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Title: Cation-substituted spinel oxide and oxyfluoride cathodes for lithium ion batteries

Abstract

The present invention includes compositions and methods of making cation-substituted and fluorine-substituted spinel cathode compositions by firing a LiMn2-y-zLiyMzO4 oxide with NH4HF2 at low temperatures of between about 300 and 700.degree. C. for 2 to 8 hours and a .eta. of more than 0 and less than about 0.50, mixed two-phase compositions consisting of a spinel cathode and a layered oxide cathode, and coupling them with unmodified or surface modified graphite anodes in lithium ion cells.

Inventors:
;
Issue Date:
Research Org.:
Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States)
Sponsoring Org.:
USDOE
OSTI Identifier:
1176303
Patent Number(s):
7718319
Application Number:
11/861,252
Assignee:
Board of Regents, The University of Texas System (Austin, TX)
Patent Classifications (CPCs):
H - ELECTRICITY H01 - BASIC ELECTRIC ELEMENTS H01M - PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
Y - NEW / CROSS SECTIONAL TECHNOLOGIES Y02 - TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE Y02E - REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
DOE Contract Number:  
AC03-76SF00098
Resource Type:
Patent
Resource Relation:
Patent File Date: 2007 Sep 25
Country of Publication:
United States
Language:
English
Subject:
36 MATERIALS SCIENCE; 25 ENERGY STORAGE

Citation Formats

Manthiram, Arumugam, and Choi, Wonchang. Cation-substituted spinel oxide and oxyfluoride cathodes for lithium ion batteries. United States: N. p., 2010. Web.
Manthiram, Arumugam, & Choi, Wonchang. Cation-substituted spinel oxide and oxyfluoride cathodes for lithium ion batteries. United States.
Manthiram, Arumugam, and Choi, Wonchang. Tue . "Cation-substituted spinel oxide and oxyfluoride cathodes for lithium ion batteries". United States. https://www.osti.gov/servlets/purl/1176303.
@article{osti_1176303,
title = {Cation-substituted spinel oxide and oxyfluoride cathodes for lithium ion batteries},
author = {Manthiram, Arumugam and Choi, Wonchang},
abstractNote = {The present invention includes compositions and methods of making cation-substituted and fluorine-substituted spinel cathode compositions by firing a LiMn2-y-zLiyMzO4 oxide with NH4HF2 at low temperatures of between about 300 and 700.degree. C. for 2 to 8 hours and a .eta. of more than 0 and less than about 0.50, mixed two-phase compositions consisting of a spinel cathode and a layered oxide cathode, and coupling them with unmodified or surface modified graphite anodes in lithium ion cells.},
doi = {},
journal = {},
number = ,
volume = ,
place = {United States},
year = {Tue May 18 00:00:00 EDT 2010},
month = {Tue May 18 00:00:00 EDT 2010}
}

Works referenced in this record:

Structural and electrochemical study of Li–Al–Mn–O–F spinel material for lithium secondary batteries
journal, August 2005


Microstrain and Capacity Fade in Spinel Manganese Oxides
journal, January 2002


An Investigation of Lithium Ion Insertion into Spinel Structure Li-Mn-O Compounds
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High Rate, Superior Capacity Retention LiMn[sub 2−2y]Li[sub y]Ni[sub y]O[sub 4] Spinel Cathodes for Lithium-Ion Batteries
journal, January 2003


An Investigation of Capacity Fading of Manganese Spinels Stored at Elevated Temperature
journal, January 1998


Dissolution of Spinel Oxides and Capacity Losses in 4V Li / LixMn2O4 Cells
journal, January 1996


Origin of the high voltage (>4.5 V) capacity of spinel lithium manganese oxides
journal, October 2003


Structural Fatigue in Spinel Electrodes in High Voltage (4 V) Li/Li[sub x]Mn[sub 2]O[sub 4] Cells
journal, January 1999


On the incorporation of fluorine into the manganese spinel cathode lattice
journal, May 2009


Superior Capacity Retention Spinel Oxyfluoride Cathodes for Lithium-Ion Batteries
journal, March 2006


Factors Influencing the Capacity Fade of Spinel Lithium Manganese Oxides
journal, January 2004


Factors Controlling the Fluorine Content and the Electrochemical Performance of Spinel Oxyfluoride Cathodes
journal, January 2007


The elevated temperature performance of the LiMn2O4/C system: failure and solutions
journal, September 1999


Layered Li(Li0.2Ni0.15+0.5zCo0.10Mn0.55−0.5z)O2−zFz cathode materials for Li-ion secondary batteries
journal, August 2005


Suppression of Mn Dissolution in Spinel Cathodes by Trapping the Protons within Layered Oxide Cathodes
journal, January 2007


Degradation mechanisms in doped spinels of LiM0.05Mn1.95O4 (M=Li, B, Al, Co, and Ni) for Li secondary batteries
journal, July 2000


Effect of Al3 +  and F   Doping on the Irreversible Oxygen Loss from Layered Li [ Li0.17Mn0.58Ni0.25 ] O2 Cathodes
journal, January 2007


A causal study of the capacity fading of Li1.01Mn1.99O4 cathode at 80°C, and the suppressing substances of its fading
journal, August 2001


New investigation of fluorine-substituted spinel LiMn2O4−xFx by using sol–gel process
journal, September 2005


Proton Insertion into Oxide Cathodes during Chemical Delithiation
journal, January 2006


Effect of fluorine on the electrochemical properties of layered Li(Ni0.5Mn0.5)O2 cathode materials
journal, August 2005


Enhancement of the electrochemical properties of Li1Mn2O4 through chemical substitution
journal, September 1999