781 - 801 |
Hydrogen storage by carbon materials Strobel R, Garche J, Moseley PT, Jorissen L, Wolf G |
802 - 809 |
Electroreduction of oxygen at polyoxometallate-modified glassy carbon-supported Pt nanoparticles Wlodarczyk R, Chojak M, Miecnikowski K, Kolary A, Kulesza PJ, Marassi R |
810 - 816 |
Analysis of membraneless fuel cell using laminar flow in a Y-shaped microchannel Chang MH, Chen F, Fang NS |
817 - 823 |
Performance of a poly(2,5-benzimidazole) membrane based high temperature PEM fuel cell in the presence of carbon monoxide Krishnan P, Park JS, Kim CS |
824 - 835 |
Parameters estimation of a PEM fuel cell polarization curve and analysis of their behavior with temperature Santarelli MG, Torchio MF, Cochis P |
836 - 845 |
The effect of fuel feeding method on performance of SOFC-PEFC system Yokoo M, Watanabe K, Arakawa M, Yamazaki Y |
846 - 854 |
Chitosan-poly(vinyl pyrrolidone) blends as membranes for direct methanol fuel cell applications Smitha B, Sridhar S, Khan AA |
855 - 860 |
Dissociation and hydrolysis of ammonia-borane with solid acids and carbon dioxide: An efficient hydrogen generation system Chandra M, Xu Q |
861 - 868 |
Transport mechanisms and voltage losses in PEMFC membranes and at electrodes: A discussion of open-circuit irreversibility Arato E, Costa P |
869 - 877 |
Preparation and characterization of supported Pt-Ru catalysts with a high Ru content dos Santos L, Colmati F, Gonzalez ER |
878 - 884 |
Electron-beam reduction method for preparing electrocatalytic particles for membrane electrode assemblies (MEA) Pai YH, Huang HF, Chang YC, Chou CC, Shieu FS |
885 - 890 |
Feasibility of Ni-based cermet anode for direct HCSOFCs: Fueling ethane at a low S/C condition to Ni-ScSZ anode-supported cell Yamaji K, Kishimoto H, Xiong YP, Horita T, Sakai N, Brito ME, Yokokawa H |
891 - 893 |
Proton conducting plastic crystal electrolytes based on pivalic acid Abu-Lebdeh Y, Abouimrane A, Alarco PJ, Dividson I, Armand M |
894 - 899 |
A nanocomposite proton exchange membrane based on PVDF, poly(2-acrylamido-2-methyl propylene sulfonic acid), and nano-Al2O3 for direct methanol fuel cells Shen J, Xi JY, Zhu WT, Chen LQ, Qiu XP |
900 - 904 |
Investigation of Pt-Fe catalysts for oxygen reduction in low temperature direct methanol fuel cells Baglio V, Arico AS, Stassi A, D'Urso C, Di Blasi A, Luna AMC, Antonucci V |
905 - 913 |
Model based PEM fuel cell state-of-health monitoring via ac impedance measurements Fouquet N, Doulet C, Nouillant C, Dauphin-Tanguy G, Ould-Bouamama B |
914 - 921 |
Fuel cell studies of perovskite-type materials for IT-SOFC Pena-Martinez J, Marrero-Lopez D, Ruiz-Morales JC, Buergler BE, Nunez P, Gauckler LJ |
922 - 927 |
Effect of gas diffusion layer compression on PEM fuel cell performance Ge JB, Higier A, Liu HT |
928 - 942 |
Transient analysis for the cathode gas diffusion layer of PEM fuel cells Song DT, Wang QP, Liu ZS, Huang C |
943 - 950 |
Analysis and modeling of PEM fuel cell stack performance: Effect of in situ reverse water gas shift reaction and oxygen bleeding Karimi G, Li XG |
951 - 955 |
An integrated composite membrane electrode assembly (ICMEA) and its application in small H-2/air fuel cells Wan NF, Wang G |
956 - 967 |
Reduced-order transient thermal modeling for SOFC heating and cooling Damm DL, Fedorov AG |
968 - 978 |
Operation of polymer electrolyte membrane fuel cells with dry feeds: Design and operating strategies Hogarth WHJ, Benziger JB |
979 - 986 |
Operation of PEM fuel cells at 120-150 degrees C to improve CO tolerance Xu H, Song Y, Kunz HR, Fenton JM |
987 - 994 |
