Effect of graphitization on the wettability and electrical conductivity of CVD-carbon nanotubes and films

被引:176
作者
Mattia, D.
Rossi, M. P.
Kim, B. M.
Korneva, G.
Bau, H. H.
Gogotsi, Y.
机构
[1] Drexel Univ, Dept Mat Sci & Engn, Philadelphia, PA 19104 USA
[2] Drexel Univ, AJ Drexel Nanotechnol Inst, Philadelphia, PA 19104 USA
[3] Univ Penn, Dept Mech Engn & Appl Mech, Philadelphia, PA 19104 USA
关键词
D O I
10.1021/jp061138s
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
The use of carbon nanomaterials in various applications requires precise control of their surface and bulk properties. In this paper, we present a strategy for modifying the surface chemistry, wettability, and electrical conductivity of carbon tubes and films through annealing in a vacuum. Experiments were conducted with 60-300 nm nanotubes ( nanopipes), produced by noncatalytic chemical vapor deposition (CVD) in a porous alumina template, and with thin films deposited by the same technique on a glassy carbon substrate having the same structure and chemistry of the CNTs. The surface of the as-produced CVD-carbon, treated with sodium hydroxide to remove the alumina template, is hydrophilic, and the bulk electrical conductivity is lower by a factor of 20 than that of fully graphitic multiwalled nanotubes (MWNT) or bulk graphite. The bulk electrical conductivity increases to the conductivity of graphite after annealing at 2000 C in a high vacuum. The analysis of CNTs by transmission electron microscopy (TEM) and Raman spectroscopy shows the ordering of carbon accompanied by an exponential increase of the in-plane crystallite size, L-a, with increasing annealing temperature. Environmental scanning electron microscopy (ESEM) was used to study the interaction of CNT with water, and contact angle measurements performed using the sessile drop method on CVD-carbon films demonstrate that the contact angle increases nearly linearly with increasing annealing temperature.
引用
收藏
页码:9850 / 9855
页数:6
相关论文
共 39 条
[1]   Purification and structural annealing of multiwalled carbon nanotubes at graphitization temperatures [J].
Andrews, R ;
Jacques, D ;
Qian, D ;
Dickey, EC .
CARBON, 2001, 39 (11) :1681-1687
[2]   Guiding water into carbon nanopipes with the aid of bipolar electrochemistry [J].
Babu, S ;
Ndungu, P ;
Bradley, JC ;
Rossi, MP ;
Gogotsi, Y .
MICROFLUIDICS AND NANOFLUIDICS, 2005, 1 (03) :284-288
[3]   Static and dynamic wetting measurements of single carbon nanotubes [J].
Barber, AH ;
Cohen, SR ;
Wagner, HD .
PHYSICAL REVIEW LETTERS, 2004, 92 (18) :186103-1
[4]   NON-METAL-METAL TRANSITION IN A NON-CRYSTALLINE CARBON [J].
CARMONA, F ;
DELHAES, P ;
KERYER, G ;
MANCEAU, JP .
SOLID STATE COMMUNICATIONS, 1974, 14 (11) :1183-1187
[5]   Chemical vapor deposition based synthesis of carbon nanotubes and nanofibers using a template method [J].
Che, G ;
Lakshmi, BB ;
Martin, CR ;
Fisher, ER ;
Ruoff, RS .
CHEMISTRY OF MATERIALS, 1998, 10 (01) :260-267
[6]   Current saturation and electrical breakdown in multiwalled carbon nanotubes [J].
Collins, PG ;
Hersam, M ;
Arnold, M ;
Martel, R ;
Avouris, P .
PHYSICAL REVIEW LETTERS, 2001, 86 (14) :3128-3131
[7]   Annealing of template nanotubes to well-graphitized multi-walled carbon nanotubes [J].
Delpeux-Ouldriane, S ;
Szostak, K ;
Frackowiak, E ;
Béguin, F .
CARBON, 2006, 44 (04) :814-818
[8]   Polarity switching and transient responses in single nanotube nanofluidic transistors [J].
Fan, R ;
Yue, M ;
Karnik, R ;
Majumdar, A ;
Yang, PD .
PHYSICAL REVIEW LETTERS, 2005, 95 (08)
[9]   Interpretation of Raman spectra of disordered and amorphous carbon [J].
Ferrari, AC ;
Robertson, J .
PHYSICAL REVIEW B, 2000, 61 (20) :14095-14107
[10]   The state of monolayers adsorbed at the interface solid-aqueous solution [J].
Fowkes, FM ;
Harkins, WD .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1940, 62 :3377-3386