1 - 7 |
Advanced carbon anode materials for lithium ion cells Azuma H, Imoto H, Yamada S, Sekai K |
8 - 12 |
Characterisation of the ambient and elevated temperature performance of a graphite electrode Andersson AM, Edstrom K, Thomas JO |
13 - 19 |
Lithium alloy negative electrodes Huggins RA |
20 - 26 |
Fluoroethylene carbonate electrolyte and its use in lithium ion batteries with graphite anodes McMillan R, Slegr H, Shu ZX, Wang WD |
27 - 32 |
Lithium silicon tin oxynitride (LiySiTON): high-performance anode in thin-film lithium-ion batteries for microelectronics Neudecker BJ, Zuhr RA, Bates JB |
33 - 38 |
Nanostructured tin for use as a negative electrode material in Li-ion batteries Whitehead AH, Elliott JM, Owen JR |
39 - 43 |
Enhancement of the electrochemical properties of Li1Mn2O4 through chemical substitution Amatucci GG, Pereira N, Zheng T, Plitz I, Tarascon JM |
44 - 48 |
Defect chemical aspects of lithium-ion battery cathodes Schoonman J, Tuller HL, Kelder EM |
49 - 53 |
Synthesis and reaction mechanism of 3 V LiMnO2 Nitta Y, Nagayama M, Miyake H, Ohta A |
54 - 59 |
An update on the high temperature ageing mechanism in LiMn2O4-based Li-ion cells du Pasquier A, Blyr A, Cressent A, Lenain C, Amatucci G, Tarascon JM |
60 - 66 |
Stabilization of insertion electrodes for lithium batteries Thackeray MM, Johnson CS, Kahaian AJ, Kepler KD, Vaughey JT, Shao-Horn Y, Hackney SA |
67 - 72 |
High-voltage lithium cathode materials Kawai H, Nagata M, Tukamoto H, West AR |
73 - 78 |
Jahn-Teller instability in spinel Li-Mn-O Yamada A, Tanaka M, Tanaka K, Sekai K |
79 - 84 |
Synthesis and electrochemical properties of numerous classes of vanadates Denis S, Baudrin E, Orsini F, Ouvrard G, Touboul M, Tarascon JM |
85 - 89 |
New electrode materials for lithium rechargeable batteries Garcia-Alvarado F, de Dompablo MEAY, Moran E, Gutierrez MT, Kuhn A, Varez A |
90 - 94 |
Solid-state redox potentials for Li[Me1/2Mn3/2]O-4 (Me : 3d-transition metal) having spinel-framework structures: a series of 5 volt materials for advanced lithium-ion batteries Ohzuku T, Takeda S, Iwanaga M |
95 - 111 |
New insights into the interactions between electrode materials and electrolyte solutions for advanced nonaqueous batteries Aurbach D, Markovsky B, Levi MD, Levi E, Schechter A, Moshkovich M, Cohen Y |
IX - IX |
Proceedings of the ninth International Meeting on Lithium Batteries - Edinburgh International Conference Centre -Edinburgh, Scotland, United Kingdom 12-17th July 1998 - Preface Bruce PG, Irvine JTS, Vincent CA |
112 - 118 |
Electrolytes for advanced batteries Blomgren GE |
119 - 122 |
Challenge in manufacturing electrolyte solutions for lithium and lithium ion batteries quality control and minimizing contamination level Heider U, Oesten R, Jungnitz M |
123 - 129 |
Anodic oxidation of nonaqueous electrolytes on cathode materials and current collectors for rechargeable lithium batteries Kanamura K |
130 - 136 |
Preferential solvation and free volume as interrelated features governing ion conduction in plasticised polyether electrolytes Labreche C, Prud'homme J |
137 - 139 |
Lithium batteries R&D activities in Europe Broussely M |
140 - 143 |
Recent developments on lithium ion batteries at SAFT Broussely M |
144 - 149 |
