中文
Announcement
More
Progress in Chemistry 2003, Vol. 15 Issue (05): 345-   Next Articles

• Review •

A Brief Review on the Study of Hydrogen Storage in Terms of Carbon Nanotubes

Zhou Yaping;Feng Kui;Sun Yan;Zhou Li**   

  1. (Department of Chemistry, School of Science, Tianjin University, Tianjin 300072, China; High Pressure Adsorption Laboratory, School of Chemical Engineering, Tianjin University, Tianjin 300072, China)
  • Received: Revised: Online: Published:
  • Contact: Zhou Li
PDF ( 2850 ) Cited
Export

EndNote

Ris

BibTeX

Carbon nanotubes have attracted the attention of the whole world past years since it was once claimed to be the exclusive candidate carrier of hydrogen for the hydrogen vehicle. However, The reports on hydrogen uptake of the materials are quite controversial. In this review, the results of experiments as well as simulation studies were briefly reviewed, and the possibility of hydrogen storage relying on carbon nanotubes was discussed.

CLC Number: 

[ 1 ] 侯建国(Hou J G) , 俞英(Yu Y) , 潘惠芳(Pan H F). 太阳能学报(Acta Energiae Solaris Sinica) , 2002, 23 ( 5 ) :655—659
[ 2 ] 金宁(J in N ) , 制冷空调与电力机械(Refrigeration Air Conditioning & Electric Power Mech inery) , 2001, ( 3) :18—22
[ 3 ] 陈进富(Chen J F) , 蔡卫权(Cai W Q ) , 俞英(Yu Y). 太阳能学报(Acta Energiae Solaris Sinica) , 2002, 23 (4) : 528—532
[ 4 ] Iijima S. N ature, 1991, 354: 56—58
[ 5 ] D illon A C, Heben M J. App l. Phys. A , 2001, 72: 133—142
[ 6 ] Darkrim F L , Malbrunot P, Tartaglia G P. Int. J.Hydrogen Energy, 2002, 27: 193—202
[ 7 ] Zhu H W , Xu C L , Wu D H, et al. Science, 2002, 296(3) : 884—886
[ 8 ] Dillon A C, Jones K M , Bekkedahl T A , et al. Nature,1997, 386 (27) : 377—379
[ 9 ] Dillon A C, Bekkedah l T A , Jones K M , et al.Fullerenes, 1999, 3: 716
[ 10 ] Dillon A C, Gennet T, A lleman J L , et al. Proceedings of the US DOE Hydrogen Program Review, 2000
[ 11 ] Ye Y, A hn C C, Witham C, et al. App l. Phys. Lett. ,1999, 74: 2307—2309
[ 12 ] Pradham B K, Sumanasekera G U , A du K W , et al.Physica B, 2002, 323: 115—121
[ 13 ] Liu C, Fan Y Y, Liu M , et al. Science, 1999, 286 (5) :1127—1129
[ 14 ] Züttel A , Nützenadel C, Sudan P, et al. J. A lloys &Compounds, 2002, 330?332: 676—682
[ 15 ] Zhu H W , Chen A , M ao Z. J. M aterials Science Letters,2000, 19: 1237—1239
[ 16 ] Li X S, Zhu H W , Ci L J , et al. Chinese Science Bulletin,2001, 46 (16) : 1358—1360
[ 17 ] Huang W Z, Zhang X B, Tu J P, et al. Materials Chem.Phys. , 2002, 78: 144—148
[ 18 ] Zhu H W , Cao A Y, Li X S, et al. App l. Surf. Sci. ,2001, 178: 50—55
[ 19 ] Wang Q K, Zhu C C, Liu W H, et al. Int. J. Hydrogen Energy, 2002, 27: 497—500
[ 20 ] Chambers A , Park C, Baker R T K, et al. J. Phy. Chem.B, 1998, 102 (22) : 4254—4256
[ 21 ] Fan Y Y, Liao B, L iu M , et al. Carbon, 1999, 37:1649—1652
[ 22 ] 毛宗强(Mao Z Q ) , 徐才录(Xu C L ) , 闫军(Yan J ) 等. 新型碳材料(New Carbon Materials) , 2000, 15 (1) : 64—67
[ 23 ] Lee S M , Lee Y H. App l. Phys. L ett. , 2000, 76 (20) :2877—2879
[ 24 ] Darkrim F, Pierre M. 12th Wo rld Hydrogen Energy Conf. , 1998, Vo l. 3, 2263—2270
[ 25 ] Darkrim F, Levesque D. J. Chem. Phys. , 1998, 109(12) : 4981—4984
[ 26 ] Darkrim F, Levesque D. J. Phys. Chem. B, 2000, 104(29) : 6773—6776
[ 27 ] Züttel A , Sudan P, M auron P, et al. Int. J. Hydrogen Energy, 2002, 27: 203—212
[ 28 ] Tibbetts G G, M eisner C P, O lk C H. Carbon, 2001, 39:2291—2301
[ 29 ] Chen P, W u X, L in J , et al. Science, 1999, 285: 91—93
[ 30 ] Yang R T. Carbon, 2000, 38: 623—641
[ 31 ] Wu X B, Chen P, Lin J , et al. Int. J. Hydrogen Energy,2000, 25: 261—265
[ 32 ] Rzepka M , Lamp P, dela Casa-Lillo M A. J. Phys.Chem. B, 1998, 102: 10894—10898
[ 33 ] Zhou Y P, Zhou L. Science China (Series B) , 1996, 39(6) : 598—607
[ 34 ] Hirscher M , Becher M , Haluska M , et al. J. Alloys & Compounds, 2002, 330/332: 654—658
[ 35 ] Awasth i K, Kamalakaran R, Singh A K, et al. Int. J.Hydrogen Energy, 2002, 27: 425—432
[ 36 ] Gordon P A , Saeger R B. Ind. Eng. Chem. Res. , 1999,38: 4647—4655
[ 37 ] Hynek S, Fuller W , Bentley J. Int. J. Hydrogen Energy,1997, 22: 601—610
[ 38 ] Simonyan V V , Diep P, Johnson J K. J. Chem. Phys. ,1999, 111 (21) : 9778—9783
[ 39 ] Wang Q Y, Johnson J K. J. Chem. Phys. , 1999, 110(1) : 577—586
[ 40 ] Zhou L , Zhou Y P, Sun Y. Int. J. Hydrogen Energy ( in p ress)
[ 41 ] Zhou L. Adsorption: Theory, Modeling & Analysis(ed. To th. J ). New York: Marcel Dekker, Inc. , 2002.211—250
[ 42 ] Zhou L , Sun Y, Feng K, Zhou Y P. P roceedings of the 1st European Hydrogen Energy Conference, Grenoble,F rance, 2003
[ 43 ] Zhou L , Zhou Y P, L i M , et al. L angmuir, 2000, 16(14) : 5955—5959
[ 44 ] Zhou L. P roceedings of Hydrogen Power Theo retical and Engineering Solutions International Symposium. Porto Conte, Italy, 2003
[ 45 ] Zhou L , Zhou Y P, Sun Y. A nnual meeting of A IChE.San F rancisco, U SA , 2003

