1 - 10 |
Alternative anode materials for solid oxide fuel cells Goodenough JB, Huang YH |
11 - 18 |
Theoretical means for searching bimetallic alloys as anode electrocatalysts for direct liquid-feed fuel cells Demirci UB |
19 - 27 |
Segmented cells as tool for development of fuel cells and error prevention/prediagnostic in fuel cell stacks Schulze M, Gulzow E, Schonbauer S, Knori T, Reissner R |
28 - 35 |
Organic-inorganic hybrid proton exchange membranes based on silicon-containing polyacrylate nanoparticles with phosphotungstic acid Cui XJ, Zhong SL, Wang HY |
36 - 44 |
Sol-gel derived sulfonated-silica/Nafion (R) composite membrane for direct methanol fuel cell Yen CY, Lee CH, Lin YF, Lin HL, Hsiao YH, Liao SH, Chuang CY, Ma CCM |
45 - 52 |
Synthesis of matrix-type NiO-SDC composite particles by spray pyrolysis with acid addition for development of SOFC cermet anode Kawano M, Yoshida H, Hashino K, Ijichi H, Suda S, Kawahara K, Inagaki T |
53 - 59 |
Analysis of palladium-based anode electrode using electrochemical impedance spectra in direct formic acid fuel cells Jung WS, Han JH, Ha S |
60 - 67 |
Advanced measurement techniques to characterize thermo-mechanical aspects of solid oxide fuel cells Malzbender J, Steinbrech RW |
68 - 76 |
Hybrid ion-exchange membranes for fuel cells and separation processes Fernandez-Carretero FJ, Compan V, Riande E |
77 - 85 |
Cathode electrocatalyst selection and deposition for a direct borohydride/hydrogen peroxide fuel cell Gu LF, Luo N, Miley GH |
86 - 95 |
Use of hydrogen-deuterium exchange for contrast in H-1 NMR microscopy investigations of an operating PEM fuel cell Feindel KW, Bergens SH, Wasylishen RE |
96 - 101 |
Electrodeposited Ni-Pt binary alloys as electrocatalysts for oxidation of ammonia Yao K, Cheng YF |
102 - 109 |
Performance of dimethoxymethane and trimethoxymethane in liquid-feed direct oxidation fuel cells Prakash GKS, Smart MC, Olah GA, Narayanan SR, Chun W, Surampudi S, Halpert G |
110 - 120 |
Metamorphosis of the mixed phase PtRu anode catalyst for direct methanol fuel cells after exposure of methanol: In situ and ex situ characterizations Chakraborty D, Chorkendoff I, Johannessen T |
121 - 129 |
Decoration of carbon-supported Pt catalysts with Sn to promote electro-oxidation of ethanol Li GC, Pickup PG |
130 - 136 |
Electrophoretic deposition on non-conducting substrates: The case of YSZ film on NiO-YSZ composite substrates for solid oxide fuel cell application Besra L, Compson C, Liu ML |
137 - 148 |
Visualisation of water droplets during the operation of PEM fuel cells Ous T, Arcoumanis C |
149 - 155 |
Operating characteristics of direct methanol fuel cell using a platinum-ruthenium catalyst supported on porous carbon prepared from mesophase pitch Nam K, Jung D, Kim SK, Peck D, Ryu S |
156 - 161 |
Development of glycerol/O-2 biofuel cell Arechederra RL, Treu BL, Minteer SD |
162 - 165 |
Surface-modified Nafion (R) membrane by casting proton-conducting polyelectrolyte complexes for direct methanol fuel cells Cui ZM, Li NW, Zhou XC, Liu CP, Liao JH, Zhang SB, Xing W |
166 - 171 |
Dimethoxymethane and trimethoxymethane as alternative fuels for fuel cells Chetty R, Scott K |
172 - 177 |
A graphite-granule membrane-less tubular air-cathode microbial fuel cell for power generation under continuously operational conditions You SJ, Zhao QL, Zhang JN, Jiang JQ, Wan CL, Du MA, Zhao SQ |
178 - 182 |
Simple synthesis of Pt nanoparticles on noncovalent functional MWNT surfaces: Application in ethanol electrocatalysis Gao GY, Yang GW, Xu MW, Wang C, Xu CL, Li HL |
183 - 188 |
Novel single-layer gas diffusion layer based on PTFE/carbon black composite for proton exchange membrane fuel cell Chen-Yang YW, Hung TF, Huang J, Yang FL |
189 - 193 |
Comparative study on the performance of a SDC-based SOFC fueled by ammonia and hydrogen Meng GY, Jiang CR, Ma JJ, Ma QL, Liu XQ |
194 - 199 |
Investigations into the ex situ methanol, ethanol and ethylene glycol permeabilities of alkaline polymer electrolyte membranes Varcoe JR, Slade RCT, Yee ELH, Poynton SD, Driscoll DJ |