Present status and future prospect for national project on lithium batteries Kodama T, Sakaebe H |
150 - 155 |
R&D on lithium batteries in the USA: high-energy electrode materials Owens BB, Smyrl WH, Xu JJ |
156 - 161 |
Large-scale development of lithium batteries for electric vehicles and electric power storage applications Tamura K, Horiba T |
162 - 169 |
The advent of battery-based societies and the global environment in the 21st century Yoda S, Ishihara K |
170 - 175 |
Development of a carbon-based lithium microbattery Kinoshita K, Song X, Kim J, Inaba M |
176 - 181 |
Layered carbon lattices and their influence on the nature of lithium bonding in lithium intercalated carbon anodes Scanlon LG, Sandi G |
182 - 186 |
Characteristics of coke carbon modified with mesophase-pitch as a negative electrode for lithium ion batteries Sato Y, Kikuchi Y, Nakano T, Okuno G, Kobayakawa K, Kawai T, Yokoyama A |
187 - 191 |
Modifications of synthetic graphite for secondary lithium-ion battery applications Liu ZL, Yu AS, Lee JY |
192 - 199 |
Developing stable, low impedance interface between metallic lithium anode and polyacrylonitrile-based polymer gel electrolyte by preliminary voltage cycling Sotomura T, Adachi K, Taguchi M, Iwaku M, Tatsuma T, Oyama N |
200 - 206 |
Early studies on anodic properties of lithium intercalated graphite Basu S |
207 - 211 |
TEM characterization of the passivating layer formed during the reduction of graphite electrodes in selected electrolytes Naji A, Ghanbaja J, Willmann P, Billaud D |
212 - 216 |
In situ investigation of the interaction between graphite and electrolyte solutions Novak P, Joho F, Imhof R, Panitz JC, Haas O |
217 - 220 |
Control of lithium metal anode cycleability by electrolyte temperature Ishikawa M, Kanemoto M, Morita M |
221 - 223 |
beta-FeOOH, a new positive electrode material for lithium secondary batteries Amine K, Yasuda H, Yamachi M |
224 - 228 |
Faradaic adsorption of Li ore carbon. A novel concept for the capacity of the anode of the Li-ion secondary batteries Takasu R, Sekine K, Takamura T |
229 - 232 |
Synthesis and anode behavior of lithium storage intermetallic compounds with various crystallinities Sakaguchi H, Honda H, Esaka T |
233 - 236 |
Amorphous silicon as a possible anode material for Li-ion batteries Bourderau S, Brousse T, Schleich DM |
237 - 242 |
A room temperature study of the binary lithium-silicon and the ternary lithium-chromium-silicon system for use in rechargeable lithium batteries Weydanz WJ, Wohlfahrt-Mehrens M, Huggins RA |
243 - 247 |
Key factors for the cycling stability of graphite intercalation electrodes for lithium-ion batteries Joho F, Rykart B, Imhof R, Novak P, Spahr ME, Monnier A |
248 - 254 |
Lithium transport through Li1+delta[Ti2-yLiy]O-4 (y=0; 1/3) electrodes by analysing current transients upon large potential steps Pyun SI, Kim SW, Shin HC |
255 - 258 |
Electrochemical lithium insertion in some niobates MNb2O6 (M = Mn, Co, Ni, Cu, Zn and Cd) Martinez-de la Cruz A, Alcaraz NL, Fuentes AF, Torres-Martinez LM |
259 - 263 |
Lithium insertion into hollandite-type TiO2 Noailles LD, Johnson CS, Vaughey JT, Thackeray MM |
264 - 267 |
Electrochemical lithium insertion in some nickel, zinc and cadmium vanadates Fuentes AF, Trevino L, Martinez-de la Cruz A, Torres-Martinez LM |
268 - 272 |