In situ simultaneous measurements of temperature and water partial pressure in a PEM fuel cell under steady state and dynamic cycling Basu S, Renfro MW, Gorgun H, Cetegen BM |
995 - 1004 |
Removal of sulphur-containing odorants from fuel gases for fuel cell-based combined heat and power applications de Wild PJ, Nyqvist RG, de Bruijn FA, Stobbe ER |
1005 - 1014 |
Development of carbon-filled gas diffusion layer for polymer electrolyte fuel cells Han M, Chan SH, Jiang SP |
1015 - 1024 |
Nanocomposite membranes of surface-sulfonated titanate and Nafion (R) for direct methanol fuel cells Rhee CH, Kim Y, Lee JS, Kim HK, Chang H |
1025 - 1033 |
Transient analysis of multicomponent transport with carbon monoxide poisoning effect of a PEM fuel cell Wang CP, Chu HS |
1034 - 1041 |
Link-up of a bench-scale "shift-less" gasoline fuel processor to a polymer electrolyte fuel cell Bosco M, Hajbolouri F, Truong TB, De Boni E, Vogel F, Scherer GG |
1042 - 1047 |
Development of a small DMFC bipolar plate stack for portable applications Chen CY, Shiu JY, Lee YS |
1048 - 1050 |
Screen-printed thin YSZ films used as electrolytes for solid oxide fuel cells Ge XD, Huang XQ, Zhang YH, Lu Z, Xu JH, Chen KF, Dong DW, Liu ZG, Miao JP, Su WH |
1051 - 1060 |
An approximate analytical solution to channel flow in a fuel cell with a draft angle Sung YJ |
1061 - 1070 |
Enhanced water removal in a fuel cell stack by droplet atomization using structural and acoustic excitation Palan V, Shepard WS |
1071 - 1077 |
Transient behavior of CO poisoning of the anode catalyst layer of a PEM fuel cell Chu HS, Wang CP, Liao WC, Yan WM |
1078 - 1083 |
Performance of an aluminate cement/graphite conductive composite bipolar plate Shen CH, Mu P, Wu QO, Yuan RZ |
1084 - 1088 |
New borohydride fuel cell with multiwalled carbon nanotubes as anode: A step towards increasing the power output Deshmukh K, Santhanam KSV |
1089 - 1094 |
A study on cathode structure and water transport in air-breathing PEM fuel cells Jeong SU, Cho EA, Kim HJ, Lim TH, Oh IH, Kim SH |
1095 - 1104 |
TOPSIS multiple-criteria decision support analysis for material selection of metallic bipolar plates for polymer electrolyte fuel cell Shanian A, Savadogo O |
1105 - 1114 |
Semi-empirical model to elucidate the effect of methanol crossover on direct methanol fuel cell Tu HC, Wang YY, Wan CC, Hsueh KL |
1115 - 1122 |
Contact resistance prediction and structure optimization of bipolar plates Zhou P, Wu CW, Ma GJ |
1123 - 1141 |
Modeling non-isothermal two-phase multicomponent flow in the cathode of PEM fuel cells Acosta M, Merten C, Eigenberger G, Class H, Helmig R, Thoben B, Muller-Steinhagen H |
1142 - 1146 |
Experimental results with a natural gas cogeneration system using a polymer exchange membrane fuel cell Radulescu M, Lottin O, Feidt M, Lombard C, Le Noc D, Le Doze S |
1147 - 1152 |
The effect of a ceria coating on the H2S tolerance of a molten carbonate fuel cell Devianto H, Yoon SP, Nam SW, Han J, Lim TH |
1153 - 1157 |
Local thermal non-equilibrium effects in porous electrodes of the hydrogen-fueled SOFC Damm DL, Fedorov AG |
1158 - 1161 |
Anode-supported solid oxide fuel cell based on dense electrolyte membrane fabricated by filter-coating Xin XS, Lu Z, Huang XQ, Sha XQ, Zhang YH, Su WH |
1162 - 1168 |
A strategy of estimating fuel concentration in a direct liquid-feed fuel cell system Chiu YJ, Lien HC |
1169 - 1185 |
Single-level optimization of a hybrid SOFC-GT power plant Calise F, d'Accadia MD, Vanoli L, von Spakovsky MR |
1186 - 1193 |
Economic and environmental comparison of conventional, hybrid, electric and hydrogen fuel cell vehicles Granovskii M, Dincer I, Rosen MA |
