The effect of MWNTs with different diameters on the electrochemical hydrogen storage capability

被引:31
作者
Zhang, HY [1 ]
Fu, XJ [1 ]
Yin, JF [1 ]
Zhou, C [1 ]
Chen, YM [1 ]
Li, MH [1 ]
Wei, AX [1 ]
机构
[1] Guangdong Univ Technol, Fac Mat & Energy, Guangzhou 510643, Peoples R China
基金
中国国家自然科学基金;
关键词
multi-walled carbon nanotubes (MWNTs); electrochemical hydrogen storage; LaNi5 alloy catalyst; chemical vapor deposition (CVD);
D O I
10.1016/j.physleta.2005.03.013
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The difference in electrochemical hydrogen storage of pure multi-walled carbon nanotubes (MWNTs) with different diameters of 10-20 nm, 10-30 nm, 20-40 nm, 40-60 nm and 60-100 nm were investigated. The MWNTs were synthesized by chemical vapor deposition (CVD) using LaNi5 alloy particles as catalyst and were treated in vacuum at 600 degrees C. Three-electrode system was introduced. The CNTs-Ni electrodes were used as the working electrode, which were prepared by mixing carbon nanotubes (CNTs) and Ni powder in a weight ratio of I : 9 and compressing the mixture into porous nickel collector. Ni(OH)(2)/NiOOH worked as the counter electrode and Hg/HgO as the reference electrode. 6 mol/L KOH solution acted as the electrolyte. Results showed that MWNTs with different diameters represented a great discrepancy in the electrochemical hydrogen storage capability under the same testing condition. 10-30 nm CNTs has the best electrochemical hydrogen storage capacity with a highest capacity of 480.6 mAh/g and a corresponding discharging plateau voltage of 0.95 V, which were gained at 200 cycle with 200 mA/g charge/discharge current density. However, 60-100 nm CNTs has the lowest capacity of 298.3 mAh/g under the same testing condition. This shows that the tube diameter of CNTs is an important factor that influences its electrochemical hydrogen storage performance. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:370 / 377
页数:8
相关论文
共 18 条
[1]   Catalyst traces and other impurities in chemically purified carbon nanotubes grown by CVD [J].
Biró, LP ;
Khanh, NQ ;
Vértesy, Z ;
Horváth, ZE ;
Osváth, Z ;
Koós, A ;
Gyulai, J ;
Kocsonya, A ;
Kónya, Z ;
Zhang, XB ;
Van Tendeloo, G ;
Fonseca, A ;
Nagy, JB .
MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 2002, 19 (1-2) :9-13
[2]   Hydrogen storage in graphite nanofibers [J].
Chambers, A ;
Park, C ;
Baker, RTK ;
Rodriguez, NM .
JOURNAL OF PHYSICAL CHEMISTRY B, 1998, 102 (22) :4253-4256
[3]   High H2 uptake by alkali-doped carbon nanotubes under ambient pressure and moderate temperatures [J].
Chen, P ;
Wu, X ;
Lin, J ;
Tan, KL .
SCIENCE, 1999, 285 (5424) :91-93
[4]   Electrochemical hydrogen storage behavior of ropes of aligned single-walled carbon nanotubes [J].
Dai, GP ;
Liu, C ;
Liu, M ;
Wang, MZ ;
Cheng, HM .
NANO LETTERS, 2002, 2 (05) :503-506
[5]   High adsorptive property of opened carbon nanotubes at 77 K [J].
Darkrim, F ;
Levesque, D .
JOURNAL OF PHYSICAL CHEMISTRY B, 2000, 104 (29) :6773-6776
[6]   Storage of hydrogen in single-walled carbon nanotubes [J].
Dillon, AC ;
Jones, KM ;
Bekkedahl, TA ;
Kiang, CH ;
Bethune, DS ;
Heben, MJ .
NATURE, 1997, 386 (6623) :377-379
[7]   Reactivity of different kinds of carbon during oxidative purification of catalytically prepared carbon nanotubes [J].
Hernadi, K ;
Siska, A ;
Thiên-Nga, L ;
Forró, L ;
Kiricsi, I .
SOLID STATE IONICS, 2001, 141 :203-209
[8]   HELICAL MICROTUBULES OF GRAPHITIC CARBON [J].
IIJIMA, S .
NATURE, 1991, 354 (6348) :56-58
[9]  
Kibria AKMF, 2001, INT J HYDROGEN ENERG, V26, P823, DOI 10.1016/S0360-3199(01)00007-6
[10]   Hydrogen storage in single-walled carbon nanotubes at room temperature [J].
Liu, C ;
Fan, YY ;
Liu, M ;
Cong, HT ;
Cheng, HM ;
Dresselhaus, MS .
SCIENCE, 1999, 286 (5442) :1127-1129