Kinetics of Li insertion into polycrystalline and nanocrystalline 'SnSb' alloys investigated by transient and steady state techniques Besenhard JO, Wachtler M, Winter M, Andreaus R, Rom I, Sitte W |
273 - 276 |
Electrochemical properties of sol-gel Li4/3Ti5/3O4 Bach S, Pereira-Ramos JP, Baffier N |
277 - 281 |
Lithium intercalation in tin oxide Chouvin J, Branci C, Sarradin J, Olivier-Fourcade J, Jumas JC, Simon B, Biensan P |
282 - 285 |
Structural modifications related to lithium intercalation into iron thiospinels Branci C, Sarradin J, Olivier-Fourcade J, Jumas JC |
286 - 290 |
Temperature dependence of the passivation layer on graphite Andersson AM, Edstrom K, Rao N, Wendsjo A |
291 - 295 |
Physical characterization of carbonaceous materials prepared by mechanical grinding Salver-Disma F, Du Pasquier A, Tarascon JM, Lassegues JC, Rouzaud JN |
296 - 299 |
Lithium intercalation studies of petroleum cokes of different morphologies Tran TD, Derwin DJ, Zaleski P, Song X, Kinoshita K |
300 - 305 |
Electrochemical study of Li4Ti5O12 as negative electrode for Li-ion polymer rechargeable batteries Zaghib K, Simoneau M, Armand M, Gauthier M |
306 - 311 |
XPS analysis of the lithium intercalation in amorphous tungsten oxysulfide thin films Martin I, Vinatier P, Levasseur A, Dupin JC, Gonbeau D |
312 - 316 |
On the choice of graphite for lithium ion batteries Simon B, Flandrois S, Guerin K, Fevrier-Bouvier A, Teulat I, Biensan P |
317 - 322 |
Electrochemical insertion of lithium in catalytic multi-walled carbon nanotubes Leroux F, Metenier K, Gautier S, Frackowiak E, Bonnamy S, Beguin F |
323 - 327 |
Novel carbons from nanocomposites for high lithium storage Duclaux L, Frackowiak E, Beguin F |
328 - 334 |
Lithium insertion/extraction in pyrolyzed phenolic resin Wang ZX, Huang XJ, Chen LQ |
335 - 339 |
Structure and electrochemical properties of anodes consisting of modified SnO Li H, Huang XJ, Chen LQ |
340 - 345 |
Electrochemical impedance spectroscopy study of SnO and nano-SnO anodes in lithium rechargeable batteries Li H, Huang XJ, Chen LQ |
346 - 351 |
The interaction between SnO anode and electrolytes Li JZ, Li H, Wang ZX, Huang XJ, Chen LQ |
352 - 357 |
New inorganic spinel oxides for use as negative electrode materials in future lithium-ion batteries Robertson AD, Trevino L, Tukamoto H, Irvine JTS |
358 - 361 |
The role of anions, solvent molecules and solvated electrons in layer formation processes on anode materials for rechargeable lithium batteries Rahner D |
362 - 367 |
Electrochemical characteristics of Sn1-xSixO2 as anode for lithium-ion batteries Huang H, Kelder EM, Chen L, Schoonman J |
368 - 372 |
Enhancement of Li doping/undoping reaction rate of carbonaceous materials by coating with an evaporated metal film Takamura T, Sumiya K, Suzuki J, Yamada C, Sekine K |
373 - 377 |
The study of irreversible capacity in lithium-ion anodes prepared with thermally oxidized graphite Rubino RS, Takeuchi ES |
378 - 382 |
LiN(CF3SO2)(2) Kynar gels at carbon negative electrodes Christie L, Christie AM, Vincent CA |
383 - 387 |
Copper-tin anodes for rechargeable lithium batteries: an example of the matrix effect in an intermetallic system Kepler KD, Vaughey JT, Thackeray MM |
388 - 392 |
Cathode properties of layered structure Li2PtO3 Asakura K, Okada S, Arai H, Tobishima S, Sakurai Y |
