International Search Report for PCT/US97/15544 no date. |
Rangan et al., New Titanium-Vanadium Phosphates of Nasicon and Langbeinite Structures, and Differences Between the Two Structures Toward Deintercalation of Alkali Metal, “Journal of Solid State Chemistry,” 109, (1994) pp. 116-121. no month. |
Delmas et al., “The Nasicon-Type Titatium Phosphates Ati2(PO4)3(A=Li, Na) as Electrode Materials,” Solid State Ionics (1988) 28-30 pp. 419-423 no month. |
Hagenmuller et al., “Intercalation in 3D-Skeleton Structures: Ionic and Electronic.Features,” Material Resources Society Symposium Proc., vol. 210 (1991) pp. 323-334 no month. |
Chem. Abstrs. Svs., (1997), XP 2048304 no month. |
Padhi et al., Lithium Intercalation into NASICON-Type Mixed Phosphates: . . . and Li2FeTi(PO4)3; 37th Power Sources Conference; Cherry Hill, New Jersey, Conference Data: Jun. 17-20, 1996, published Oct. 15, 1996. |
Sisler et al., “Chemistry A Systematic Approach,” Oxford University Press, p. 746, 1980 no month. |
Gopalakrishnan et al., V2(PO4)3: A Novel NASICON-Type Vanadium Phosphate Synthesized by Oxidative Deintercalation of Sodium From Na3V2(PO4)3, Chemistry of Materials, vol. 4, No. 4, Jul./Aug. 1992, pp. 745-747. |
Delmas et al., The Chemical Short Circuit Method, An Improvement in the Intercalation-Deintercalation Techniques, Materials Research Bulletin, vol. 23, 1988, pp. 65-72. no month. |
Ivanov-Schitz et al., Electrical and Interfacial Properties of a Li3Fe2(PO4)3 Single Crystal With Silver Electrodes, Solid States Ionics, 91, (1996), pp. 93-99 no month. |
Cretin et al., “Study of Li1+xALxTi2-x(PO4)3 for Li+ Potentiometric Sensors,” Journal of the European Ceramic Society 15, (1995), pp. 1149-1156. no month. |
Chem. Abstrs. Svs., (1995) xp 2048305. no month. |
Patent Abstracts of Japan (1994) vol. 18, No. 64, (Abstract for JP 06251764). no month. |
Okada et al., Center for Materials Science & Engineering, University of Texas, Austin, Texas, “Fe2(SO4)3 as a Cathode Material for Rechargeable Lithium Batteries,” (no date of publication). |
Adachi et al., “Lithium Ion Conductive Solid Electrolyte,” Chemical Abstracts 112 129692 (1981). no month. |
Delmas et al., “A Nasicon-Type Phase as Intercalation Electrode: Sodium Tiatium Phosphate (NaTi2(PO4)3),” Material Resources Bulletin (1987). no month. |
Nanjundaswamy et al., “Synthesis, Redox Potential Evaluation and Electrochemical Characteristics of NASICON-Related-3D Framework Compounds,” Solid State Ionics 92, (1996) pp. 1-10. no month. |
Nadiri, “Lithium Intercalation in Lithium Titanium Phosphate (LiTi2(PO4)3),” C.R. Acad. Sci., Ser. 2 (1987), 304(9), pp. 415-418 (no month available). |
Cotton et al., “Advanced Inorganic Chemistry, 3rd Edition,” Interscience Publishers, pp. 864-868 (no month available). |
Linden, “Handbood of Batteries, 2nd Edition,”McGraw-Hill, Inc. pp. 36.4-36.9. no date. |
Bykov et al., “Superionic Conductors Li3M2(PO4)3 (M=Fe, Sc, Cr): Synthesis, Structure and Electrophysical Properties,” Solid State Ionics, vol. 38 (1990) pp. 31-52 (no month available). |
Gummow, et al., Lithium extraction from orthorhombic lithium manganese oxide and the phase transformation to spinel, Mater. Res. Bull. (1993), 28(12), 1249-56 no month. |
Gummow, et al., An investigation of spinel-related and orthorhombic LiMn02 cathodes for rechargeable lithium batteries, J. Electrochem. Soc. (1994), 141(5), 1178-82 no month. |
Otsuka, et al., Hydrogen production from water by indium (III) oxide and potassium carbonate using graphite, active carbon and biomass as reductants, Chem. Lett. (1981), (3), 347-50 no month. |
Vasyutinskii, Appearance of emf. during ferric oxide reduction by carbon, Zh. Prikl. Khim. (1973), 46(4), 779-82 (Abstract) no month. |
Gilchrist, Extraction Metallurgy, Pergamon Press (1980), pp. 160-173 no month. |
Search Report, May 28, 2001, PCT. |