1 - 21 |
A transient PEMFC model with CO poisoning and mitigation by O-2 bleeding and Ru-containing catalyst Shah AA, Sui PC, Kim GS, Ye S |
22 - 29 |
Electrical conductivity of cobalt doped La0.8Sr0.2Ga0.8Mg0.2O3-delta Wang SZ, Wu LL, Liang Y |
30 - 34 |
Performance of sputter-deposited platinum cathodes with Nation and carbon loading for direct methanol fuel cells Makino K, Furukawa K, Kajima K, Sudoh M |
35 - 40 |
Preparation and characterization of strontium and magnesium doped lanthanum gallates as the electrolyte for IT-SOFC Lee D, Han JH, Chun Y, Song RH, Shin DR |
41 - 46 |
Porosity-graded micro-porous layers for polymer electrolyte membrane fuel cells Tang HL, Wang SL, Pan M, Yuan RZ |
47 - 52 |
Synthesis and properties of Y-doped SrTiO3 as an anode material for SOFCs Li X, Zhao HL, Shen W, Gao F, Huang XL, Li Y, Zhu ZM |
53 - 58 |
Performance of proton-exchange membrane fuel cells using the catalyst-gradient electrode technique Prasanna M, Cho EA, Kim HJ, Oh IH, Lim TH, Hong SA |
59 - 63 |
The solubility of Ni in molten Li2O3-Na2CO3 (52/48) in H-2/H2O/CO2 atmosphere Boden A, Yoshikawa M, Lindbergh G |
64 - 67 |
Nucleation of nanometer-scale electrocatalyst particles in solid oxide fuel cell anodes Madsen BD, Kobsiriphat W, Wang Y, Marks LD, Barnett SA |
68 - 73 |
Effect of an oxygen plasma treatment on the specific surface of platinum electrodeposits for fuel cells Massoni N, Beaumont-Martinent A, Laurent JY |
74 - 79 |
Visible-light-induced hydrogen production over Pt-Eosin Y catalysts with high surface area silica gel as matrix Zhang XJ, Jin ZL, Li YX, Li SB, Lu GX |
80 - 86 |
Electrodeposition of nickel nanoparticles on functional MWCNT surfaces for ethanol oxidation Jin GP, Ding YF, Zheng PP |
87 - 91 |
Electro-oxidation of methanol and ethanol using PtRu/C, PtSn/C and PtSnRu/C electrocatalysts prepared by an alcohol-reduction process Neto AO, Dias RR, Tusi MM, Linardi M, Spinace EV |
92 - 103 |
A computational model of a PEM fuel cell with finite vapor absorption rate Vorobev A, Zikanov O, Shamim T |
104 - 111 |
Use of cellulose-based carbon aerogels as catalyst support for PEM fuel cell electrodes: Electrochemical characterization Guilminot E, Fischer F, Chatenet M, Rigacci A, Berthon-Fabry S, Achard P, Chainet E |
112 - 119 |
Application of infrared thermal imaging to the study of pellet solid oxide fuel cells Brett DJL, Aguiar P, Clague R, Marquis AJ, Schottl S, Simpson R, Brandon NP |
120 - 126 |
A direct-flame solid oxide fuel cell (DFFC) operated on methane, propane, and butane Kronemayer H, Barzan D, Horiuchi M, Suganuma S, Tokutake Y, Schulz C, Bessler WG |
127 - 136 |
Hydrogen production through steam electrolysis: Model-based steady state performance of a cathode-supported intermediate temperature solid oxide electrolysis cell Udagawa J, Aguiar P, Brandon NP |
137 - 142 |
Passive air management for cylindrical cartridge fuel cells Yazici MS |
143 - 148 |
Micro-hotplates - A platform for micro-solid oxide fuel cells Beckel D, Briand D, Bieberle-Hutter A, Courbat J, de Rooij NF, Gauckler LJ |
149 - 154 |
Effect of clamping pressure on the performance of a PEM fuel cell Chang WR, Hwang JJ, Weng FB, Chan SH |
155 - 164 |
Performance characteristics of a solid oxide fuel cell/gas turbine hybrid system with various part-load control modes Yang JS, Sohn JL, Ro ST |
165 - 171 |
Operation results of a 100 kW class reformer for molten carbonate fuel cell Seo HK, Eom YC, Kim YC, Lee SD, Gu JH |
172 - 176 |
The effect of ambient contamination on PEMFC performance Jing FN, Hou M, Shi WY, Fu J, Yu HM, Ming PW, Yi BL |
177 - 193 |
Key issues in the microchemical systems-based methanol fuel processor: Energy density, thermal integration, and heat loss mechanisms Shah K, Besser RS |
194 - 201 |
Transport in packed-bed and wall-coated steam-methanol reformers Lee MT, Greif R, Grigoropoulos CP, Park HG, Hsu FK |
202 - 210 |
PEGDA/PVdF/F127 gel type polymer electrolyte membranes for lithium secondary batteries Wang YJ, Kim D |
211 - 218 |
Effect of mechanical activation process parameters on the properties of LiFePO4 cathode material Kim JK, Cheruvally G, Choi JW, Kim JU, Ahn JH, Cho GB, Kim KW, Ahn HJ |
219 - 225 |
An alternative method to improve the electrochemical performance of a lithium secondary battery with LiMn2O4 Bin Park S, Lee SM, Shin HC, Il Cho W, Jang H |
226 - 232 |
New composite polymer electrolyte comprising mesoporous lithium aluminate nanosheets and PEO/LiClO4 Hu LF, Tang ZL, Zhang ZT |
233 - 238 |
Effect of CO2 on layered Li1+zNi1-x-yCoxMyO2 (M =Al, Mn) cathode materials for lithium ion batteries Shizuka K, Kiyohara C, Shima K, Takeda Y |
239 - 243 |
Particle size dependence of the lithium storage capability and high rate performance of nanocrystalline anatase TiO2 electrode Jiang CH, Wei MD, Qi ZM, Kudo T, Honma I, Zhou HS |
244 - 249 |
Cathodic performance of (V2O5+PEG) nanobelts for Li ion rechargeable battery Reddy CVS, Wei J, Quan-Yao Z, Zhi-Rong D, Wen C, Mho S, Kalluru RR |
250 - 254 |
Effect of carbon coating on electrochemical performance of hard carbons as anode materials for lithium-ion batteries Lee JH, Lee HY, Oh SM, Lee SJ, Lee KY, Lee SM |
255 - 259 |
High-density spherical Li4Ti5O12/C anode material with good rate capability for lithium ion batteries Gao J, Ying JR, Jiang CY, Wan CR |
260 - 265 |
Simple and fast synthesis of LiFePO4-C composite for lithium rechargeable batteries by ball-milling and microwave heating Song MS, Kang YM, Kim JH, Kim HS, Kim DY, Kwon HS, Lee JY |
266 - 272 |
Simulation of capacity loss in carbon electrode for lithium-ion cells during storage Ramasamy RP, Lee JW, Popov BN |
273 - 283 |
Reserve, thin form-factor, hypochlorite-based cells for powering portable systems: Manufacture (including MEMS processes), performance and characterization Cardenas-Valencia AM, Biver CJ, Langebrake L |
284 - 296 |
Coordinated discharge of a collection of batteries Sastry S, Gimdogmus O, Hartley TT, Veillette RJ |
297 - 301 |
Supercapacitive properties of polyaniline/Nafion/hydrous RuO2 composite electrodes Song RY, Park JH, Sivakkumar SR, Kim SH, Ko JM, Park DY, Jo SM, Kim DY |