393 - 396 |
Ab initio study on the topological Li insertion in titanium oxide Ebina T, Iwasaki T, Onodera Y, Hayashi H, Nagase T, Chatterjee A, Chiba K |
397 - 400 |
Low temperature Li-7-NMR investigations on lithium inserted into carbon anodes for rechargeable lithium-ion cells Tatsumi K, Conard J, Nakahara M, Menu S, Lauginie P, Sawada Y, Ogumi Z |
401 - 405 |
Characteristics of LixNiO2 obtained by chemical delithiation Arai H, Sakurai Y |
406 - 411 |
Electrochemistry and structure of Li2-xCryMn2-yO4 phases Davidson IJ, McMillan RS, Slegr H, Luan B, Kargina I, Murray JJ, Swainson IP |
412 - 415 |
A combustion method to prepare spinel phase LiMn2O4 cathode materials for lithium-ion batteries Yang WS, Zhang G, Xie JY, Yang LL, Liu QG |
416 - 419 |
Synthesis and characterization of LiNi1-x-yCoxMnyO2 as the cathode materials of secondary lithium batteries Liu ZL, Yu AS, Lee JY |
420 - 424 |
Spinel-type lithium-manganese oxide cathodes for rechargeable lithium batteries Nishimura K, Douzono T, Kasai M, Andou H, Muranaka Y, Kozono Y |
425 - 429 |
Charge and discharge performances of lithiated metal oxide cathodes in organic electrolyte solutions with different compositions Morita M, Yamada O, Ishikawa M |
430 - 433 |
Capacity failure on cycling or storage of lithium-ion batteries with Li-Mn-O ternary phases having spinel-framework structure and its possible solution Iwata E, Takahashi K, Maeda K, Mouri T |
434 - 441 |
Synthesis, XRD characterization and electrochemical performance of overlithiated LiNiO2 Moshtev R, Zlatilova P, Vasilev S, Bakalova I, Kozawa A |
442 - 447 |
Lithium intercalation into and deintercalation from Li1-delta Al1/4Ni3/4O2 electrode: current transient analysis Pyun SI |
448 - 453 |
Lithium insertion behaviour of Li1+xV3O8 with different degrees of crystallinity Kawakita J, Kato T, Katayama Y, Miura T, Kishi T |
454 - 457 |
Relationship between cycle Life of Li(Mn2-xLix)O4-delta and oxygen deficiency delta Chida Y, Wada H, Shizuka K |
458 - 462 |
Characteristics of the 4 V plateau in LiMn2(O4-xFx) studied by in situ synchrotron X-ray diffraction Strobel P, Anne M, Chabre Y, Palacin MR, Seguin L, Vaughan G, Amatucci G, Tarascon JM |
463 - 466 |
Electrochemical and calorimetric approach to spinel lithium manganese oxide Kobayashi Y, Kihira N, Takei K, Miyashiro H, Kumai K, Terada N, Ishikawa R |
467 - 471 |
Synthesis, characterization, and cell performance of LiNiVO4 cathode materials prepared by a new solution precipitation method Fey GTK, Chen KS |
472 - 479 |
Capacity fading of LixMn2O4 spinel electrodes studied by XRD and electroanalytical techniques Aurbach D, Levi MD, Gamulski K, Markovsky B, Salitra G, Levi E, Heider U, Heider L, Oesten R |
480 - 486 |
Interrelation between structural and electrochemical properties of the cathode based on vanadium oxide for rechargeable batteries Shembel E, Apostolova R, Nagirny V, Aurbach D, Markovsky B |
487 - 490 |
First-principles calculation of atomic structure and electrochemical potential of Li1+xV3O8 Benedek R, Thackeray MM, Yang LH |
491 - 495 |
Structural and electrochemical analysis of layered compounds from Li2MnO3 Johnson CS, Korte SD, Vaughey JT, Thackeray MM, Bofinger TE, Shao-Horn Y, Hackney SA |
496 - 499 |