200 - 209 |
Bio-ethanol, a suitable fuel to produce hydrogen for a molten carbonate fuel cell Frusteri F, Freni S |
210 - 221 |
Novel serpentine-baffle flow field design for proton exchange membrane fuel cells Xiao-Dong W, Yuan-Yuan D, Wei-Mon Y |
222 - 232 |
Channel and rib geometric scale effects of flowfield plates on the performance and transient thermal behavior of a micro-PEM fuel cell Hsieh SS, Chu KM |
233 - 239 |
Computational analysis of thermo-fluid and electrochemical characteristics of MOLB-type SOFC stacks Yang YZ, Wang GL, Zhang HO, Xia WS |
240 - 248 |
Simplified model for the direct methanol fuel cell anode Shivhare MR, Jackson CL, Scott K, Martin EB |
249 - 263 |
Flow distribution in the manifold of PEM fuel cell stack Chen CH, Jung SP, Yen SC |
264 - 276 |
Numerical studies on an air-breathing proton exchange membrane (PEM) fuel cell stack Zhang Y, Mawardi A, Pitchumani R |
277 - 290 |
Pore network modeling of fibrous gas diffusion layers for polymer electrolyte membrane fuel cells Gostick JI, Ioannidis MA, Fowler MW, Pritzker MD |
291 - 297 |
Reducibility of Ce1-xGdxO2-delta in prospective working conditions Perez-Coll D, Marrero-Lopez D, Ruiz-Morales JC, Nunez P, Abrantes JCC, Frade JR |
298 - 309 |
Model-based control of fuel cells (2): Optimal efficiency Golbert J, Lewin DR |
310 - 324 |
Development and experimental validation of a PEM fuel cell dynamic model del Real AJ, Arce A, Bordons C |
325 - 345 |
Thin films for micro solid oxide fuel cells Beckel D, Bieberle-Hutter A, Harvey A, Infortuna A, Muecke UP, Prestat M, Rupp JLM, Gauckler LJ |
346 - 356 |
AC impedance modelling study on porous electrodes of proton exchange membrane fuel cells using an agglomerate model Gerteisen D, Hakenjos A, Schumacher JO |
357 - 366 |
High temperature electrolyte supported Ni-GDC/YSZ/LSM SOFC operation on two-stage Viking gasifier product gas Hofmann P, Schweiger A, Fryda L, Panopoulos KD, Hohenwarter U, Bentzen JD, Ouweltjes JP, Ahrenfeldte J, Henriksen U, Kakaras E |
367 - 374 |
Concentration and ohmic losses in free-breathing PEMFC Matamoros L, Bruggemann D |
375 - 393 |
A two-dimensional steady state model including the effect of liquid water for a PEM fuel cell cathode Rao RM, Bhattacharyya D, Rengaswamy R, Choudhury SR |
394 - 403 |
Fabrication of high strength and a low weight composite bipolar plate for fuel cell applications Maheshwari PH, Mathur RB, Dhami TL |
404 - 414 |
Application of lattice Boltzmann method to a micro-scale flow simulation in the porous electrode of a PEM fuel cell Park J, Matsubara M, Li X |
415 - 419 |
Development of Ag-(BaO)(0.11)(Bi2O3)(0.89) composite cathodes for intermediate temperature solid oxide fuel cells Huang SG, Zong Z, Peng CQ |
420 - 423 |
Bifunctional activation of a direct methanol fuel cell Kulikovsky AA, Schmitz H, Wippermann K, Mergel J, Fricke B, Sanders T, Sauer DU |
424 - 436 |
A feasibility study on direct methanol fuel cells for laptop computers based on a cost comparison with lithium-ion batteries Wee JH |
437 - 449 |
Fuel ejector design and simulation model for anodic recirculation SOFC system Zhu YH, Cai WJ, Wen CY, Li YZ |
450 - 457 |
Catalytic hydrolysis of sodium borohydride by a novel nickel-cobalt-boride catalyst Ingersoll JC, Mani N, Thenmozhiyal JC, Muthaiah A |
458 - 466 |
A study of steam methanol reforming in a microreactor Suh JS, Lee MT, Greif R, Grigoropoulos CP |
467 - 477 |
Analysis of design variables for water-gas-shift reactors by model-based optimization Francesconi JA, Mussati MC, Aguirre PA |
478 - 486 |
Immobilization of CO2 by aqueous K2CO3 using microfibrous media entrapped small particulates for battery and fuel cell applications Sathitsuksanoh N, Yang HY, Cahela DR, Tatarchuk BJ |
487 - 494 |
Nanosized tin and tin oxides loaded expanded mesocarbon microbeads as negative electrode material for lithium-ion batteries Yang SB, Song HH, Chen XH |
495 - 501 |
