S. Hoshiya, Y. Hishikawa “Electromagnetic wave absorption properties of carbon microcoils /PMMA composite beads in W bands” Letters to the Editor Carbon 41 (2003) 2653 –2689.
24. D. L. Zhao, Z. M. Shen,“Preparation and microwave absorption properties of carbon nanocoils,” Materials Letters 62 (2008) 3704–3706.
25. 郭銀景, “電磁兼容原理及應用教程”, 清華大學出版社, 2004.
26. C. H. Chien, C.H.chang “ Carbon nanocoils for electromagnetic wave absorption Study” N. T. U. (2010).
27. X. Chen and S. Motojima, “The growth patterns and morphologies of carbon micro-coils produced by chemical vapor deposition,” Carbon, 37, 1817 (1999).
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/39476-
dc.description.abstract本論文主要是針對奈米螺旋碳管在不同基板上的成長,對其電性的量測方面的應用做相關的研究與討論。本論文改良以往的成長技術,不同於以往在矽晶片上成長奈米螺旋碳管,在此論文中準備了銅網、不鏽鋼網、鋁箔、銅箔以及棉布和紙當作成長的基板,利用鐵與錫二元素組成的催化劑塗抹在不同基板上,藉由單段高溫爐之化學氣相沉積法成長奈米螺旋碳管,成功地在低價的基板上大量成長的奈米螺旋碳管。接著將已成長完的試片利用護貝膠膜直接包覆起來製成量測薄片,探討在相同濃度的催化劑下對不同基板上成長奈米螺旋碳管,量測並觀察其電磁波吸收率之影響。
其測量的電磁波範圍主要在18~75 GHz,發現在成長過後的試片對電磁波阻隔有明顯之提升。此外,為了量測出奈米螺旋碳管在低頻率(1~18 GHz)下對電磁波吸收之影響,特別製作了以紙當成長基板成長奈米螺旋碳管的電磁波吸收試片,成功的量測出電磁波吸收率達到-30 dB (吸收率超過99.9 %),此外,若當試片疊加至三層時,電磁波吸收效果可達到-49 dB(26 GHz)。
zh_TW
dc.description.abstractThe study focuses on the growth of carbon nanocoils on different substrates and the results of its electrical measurement. Refining the traditional growing method, it grows carbon nanocoils on the silicon chip. The study provides various substrates ranging from copper grid, stainless steel meshes, Al foil, Cu foil, cotton and papers. It coats catalyst which composed of Fe and Sn on those various substrates. Then, the researcher grows carbon nanocoils with single_zone temperature CVD. With the refined method, a great amount of carbon nanocoils grows on the low-cost substrates. Finally, in order to measuring electromagnetic wave absorption, the specimen is covered with laminating film. It aims at probing the influence of electromagnetic wave absorption on the same catalytic concentration with different substrates.
The measuring electromagnetic waves mainly range from 18 GHz to75 GHz. The study finds out that the shield of grown specimen has significantly improved to electromagnetic waves. In addition, in order to measure the electromagnetic wave absorption in low frequency (1~18 GHz) affected by carbon nanocoils, the study particularly use paper as substrate. The result shows the electromagnetic wave absorption of paper substrate reaches -30 dB (absorption rate 99.9 %). Furthermore, it can reach -49 dB (26 GHz) by tripling the layers of the specimen.
en
dc.description.provenanceMade available in DSpace on 2021-06-13T17:29:27Z (GMT). No. of bitstreams: 1
ntu-100-R98522624-1.pdf: 21833186 bytes, checksum: f2102b7e4a13874b98b5205aa3ee00e9 (MD5)
Previous issue date: 2011
en
dc.description.tableofcontents致 謝 i
摘 要 ii
Abstract iii
目錄 iv
圖目錄 vi
表目錄 x
第1章 緒論 1
1.1 前言 1
1.2 研究動機 2
第2章 文獻回顧 5
2.1 螺旋碳管的備製 5
2.2 奈米螺旋碳管的性質介紹 11
2.3 奈米碳螺旋線圈之電磁波吸收性質 16
2.3.1 奈米螺旋碳管在電磁波吸收之應用 16
2.3.2 電磁波吸收材料之吸收技術與原理[25] 24
第3章 量測試片設計與製程及設備 28
3.1 電磁波屏蔽奈米複合材料試片設計 28
3.2 溶液式催化劑成長奈米螺旋碳管的流程與設備 32
3.3 電磁波量測試片製作流程 41
3.4 電磁波實驗量測裝置 46
第4章 實驗結果與分析 49
4.1 不同基板上成長結果 49
4.2 螺旋碳管之外型與尺寸分析 72
4.3 量測不同基板成長奈米螺旋碳管對電磁波吸收率之比較 83
第5章 結論與未來展望 97
5.1 結論 97
5.2 未來展望 99
參考文獻 100
dc.language.isozh-TW
dc.subject棉布zh_TW
dc.subject大量成長zh_TW
dc.subject化學氣相沉積法zh_TW
dc.subject紙zh_TW
dc.subject高吸收率zh_TW
dc.subject奈米螺旋碳管zh_TW
dc.subjectcottonen
dc.subjecthigh absorptionen
dc.subjectmassive growthen
dc.subjectchemical vapor depositionen
dc.subjectcarbon nanocoilsen
dc.subjectpaperen
dc.title不同基板上成長奈米螺旋碳管對於電磁波吸收性質之研究zh_TW
dc.titleElectromagnetic Wave Absorption of Carbon Nanocoils Grown on Different Substrate Studyen
dc.typeThesis
dc.date.schoolyear99-2
dc.description.degree碩士
dc.contributor.oralexamcommittee張家歐,黃榮堂,蔡曜陽
dc.subject.keyword奈米螺旋碳管,棉布,紙,化學氣相沉積法,大量成長,高吸收率,zh_TW
dc.subject.keywordcarbon nanocoils,cotton,paper,chemical vapor deposition,massive growth,high absorption,en
dc.relation.page102
dc.rights.note有償授權
dc.date.accepted2011-08-20
dc.contributor.author-college工學院zh_TW
dc.contributor.author-dept機械工程學研究所zh_TW
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