Structural fatigue in spinel electrodes in Li/Li-x[Mn-2]O-4 cells Shao-Horn Y, Hackney SA, Kahaian AJ, Kepler KD, Skinner E, Vaughey JT, Thackeray MM |
500 - 504 |
Local structure and defect chemistry of substituted lithium manganate spinels: X-ray absorption and computer simulation studies Ammundsen B, Islam MS, Jones DJ, Roziere J |
505 - 509 |
Structure and electrochemical characterization of Li1+xMn2-xO4 spinels for rechargeable lithium batteries Takada T, Hayakawa H, Enoki H, Akiba E, Slegr H, Davidson I, Murray J |
510 - 516 |
A study on the effect of lithium insertion-extraction on the local structure of lithium manganese oxides using X-ray absorption spectroscopy Kwon OS, Kim MS, Kim KB |
517 - 523 |
Synthesis of LiCoO2 using acrylic acid and its electrochemical properties for Li secondary batteries Yoon WS, Kim KB |
524 - 529 |
Synthesis and electrochemical properties of lithium molybdenum oxides Kobayashi H, Tabuchi M, Shikano M, Nishimura Y, Kageyama H, Ishida T, Nakamura H, Kurioka Y, Kanno R |
530 - 534 |
Lithium intercalation behavior of iron cyanometallates Imanishi N, Morikawa T, Kondo J, Yamane R, Takeda Y, Yamamoto O, Sakaebe H, Tabuchi M |
535 - 541 |
The control of nonstoichiometry in lithium nickel-cobalt oxides Gover RKB, Yonemura M, Hirano A, Kanno R, Kawamoto Y, Murphy C, Mitchell BJ, Richardson JW |
542 - 546 |
The relationships between phases and structures of lithium manganese spinels Kanno R, Kondo A, Yonemura M, Gover R, Kawamoto Y, Tabuchi M, Kamiyama T, Izumi F, Masquelier C, Rousse G |
547 - 553 |
X-ray diffraction, Fe-57 Mossbauer and step potential electrochemical spectroscopy study of LiFeyCo1-yO2 compounds Alcantara R, Jumas JC, Lavela P, Olivier-Fourcade J, Perez-Vicente C, Tirado JL |
554 - 557 |
Electrochemical STM observation of LiMn2O4 thin films prepared by pulsed laser deposition Inaba M, Doi T, Iriyama Y, Abe T, Ogumi Z |
558 - 561 |
Effects of CO2 in air on Li deintercalation from LiNi1-x-yCoxAlyO2 Matsumoto K, Kuzuo R, Takeya K, Yamanaka A |
562 - 565 |
Li0.3MnO2-cathode material for secondary lithium batteries Banov B, Momchilov A, Trifonova A, Puresheva B |
566 - 570 |
Nonaqueous UFC suspensions, used as conductive additive in cathodes for lithium batteries Momchilov A, Trifonova A, Banov B, Pourecheva B, Kozawa A |
571 - 574 |
Effect of the elevated temperature on the local structure of lithium manganese oxide studied by in situ XAFS analysis Shiraishi Y, Nakai I, Tsubata T, Himeda T, Nishikawa F |
575 - 580 |
Studies of LiCoOx thin film cathodes produced by r.f. sputtering da Fonseca CNP, Davalos J, Kleinke M, Fantini MCA, Gorenstein A |
581 - 584 |
Characterization of sputtered vanadium oxide films for lithium batteries Koike S, Fujieda T, Sakai T, Higuchi S |
585 - 588 |
Advanced lithium ion cells with lithium manganese spinel Bauerlein P, Herr R, Kloss M, Kumpers J, Maul M, Meissner E |
589 - 593 |
Synthesis and characterization of LiAlyCo1-yO2 and LiAlyNi1-yO2 Jang YI, Huang BY, Wang HF, Maskaly GR, Ceder G, Sadoway DR, Chiang YM, Liu H, Tamura H |
594 - 598 |
Electron microscopic characterization of electrochemically cycled LiCoO2 and Li(Al,Co)O-2 battery cathodes Wang HF, Jang YI, Huang BY, Sadoway DR, Chiang YM |
599 - 603 |
Synthesis and charge-discharge properties of Li1+xNi1-x-yCoyO2-zFz Kubo K, Arai S, Yamada S, Kanda M |
