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Journal ArticleDOI

Electrochemical and In Situ X‐Ray Diffraction Studies of Lithium Intercalation in Li x CoO2

Jan N. Reimers, +1 more
- 01 Aug 1992 - 
- Vol. 139, Iss: 8, pp 2091-2097
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TLDR
In this article, high precision voltage measurements and in situ x-ray diffraction indicate a sequence of three distinct phase transitions as varies from 1 to 0.4, two of which are situated slightly above and below and are caused by an order/disorder transition of the lithium ions.
Abstract
Electrochemical properties of are studied as Li is deintercalated from . High precision voltage measurements and in situ x‐ray diffraction indicate a sequence of three distinct phase transitions as varies from 1 to 0.4. Two of the transitions are situated slightly above and below and are caused by an order/disorder transition of the lithium ions. The order/disorder transition is studied as a function of temperature allowing the determination of an order/disorder phase diagram. In situ x‐ray diffraction measurements facilitate a direct observation of the effects of deintercalation on the host lattice crystal structure. The other phase transition is shown to be first order (coexisting phases are observed for ) involving a significant expansion of the parameter of the hexagonal unit cell. We report the variation of the lattice constants of with and show that the phase transition to the lithium ordered phase near is accompanied by a lattice distortion to a monoclinic unit cell with , , and . Finally we report an overall phase diagram for and .

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Effect of external pressure and internal stress on battery performance and lifespan

TL;DR: In this paper , a review of electrochemical-mechanical coupled behaviors in lithium-ion battery (LIB) cells on the mesoscale or macroscale level, such as electrode delamination, pore closure, and gas formation is presented.
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Preparation and properties of LiCoO compounds

TL;DR: An overview of the preparation and properties of LiCoO compounds can be found in this article, where the authors present an overview of various types of LiO compounds, including lithiated Co 3 O 4, LiO 2 and LiCO 2 CoO solid solutions.
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A novel carbon source coated on C-LiFePO 4 as a cathode material for lithium-ion batteries

TL;DR: In this paper, a carbon source polyacrylonitrile (PAN), which would form the hierarchical porous structure after carbonization, is fabricated and used to improve the defects of LiFePO4 cathode material in power batteries.
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Femtosecond Laser Processing of Thick Film Cathodes and Its Impact on Lithium-Ion Diffusion Kinetics

TL;DR: In this paper, a quantitative approach for determining the rate of Li-ion insertion in the active material and the capacity of Liion transport in the electrolyte is expressed by chemical diffusion coefficient values.
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Thermal transport in lithium-ion battery: A micro perspective for thermal management

TL;DR: In this paper, the thermal conductivities of anodes, cathodes, electrolytes, separator and separator in Li-ion batteries are reviewed. But, the authors focus on the thermal energy transport in Li ion batteries and do not consider the effects of delithiation degree and temperature of materials.
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