Lithium recycling behaviour of nano-phase-CuCo2O4 as anode for lithium-ion batteries Sharma Y, Sharma N, Rao GVS, Chowdari BVR |
502 - 509 |
Effect of calcination temperature on morphology, crystallinity and electrochemical properties of nano-crystalline metal oxides (Co3O4, CuO, and NiO) prepared via ultrasonic spray pyrolysis Oh SW, Bang HJ, Bae YC, Sun YK |
510 - 517 |
Anodic behavior of Al current collector in 1-alkyl-3-methylimidazolium bis[(trifluoromethyl)sulfonyl] amide ionic liquid electrolytes Peng CX, Yang L, Zhang ZX, Tachibana KH, Yang Y |
518 - 521 |
Improvement of electrochemical characteristics of natural graphite negative electrode coated with polyacrylic acid in pure propylene carbonate electrolyte Ui K, Kikuchi S, Mikami F, Kadoma Y, Kumagai N |
522 - 530 |
Poly [dithio-2,5-(1,3,4-thiadiazole)] (PDMcT)-poly(3,4-ethylenedioxythiophene) (PEDOT) composite cathode for high-energy lithium/lithium-ion rechargeable batteries Kiya Y, Iwata A, Sarukawa T, Henderson JC, Abruna HD |
531 - 537 |
Spectroscopic and electrochemical characterization of the passive layer formed on lithium in gel polymer electrolytes containing propylene carbonate Cheng H, Zhu CB, Lu M, Yang Y |
538 - 544 |
Phase conversion and morphology evolution during hydrothermal preparation of orthorhombic LiMnO2 nanorods for lithium ion battery application Liu Q, Mao DL, Chang CK, Huang FQ |
545 - 549 |
LiFePO4-based electrode using micro-porous current collector for high power lithium ion battery Yao M, Okuno K, Iwaki T, Kato M, Tanase S, Emura K, Sakai T |
550 - 555 |
Synthesis and electrochemical properties of layered LiNi2/3Sb1/3O2 Ma XH, Kang KS, Ceder G, Meng YS |
556 - 561 |
Reaction mechanism and kinetics of lithium ion battery cathode material LiNiO2 with CO2 Liu HS, Yang Y, Zhang JJ |
562 - 564 |
Dimethyl methylphosphonate (DMMP) as an efficient flame retardant additive for the lithium-ion battery electrolytes Xiang HF, Xu HY, Wang ZZ, Chen CH |
565 - 569 |
Lead-acid cells with lightweight, corrosion-protected, flexible-graphite grids Hariprakash B, Gaffoor SA |
570 - 577 |
Low-cost synthesis and utilization in mini-tubular electrodes of nano PbO2 Bervas M, Perrin M, Genies S, Mattera F |
578 - 584 |
New ways to improve the performance of sealed batteries of high capacity Kamenev Y, Lushina M, Chunts N, Kiselevich A, Leonov V |
585 - 591 |
Effect of solvents in liquid electrolyte on the photovoltaic performance of dye-sensitized solar cells Wu JH, Lan Z, Lin JM, Huang ML, Li PJ |
592 - 598 |
Magnesium batteries: Towards a first use of graphite fluorides Giraudet J, Claves D, Guerin K, Dubois M, Houdayer A, Masin F, Hamwi A |
599 - 605 |
Solid state synthesis of hydrous ruthenium oxide for supercapacitors Liang YY, Li HL, Zhang XG |
606 - 612 |
Electrochemical capacitance of NiO/Ru0.35V0.65O2 asymmetric electrochemical capacitor Yuan CZ, Gao B, Zhang XG |
613 - 620 |
Preparation and characterization of Ppy/Al2O3/Al used as solid-state capacitors for microsystems - Effect of amount of electricity passed Tsai ML |
621 - 625 |
Structures and electrochemical performances of pyrolized carbons from graphite oxides for electric double-layer capacitor Kim IJ, Yang S, Jeon MJ, Moon SI, Kim HS, Lee YP, An KH, Lee YH |
626 - 632 |
Ageing behaviour of electrochemical double layer capacitors - Part II. Lifetime simulation model for dynamic applications Bohlen O, Kowal J, Sauer DU |
633 - 641 |
Long-term cycling behavior of asymmetric activated carbon/MnO2 aqueous electrochemical supercapacitor Brousse T, Taberna PL, Crosnier O, Dugas R, Guillemet P, Scudeller Y, Zhou Y, Favier F, Belanger D, Simon P |
642 - 643 |
Comment on "Fabrication methods for low-Pt-loading electrocatalysts in proton exchange membrane fuel cell systems" [J.-H. Wee, K.-Y. Lee, S.H. Kim, J. Power Sources 165 (2007) 667-677] Gruber D |
644 - 645 |
Comment on "Fabrication methods for low-Pt-loading electrocatalysts in proton exchange membrane fuel cell systems" [J.-H. Wee, K.-Y. Lee, S.H. Kim, J. Power Sources 165 (2007) 667-677] - Reply Wee JH |