604 - 606 |
Structural study of NiO2 and CoO2 as end members of the lithiated compounds by in situ high resolution X-ray powder diffraction Seguin L, Amatucci G, Anne M, Chabre Y, Strobel P, Tarascon JM, Vaughan G |
607 - 611 |
Electrochemical behaviour of LiMn2O4-PPy composite cathodes in the 4-V region Du Pasquier A, Orsini F, Gozdz AS, Tarascon JM |
612 - 615 |
Electrochemical lithium insertion in the hexagonal cesium vanadium bronze Cs0.35V2O5 Gregoire G, Soudan P, Farcy J, Pereira-Ramos JP, Badot JC, Baffier N |
616 - 620 |
In situ Raman spectroscopic studies of electrochemical intercalation in LixMn2O4-based cathodes Huang WW, Frech R |
621 - 626 |
Influence of the particle size of electrode materials on intercalation rate and capacity of new electrodes Vacassy R, Hofmann H, Papageorgiou N, Gratzel M |
627 - 631 |
Electrochemical and structural study of the 3.3 V reduction step in defective LixMn2O4 and LiMn2O(4-y)Fy compounds Palacin MR, Amatucci GG, Anne M, Chabre Y, Seguin L, Strobel P, Tarascon JM, Vaughan G |
632 - 636 |
Lithiated manganese oxides as a cathode for lithium batteries Nakamura H, Motooka K, Noguchi H, Yoshio M |
637 - 641 |
Performance and characterization of lithium-manganese-oxide cathode material with large tunnel structure for lithium batteries Yang Y, Shu D, You JK, Lin ZG |
642 - 646 |
Power density of spinel cathode secondary lithium-ion batteries Wilson AM, Reimers JN |
647 - 650 |
Microwave synthesis of LiMn2O4 cathode material Yan HW, Huang XJ, Chen LQ |
651 - 655 |
Study of Me-x(VO3)(2) vanadates, (Me = Co, Ni, Mn, 1 < x < 2) for lithium rechargeable cells Andrukaitis E, Torlone GL, Hill IR |
656 - 660 |
gamma-MnO2 for Li batteries Part I. gamma-MnO2: Relationships between synthesis conditions, material characteristics and performances in lithium batteries Sarciaux S, La Salle AL, Verbaere A, Piffard Y, Guyomard D |
661 - 665 |
gamma-MnO2 for Li batteries Part II. Some aspects of the lithium insertion process into gamma-MnO2 and electrochemically lithiated gamma-LixMnO2 compounds Sarciaux S, La Salle AL, Verbaere A, Piffard Y, Guyomard D |
666 - 669 |
e-V2O5: Relationship between synthesis conditions, material characteristics and lithium intercalation behavior Potiron E, La Salle AL, Sarciaux S, Piffard Y, Guyomard D |
670 - 674 |
Electrochemical behaviour of chemically lithiated LixV2O5 phases (0.9 <= x <= 1.6) Garcia B, Millet M, Pereira-Ramos JP, Baffier N, Bloch D |
675 - 679 |
LiCoO2 and LiCo1-xAlxO2 thin film cathodes grown by pulsed laser ablation Perkins JD, Bahn CS, Parilla PA, McGraw JM, Fu ML, Duncan M, Yu H, Ginley DS |
680 - 684 |
First-principles theory of cation and intercalation ordering in LixCoO2 Wolverton C, Zunger A |
685 - 689 |
Direct XRD observation of oxidation-state changes on Li-ion insertion into transition-metal oxide hosts Bergstrom O, Bjork H, Gustafsson T, Thomas JO |
690 - 695 |
LiAlxCo1-xO2 as 4 V cathodes for lithium ion batteries Huang HT, Rao GVS, Chowdari BVR |
696 - 699 |
Hydrothermal synthesis of LiNiVO4 cathode material for lithium ion batteries Lu CH, Lee WC, Liou SJ, Fey GTK |
700 - 704 |
NMR studies of ionic mobility in polymer gel electrolytes for advanced lithium batteries Ward IM, Williamson MJ, Hubbard HVS, Southall JP, Davies GR |
705 - 708 |