[1] Zhao Ding, Weijie Yang, Kaifu Huo, Leon Shaw. Thermodynamics and Kinetics Tuning of LiBH4 for Hydrogen Storage [J]. Progress in Chemistry, 2021, 33(9): 1586-1597.
[2] Lei Wu, Lihui Liu, Shufen Chen. Flexible Organic Light-Emitting Diodes Using Carbon-Based Transparent Electrodes [J]. Progress in Chemistry, 2021, 33(5): 802-817.
[3] Tingting Gu, Jian Gu, Yu Zhang, Hua Ren. Metal Borohydride-Based System for Solid-State Hydrogen Storage [J]. Progress in Chemistry, 2020, 32(5): 665-686.
[4] Qilu Yao, Hongxia Du, Zhang-Hui Lu. Catalytic Hydrolysis of Ammonia Borane for Hydrogen Production [J]. Progress in Chemistry, 2020, 32(12): 1930-1951.
[5] Qi-Feng Zhou, Bo Jiang*, Hai-Bo Yang*. Design and Synthesis of Conjugated Aromatic Macrocyclic Rings That Can Serve as Carbon Nanotube Segments [J]. Progress in Chemistry, 2018, 30(5): 628-638.
[6] Shiliang Zhang, Qilu Yao, Zhanghui Lu*. Synthesis and Dehydrogenation of Hydrazine Borane [J]. Progress in Chemistry, 2017, 29(4): 426-434.
[7] Li Chao, Fan Meiqiang, Chen Haichao, Chen Da, Tian Guanglei, Shu Kangying. Thermodynamics and Kinetics Modifications on the Li-Mg-N-H Hydrogen Storage System [J]. Progress in Chemistry, 2016, 28(12): 1788-1797.
[8] Liu Xin, Wu Chuan, Wu Feng, Bai Ying. Light Metal Complex Hydride Hydrogen Storage Systems [J]. Progress in Chemistry, 2015, 27(9): 1167-1181.
[9] Wan Xiaomei, Zhang Chuan, Yu Dinghua, Huang He, Hu Yi. Enzyme Immobilized on Carbon Nanotubes [J]. Progress in Chemistry, 2015, 27(9): 1251-1259.
[10] Zhu Jin, Lou Zimo, Wang Zhuoxing, Xu Xinhua. Preparation of Iron and Manganese Oxides/Carbon Composite Materials for Arsenic Removal from Aqueous Solution [J]. Progress in Chemistry, 2014, 26(09): 1551-1561.
[11] Li Yuda, Wang Xunchang, Lv Renliang, Wang Feng. Non-Covalent Separation of Optically Active Single-Walled Carbon Nanotubes [J]. Progress in Chemistry, 2014, 26(08): 1361-1368.
[12] Li Jian, Guan Yibiao, Fu Kai, Su Yuefeng, Bao Liying, Wu Feng. Applications of Carbon Nanotubes and Graphene in the Energy Storage Batteries [J]. Progress in Chemistry, 2014, 26(07): 1233-1243.
[13] Xiao Hengyang, Di Feng, Che Jianfei, Xiao Yinghong. Surface Modification and Functionalization of Neural Electrodes [J]. Progress in Chemistry, 2013, 25(11): 1962-1972.
[14] Wang Zhen, Yu Bo*, Zhang Wenqiang, Chen Jing, Xu Jingming. Clean Fuel Production Through High Temperature Co-Electrolysis of H2O and CO2 [J]. Progress in Chemistry, 2013, 25(07): 1229-1236.
[15] Li Xue, Zhang Yifang, Qi Weihong, Cao Xiaowu, Wang Yuan, Li Haohua. Hydrogen Storage Nanoalloys [J]. Progress in Chemistry, 2013, 25(07): 1122-1130.