1194 - 1204 |
Synthesis and optimization of a PEM fuel cell system via reactor-separation network (RSN) Kamarudin SK, Daud WRW, Som AM, Takriff MS, Mohammad AW |
1205 - 1213 |
A fuel cell city bus with three drivetrain configurations Wang JP, Chen Y, Chen QS |
1214 - 1230 |
Energy utilization and efficiency analysis for hydrogen fuel cell vehicles Moore RM, Hauer KH, Ramaswamy S, Cunningham JM |
1231 - 1240 |
Designing a gradual transition to a hydrogen economy in Spain Brey JJ, Brey R, Carazo AF, Contreras I, Hernandez-Diaz AG, Gallardo V |
1241 - 1247 |
US DOE fossil energy fuel cells program Williams MC, Strakey J, Sudoval W |
1248 - 1257 |
Hydrogen production for fuel cells by autothermal reforming of methane over sulfide nickel catalyst on a gamma alumina support Hoang DL, Chan SH, Ding OL |
1258 - 1265 |
Determination of photo conversion efficiency of nanotubular titanium oxide photo-electrochemical cell for solar hydrogen generation Raja KS, Mahajan VK, Misra M |
1266 - 1273 |
Study of Ce-Pt/gamma-Al2O3 for the selective oxidation of CO in H-2 for application to PEFCs: Effect of gases Son IH |
1274 - 1282 |
Determination of the boundary of carbon formation for dry reforming of methane in a solid oxide fuel cell Assabumrungrat S, Laosiripojana N, Piroonlerkgul P |
1283 - 1290 |
Autothermal reforming study of diesel for fuel cell application Kang I, Bae J |
1291 - 1295 |
Composite Ni-Ba(Zr0.1Ce0.7Y0.2)O-3 membrane for hydrogen separation Zuo CD, Lee TH, Dorris SE, Balachandran U, Liu ML |
1296 - 1299 |
Hydrogen production by steam reforming of methanol in a micro-channel reactor coated with Cu/ZnO/ZrO2/Al2O3 catalyst Jeong H, Kim KI, Kim TH, Ko CH, Park HC, Song IK |
1300 - 1304 |
A composite visible-light photocatalyst for hydrogen production Liu YL, Guo LJ, Yan W, Liu HT |
1305 - 1309 |
A novel composite photocatalyst for water splitting hydrogen production Yang HH, Guo LJ, Yan W, Liu HT |
1310 - 1315 |
Synthesis, structural and electrochemical properties of pulsed laser deposited Li(Ni,Co)O-2 films Ramana CV, Zaghib K, Julien CM |
1316 - 1321 |
Nanofiller incorporated poly(vinylidene fluoride-hexafluoropropylene) (PVdF-HFP) composite electrolytes for lithium batteries Stephan AM, Nahm KS, Kumar TP, Kulandainathan MA, Ravi G, Wilson J |
1322 - 1327 |
Preparation and characterization of layered LiMn1/3Ni1/3Co1/3O2 as a cathode material by an oxalate co-precipitation method Cho TH, Shiosaki Y, Noguchi H |
1328 - 1333 |
Synthesis and electrochemical properties of Li[Ni0.8Co0.1Mn0.1]O-2 and Li[Ni0.8Co0.2]O-2 via co-precipitation Kim MH, Shin HS, Shin D, Sun YK |
1334 - 1339 |
Electrochemical properties of ZrO2-coated LiNi0.8Co0.2O2 cathode materials Lee SM, Oh SH, Ahn JP, Cho WI, Jang H |
1340 - 1345 |
Low temperature performance of nanophase Li4Ti5O12 Allen JL, Jow TR, Wolfenstine J |
1346 - 1352 |
Influence of nickel content on the chemical bonding character of LiMn2-xNixO4 spinel oxides Park DH, Lim ST, Hwang SJ, Choy JH, Choi JH, Choo J |
1353 - 1359 |
The preparation and electrochemical performance of solid solutions LiCoO2-Li2MnO3 as cathode materials for lithium ion batteries Sun Y, Shiosaki Y, Xia Y, Noguchi H |
1360 - 1364 |
Electrochemical performance behavior of combustion-synthesized LiNi0.5Mn0.5O2 lithium-intercalation cathodes Periasamy P, Kalaiselvi N |
1365 - 1369 |
Lithiated manganese oxide Li0.33MnO2 as an electrode material for lithium batteries Julien CM, Banov B, Momchilov A, Zaghib K |
1370 - 1376 |
Effect of chitosan on stabilization of acetates-containing solution: A novel precursor for LiMn2O4 film deposition Shih FY, Fung KZ |
1377 - 1382 |