Solvation states and properties of binary mixtures of halogenated cyclic carbonates and a linear carbonate Katayama H, Arai J, Akahoshi H |
709 - 714 |
X-ray absorption fine structure studies of FeS2 cathodes in lithium polymer electrolyte batteries Kostov S, denBoer M, Strauss E, Golodnitsky D, Greenbaum SG, Peled E |
715 - 719 |
Gas generation mechanism due to electrolyte decomposition in commercial lithium-ion cell Kumai K, Miyashiro H, Kobayashi Y, Takei K, Ishikawa R |
720 - 723 |
Quasi-solid polymer electrolytes using photo-cross-linked polymers. Lithium and divalent cation conductors and their applications Ikeda S, Mori Y, Furuhashi Y, Masuda H, Yamamoto O |
724 - 728 |
Boroxine ring containing polymer electrolytes Mehta MA, Fujinami T, Inoue T |
729 - 733 |
Improved composite materials for rechargeable lithium metal polymer batteries Mastragostino M, Soavi F, Zanelli A |
734 - 738 |
Improved morphology of plated lithium in poly(vinylidene fluoride) based electrolyte Osaka T, Kitahara M, Uchida Y, Momma T, Nishimura K |
739 - 747 |
NMR, DSC and high pressure electrical conductivity studies of liquid and hybrid electrolytes Stallworth PE, Fontanella JJ, Wintersgill MC, Scheidler CD, Immel JJ, Greenbaum SG, Gozdz AS |
748 - 751 |
Behavior of interfacial resistance at lithium electrode for gel electrolyte using novel three-dimensional network polymer host Kono M, Nishiura M, Ishiko E |
752 - 758 |
A study on polymer blend electrolyte based on PVC/PMMA with lithium salt Stephan AM, Thirunakaran R, Renganathan NG, Sundaram V, Pitchumani S, Muniyandi N, Gangadharan R, Ramamoorthy P |
759 - 761 |
Effect of organic additives in electrolyte solutions on lithium electrode behavior Matsuda Y, Sekiya M |
762 - 765 |
Application of gel alkylene oxide electrolytes to rechargeable lithium batteries Matsuda Y, Namegaya N |
766 - 771 |
Impedance and polarisation studies of new lithium polyelectrolyte gels Krok F, Dygas JR, Misztal-Faraj B, Florjanczyk Z, Bzducha W |
772 - 776 |
Determination of ionic self-diffusion coefficients of lithium electrolytes using the pulsed field gradient NMR Saito Y, Yamamoto H, Nakamura O, Kageyama H, Ishikawa H, Miyoshi T, Matsuoka M |
777 - 781 |
Lithium ion conductivity of A-site deficient perovskite solid solutions Harada Y, Watanabe H, Kuwano J, Saito Y |
782 - 785 |
Dependence of lithium metal secondary cell performance on lithium cation solvation state Hayashi K, Nemoto Y, Tobishima S, Sakurai Y |
786 - 789 |
High ionic conductivity and electrode interface properties of polymer electrolytes based on high molecular weight branched polyether Watanabe M, Endo T, Nishimoto A, Miura K, Yanagida M |
790 - 794 |
Vinylidenefluoride-hexafluoropropylene copolymers as hybrid electrolyte components for lithium batteries Arcella V, Sanguineti A, Quartarone E, Mustarelli P |
795 - 803 |
Electrochemical investigation of organic salts in polymeric and liquid electrolytes Alloin F, Sanchez JY |
804 - 807 |
Microporous PVdF gel for lithium-ion batteries Boudin F, Andrieu X, Jehoulet C, Olsen II |
808 - 812 |
Influence of synthesis parameters on the electrical and structural properties of nanostructured BPO4-Li2O Jak MJG, Kelder EM, Everstein SJ, Schoonman J |
813 - 817 |
Study on poly(ethylene-oxide) electrolytes with ionophores for lithium batteries Lisowska-Oleksiak A, Inerowicz HD |
