合成时间对火焰法制备碳纳米管的影响及其生长机理研究

翟刚, 郭永红, 孙亚萍, 吴楚瑜, 贾小伟, 孙保民

化工新型材料 ›› 2020, Vol. 48 ›› Issue (1) : 135 -139.

PDF (10194KB)
化工新型材料 ›› 2020, Vol. 48 ›› Issue (1) : 135-139.
科学研究

合成时间对火焰法制备碳纳米管的影响及其生长机理研究

    翟刚, 郭永红, 孙亚萍, 吴楚瑜, 贾小伟, 孙保民
作者信息 +

Influence of synthesis time on the preparation of CNTs by flame method and its growth mechanism

  • Zhai Gang, Guo Yonghong, Sun Yaping, Wu Chuyu, Jia Xiaowei, Sun Baomin
Author information +
文章历史 +
PDF (10437K)

摘要

以Fe/Mo/Al2O3为催化剂,采用火焰法制备了碳纳米管,研究了合成时间对碳纳米管生长的影响及碳纳米管的生长机理。通过冷场发射扫描电子显微镜、能量色散谱仪、拉曼光谱仪、碳产率对催化剂和碳纳米管进行了详细观察和分析,结果表明经过氢气还原后催化剂分布更加均匀且颗粒明显变小,催化剂表面更加粗糙且检测到的铁元素含量明显增加,这说明氢气的还原作用对催化剂有重要的改变,对碳纳米管的合成也起到至关重要的作用。合成时间较短时,碳纳米管管簇较少且碳纳米管的长度较短、质量较差,大多数催化剂表面有毛绒状物质生成,说明碳纳米管的生长机理符合“溶解-扩散-析出”模式。合成时间延长到5~6min时,碳纳米管管簇的长度和密度均明显增加,而且合成的碳纳米管中杂质也明显减少。当合成时间超过7min后,虽然碳纳米管管簇的密度和产量有所上升,但是碳纳米管中因合成时间过长团聚的催化剂杂质变多,合成时间为5~6min可以得到产量和质量均较高的碳纳米管。

Abstract

The catalyst of the experiment was Fe/Mo/Al2O3,the carbon nanotubes were synthesized by flame method.The influence of synthesis time on the growth of CNTs and the growth mechanism were emphatically discussed.Through the detailed observation and analysis of SEM,EDS,carbon yield and Raman,the results shown that the catalyst distribution was more uniform and the particle size was obviously smaller after reduction.The surface of the catalyst was rougher and the detected iron content was significantly increased,this indicated that the reduction of hydrogen had an important effect on the catalyst and played an important role in the synthesis of CNTs.When the synthesis time was relatively short,the tube clusters were less and the length and quality of CNTs were poor most catalysts had plush substances on the surface,indicating that the growth mechanism of CNTs was in accordance with the “dissolution-diffusion-precipitation” model.The length and density of CNTs increased significantly when the synthesis time increased to 5 to 6 minutes,and the impurities in the synthesized CNTs decreased obviously.When the synthesis time was more than 7 minutes,the density and yield of the tube cluster still increased,however,there were more impurities in the CNTs due to the agglomeration of catalysts resulted from excessive synthesis time.Therefore,the synthesis time should not be too short and too long,CNTs with better yield and quality can be synthesized when the synthesis time was kept for 5 to 6 mintues.

关键词

碳纳米管 / 合成时间 / 生长机理 / 催化剂

Key words

carbon nanotube / synthesis time / growth mechanism / catalyst

引用本文

引用格式 ▾
合成时间对火焰法制备碳纳米管的影响及其生长机理研究[J]. 化工新型材料, 2020, 48(1): 135-139 DOI:

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Iijima S,Ichihashi T.Single-shell carbon nanotubes of 1nm diameter[J].Nature,1993,363(6430):603-605.
[2] Zhou O,Shimoda H,Gao B,et al.Materials science of carbon nanotubes:fabrication,integration,and properties of macroscopic structures of carbon nanotubes[J].Accounts of Chemical Research,2002,35(12):1045-1053.
[3] Kong J,Franklin N R,Zhou C,et al.Nanotube molecular wires as chemical sensors[J].Science,2000,287(5453):622-625.
[4] De J N,Lamy Y,Schoots K,et al.High brightness electron beam from a multi-walled carbon nanotube[J].Nature,2002,420(6914):393-395.
[5] Chen X H,Wang J F,Lin M,et al.Mechanical and thermal properties of epoxy nanocomposites reinforced with amino-functionalized multi-walled carbon nanotubes[J].Materials Science and Engineering A,2008,492(1/2):236-242.
[6] Baughman R H,Zakhidov A A,Heer W A D.Carbon nanotubes the route toward applications[J].Science,2002,297(5582):787-792.
[7] 刘远超,孙保民,赵惠富,等.V型热解火焰合成碳纳米管的影响因素研究与分析[J].人工晶体学报,2009,38(6):1506-1510.
[8] Wal R L V.Flame synthesis of substrate-supported metal-catalyzed carbon nanotubes[J].Chemical Physics Letters,2000,324(1):217-223.
[9] Sun B,Cao W,Guo Y,et al.Flame pyrolysis synthesis of self-oriented carbon nanotubes[J].AIP Advance,2013,3(9):92102.
[10] Guo Y H,Zhai Gang Z,Yu R,et al.Effect of different catalyst preparation methods on the synthesis of carbon nanotubes with the flame pyrolysis method[J].AIP Advances,2018,8(3):35111.
[11] 丁开翔,孙保民,郭永红,等.催化剂焙烧温度和乙炔焰温度对火焰法催化裂解乙烯制备碳纳米管的影响[J].人工晶体学报,2016,45(1):41-46.
[12] Iijima S,Ajayan P M,Ichihashi T.Growth model of carbon nanotubes[J].Physical Revoew Letters,1992,69(21):3100-3106.
[13] Kong Jing,Alan M,Cassell,et al.Chemical vapor deposition of methane for single-walled carbon nanotubes[J].Chemical Physics Letters,1998,292(4/5/6):567-574.
[14] Dai Hongjie,Andrew G R,Pasha Nikolaev,et al.Single-wall nanotubes produced by metal catalyzed disproportionation of carbon monoxide[J].Chemical Physics Letters,1996,260(3/4):471-475.
[15] Kukovitsky E F,L'vov S G,Sainov N A.VLS-growth of carbon nanotubes from the vapor[J].Chemical Letters,2000,317(1/2):65-70.
[16] Harutyunyan A R,Pradhan B K,Kim U J,et al.CVD synthesis of single wall carbon nanotubes under “Soft” conditions[J].Nano Letters,2002,2(5):431-433.
[17] Zhang H,Cao G,Wang Z,et al.Influence of ethylene and hydrogen flow rates on the wall number,crystallinity,and length of millimeter-long carbon nanotube array[J].J Phys Chem C,2008,112(33):12706-12709.
[18] Wasel W,Kuwana K,Reilly P T A,et al.Experimental characterization of the role of hydrogen in CVD synthesis of MWCNTs[J].Carbon,2007,45(4):833-838.
[19] Yadav R M,Dobal P S,Shripathi T,et al.Effect of growth temperature on bamboo-shaped carbon-nitrogen (C—N) nanotubes synthesized using ferrocene acetonitrile precursor[J].Nanoscale Research Letters,2008,4(3):197-203.

基金资助

中央高校基本科研业务费专项资金项目(2018QN045)

AI Summary AI Mindmap
PDF (10194KB)

634

访问

0

被引

导航
相关文章

AI思维导图

/