[1] |
Satyapal S, Petrovic J, Read C, Thomas G, Ordaz G.The U.S.Department of Energy's National Hydrogen Storage Project:Progress towards meeting hydrogen-powered vehicle requirements[J].Catal.Today, 2007, 120:246
|
[2] |
Dillon A C, Heben M J.Hydrogen storage using carbon adsorbents:past, present and future[J].Appl.Phys.A, 2001, 72(2):133
|
[3] |
Stadie N P, Vajo J J, Cumberland R W, Wilson A A, Ahn C C, Fultz B.Zeolite-templated carbon materials for high-pressure hydrogen storage[J].Langmuir, 2012, 28(26):10057
|
[4] |
Li Shang(李赏), Mao Zongqiang(毛宗强), Pan Wenyu(潘文钰), Zhang Xianfeng(张先锋).Comparative study of hydrogen storage properties of double-walled carbon nanotubes and well-aligned carbon nanotubes[J].Journal of Chemical Industry and Engineering(China)(化工学报), 2004, 55:191
|
[5] |
Rowsell J L C, Yaghi O M.Strategies for hydrogen storage in metal-organic frameworks[J].Angew.Chem., Int. Ed., 2005, 44:4670
|
[6] |
Psofogiannakis G M, Froudakis G E.DFT study of hydrogen storage by spillover on graphite with oxygen surface groups[J].J.Am.Chem.Soc., 2009, 131(42):15133
|
[7] |
Lin K-Y, Tsai W-T, Yang T J.Effect of Ni nanoparticle distribution on hydrogen uptake in carbon nanotubes[J].J.Power Sources, 2011, 196(7):3389
|
[8] |
Zhao D, Yuan D, Zhou H-C.The current status of hydrogen storage in metal-organic frameworks[J].Energy Environ. Sci., 2008, 1:222
|
[9] |
Wang L F, Yang R T.New sorbents for hydrogen storage by hydrogen spillover—a review[J].Energy Environ. Sci., 2008, 1:268
|
[10] |
Murray L J, Dinca M, Long J R.Hydrogen storage in metal-organic frameworks[J].Chem.Soc.Rev., 2009, 38:1294
|
[11] |
Wang L F, Yang R T.Hydrogen storage properties of carbons doped with ruthenium, platinum, and nickel nanoparticles[J].J.Phys.Chem.C, 2008, 112:12486
|
[12] |
Wang L F, Yang R T.Molecular hydrogen and spillover hydrogen storage on high surface area carbon sorbents[J].Carbon, 2012, 50:3134
|
[13] |
Nakamura I, Negishi N, Kutsuna S.Role of oxygen vacancy in the plasma-treated TiO2 photocatalyst with visible light activity for NO removal[J].Mol.Catal.A:Chem., 2000, 161:205
|
[14] |
Tang X L, Li K, Yi H H, Niu P, Xiang Y, Wang J G, Wang C.MnOx catalysts modified by nonthermal plasma for NO catalytic oxidation[J].J.Phys.Chem.C, 2012, 116(18):10017
|
[15] |
Liu X Y, Mou C Y, Lee S, Li Y N, Secrest J, Jang B W L.Room temperature O-2 plasma treatment of SiO2 supported Au catalysts for selective hydrogenation of acetylene in the presence of large excess of ethylene[J].J.Catal., 2012, 285(1):152
|
[16] |
Li Yan(李艳), Liu Changjun(刘昌俊).Effects of DBD plasma on morphological control of Cu(NO3)2·3H2O crystallization from aqueous solution[J].CIESC Journal(化工学报), 2010, 61(10):2754
|
[17] |
Zou J J, Liu C J, Zhang Y P.Control of the metal-support interface of NiO-loaded photocatalysts via cold plasma treatment[J].Langmuir, 2006, 20:2334
|
[18] |
Xie Y B, Wei Z H, Liu C J.Morphologic evolution of Au nanocrystals grown in ionic liquid by plasma reduction[J].J.Colloid.Interf.Sci., 2012, 40:374
|
[19] |
Wang Z J, Xie Y B, Liu C J.Synthesis and characterization of noble metal(Pd, Pt, Au, Ag)nanostructured materials confined in the channels of mesoporous SBA-15[J].J.Phys.Chem.C, 2008, 112(50):19818
|
[20] |
Lachawiec A J, DiRaimondo T R, Yang R T.A robust volumetric apparatus and method for measuring high pressure hydrogen storage properties of nanostructured materials[J].Rev.Sci.Instrum., 2008, 79:063906
|
[21] |
Benson J E, Boudart M J.Hydrogen-oxygen titration method for the measurement of supported platinum surface areas[J].J.Catal., 1965, 4:704
|
[22] |
Wang Z, Yang F H, Yang R T.Enhanced hydrogen spillover on carbon surfaces modified by oxygen plasma[J].J.Phys.Chem.C, 2010, 114(3):1601
|
[23] |
Lueking A D, Yang R T.Hydrogen spillover to enhance hydrogen storage—study of the effect of carbon physicochemical properties[J].Appl.Catal.A-Gen., 2004, 265(2):259
|
[24] |
Wang Z, Yang R T.Enhanced hydrogen storage on Pt-doped carbon by plasma reduction[J].J.Phys.Chem.C, 2010, 114(13):5956
|