The improved physical and electrochemical performance of LiNi0.35Co0.3-xCrxMn0.35O2 cathode materials by the Cr doping for lithium ion batteries Sun YC, Xia YG, Noguchi H |
1383 - 1388 |
Electrochemical properties of the carbon-coated LiFePO4 as a cathode material for lithium-ion secondary batteries Shin HC, Cho WI, Jang H |
1389 - 1394 |
EPR studies of Li deintercalation from LiCoMnO4 spinel-type electrode active material Zhecheva E, Stoyanova R, Alcantara R, Lavela P, Tirado JL |
1395 - 1400 |
Synthesis and characterization of LiFeO2 and LiFe0.9Co0.1O2 as cathode materials for Li-ion cells Suresh P, Shukla AK, Munichandraiah N |
1401 - 1404 |
The role and impact of rubber in poly(methyl methacrylate)/lithium triflate electrolyte Latif F, Aziz M, Katun N, Ali AM, Yahya MZ |
1405 - 1408 |
Low temperature synthesis and electrochemical behavior of LiV3O8 cathode Kannan AM, Manthiram A |
1409 - 1415 |
Effects of substrate morphology and ageing on cycle performance of a Sn-anode fabricated by electroplating Park JW, Rajendran S, Kwon HS |
1416 - 1421 |
Characterization of a LiCoO2 thick film by screen-printing for a lithium ion micro-battery Park MS, Hyun SH, Nam SC |
1422 - 1427 |
Li diffusion in LiCoO2 thin films prepared by pulsed laser deposition Xia H, Lu L, Ceder G |
1428 - 1439 |
The impedance characteristics of Mars Exploration Rover Li-ion batteries Ratnakumar BV, Smart MC, Whitcanack LD, Ewell RC |
1440 - 1449 |
Optimization of electrode paste composition and structure for improving energy and life characteristics of active materials for lead batteries Kamenev Y |
1450 - 1457 |
A new polymer electrolyte system (PEO)(n): NaPO3 Bhide A, Hariharan K |
1458 - 1463 |
Electrochemical properties of amorphous and icosahedral quasicrystalline Ti45Zr35Ni17Cu3 powders Liu BZ, Wu YM, Wang LM |
1464 - 1467 |
Electrochemical characteristics of new electric double layer capacitor with acidic polymer hydrogel electrolyte Wada H, Yoshikawa K, Nohara S, Furukawa N, Inoue H, Sugoh N, Iwasaki H, Iwakura C |
1468 - 1473 |
Improved rechargeability of manganese oxide cathodes in alkaline cells in the presence of TiB2 and TiS2 Raghuveer V, Manthiram A |
1474 - 1477 |
Novel electrochemical behavior of zinc anodes in zinc/air batteries in the presence of additives Lee CW, Sathiyanarayanan K, Eom SW, Kim HS, Yun MS |
1478 - 1483 |
Effect of long-term overcharge and operated temperature on performance of rechargeable NiMH cells Hu WK, Geng MM, Gao XP, Burchardt T, Gong ZX, Noreus D, Nakstad NK |
1484 - 1487 |
Battery open-circuit voltage estimation by a method of statistical analysis Snihir I, Rey W, Verbitskiy E, Belfadhel-Ayeb A, Notten PHL |
1488 - 1493 |
Sulfur dioxide leaching of spent zinc-carbon-battery scrap Avraamides J, Senanayake G, Clegg R |
1494 - 1509 |
Energy scavenging for small-scale unmanned systems Thomas JP, Qidwai MA, Kellogg JC |
1510 - 1518 |
Analysis of a hydrometallurgical route to recover base metals from spent rechargeable batteries by liquid-liquid extraction with Cyanex 272 Mantuano DP, Dorella G, Elias RCA, Mansur MB |
1519 - 1526 |
Polyaniline-based nickel electrodes for electrochemical supercapacitors - Influence of Triton X-100 Girija TC, Sangaranarayanan MV |
1527 - 1531 |
Electrochemical capacitance of nanocomposite films formed by loading carbon nanotubes with ruthenium oxide Lee JK, Pathan HM, Jung KD, Joo OS |
1532 - 1542 |
The capacitive characteristics of activated carbons - comparisons of the activation methods on the pore structure and effects of the pore structure and electrolyte on the capacitive performance Wu FC, Tseng RL, Hu CC, Wang CC |