818 - 823 |
FTIR and DEMS investigations on the electroreduction of chloroethylene carbonate-based electrolyte solutions for lithium-ion cells Winter M, Imhof R, Joho F, Novak P |
824 - 829 |
Ionic conductivity of the hyperbranched polymer-lithium metal salt systems Itoh T, Ikeda M, Hirata N, Moriya Y, Kubo M, Yamamoto O |
830 - 832 |
A study in conductances and physical constants of LiBF4 plus propylene carbonate-diethyl carbonate system Moumouzias G, Ritzoulis G, Komvokis V, Zovoilis C, Siapkas D |
833 - 837 |
The effect of ultrasound on lithium surfaces in propylene carbonate Birkin PR, Eweka E, Owen JR |
838 - 841 |
Conducting polymers as positive electrodes in rechargeable lithium-ion batteries Otero TF, Cantero I |
842 - 846 |
Fabrication and evaluation of 100 Ah cylindrical lithium ion battery for electric vehicle applications Hyung YE, Moon SI, Yum DH, Yun SK |
847 - 852 |
Design and development of A 20 Ah Li-ion prismatic cell Gitzendanner RL, Russell PG, Marsh C, Marsh RA |
853 - 858 |
Densification of LiTi(PO4)(3)-based solid electrolytes by spark-plasma-sintering Kobayashi Y, Takeuchi T, Tabuchi M, Ado K, Kageyama H |
859 - 862 |
Li-7 and F-19 diffusion coefficients and thermal properties of non-aqueous electrolyte solutions for rechargeable lithium batteries Capiglia C, Saito Y, Kageyama H, Mustarelli P, Iwamoto T, Tabuchi T, Tukamoto H |
863 - 866 |
Flat plate prismatic Li-ion cells using advanced cathode materials Ehrlich GM, Puglia FJ, Gitzendanner R, Hellen B, Marsh C |
867 - 871 |
Testing of lithium-ion 18650 cells and characterizing/predicting cell performance Fellner JP, Loeber GJ, Sandhu SS |
872 - 876 |
Development of lithium secondary batteries for electric vehicles and home-use load leveling systems Iwahori T, Ozaki Y, Funahashi A, Momose H, Mitsuishi I, Shiraga S, Yoshitake S, Awata H |
877 - 881 |
Design and characteristics of large-scale lithium ion battery Majima M, Tada T, Ujiie S, Yagasaki E, Inazawa S, Miyazaki K |
882 - 886 |
A consideration of lithium cell safety Tobishima S, Yamaki J |
887 - 890 |
100 Wh Large size Li-ion batteries and safety tests Kitoh K, Nemoto H |
891 - 895 |
Room temperature molten salt as medium for lithium battery Fung YS, Zhou RQ |
896 - 901 |
Development of high capacity, high rate lithium ion batteries utilizing metal fiber conductive additives Ahn S, Kim Y, Kim KJ, Kim TH, Lee H, Kim MH |
902 - 905 |
Development of a high-power lithium-ion battery Jansen AN, Kahaian AJ, Kepler KD, Nelson PA, Amine K, Dees DW, Vissers DR, Thackeray MM |
906 - 912 |
On safety of lithium-ion cells Biensan P, Simon B, Peres JP, de Guibert A, Broussely M, Bodet JM, Perton F |
913 - 917 |
Characterization of reaction in lithium-ion cells by calorimetry and staircase voltage step coulometry Saito Y, Kanari K, Takano K, Nozaki K |
918 - 921 |
In situ SEM study of the interfaces in plastic lithium cells Orsini F, du Pasquier A, Beaudouin B, Tarascon JM, Trentin M, Langenhuizen N, de Beer E, Notten P |
922 - 924 |
A continuous X-ray diffraction study of the electrochemical behavior of a plastic Li-ion cell Gerand B, Blyr A, Du Pasquier A, Leriche JB, Seguin L |
925 - 929 |
Dendritic growth mechanisms in lithium/polymer cells Brissot C, Rosso M, Chazalviel JN, Lascaud S |