A quantitative phase analysis was made of LixCoO2 powders obtained by two distinct chemical methodologies at different temperatures (from 400 to 700°C). A phase analysis was made using Rietveld refinements based on X-ray diffraction data, considering the Li xCoO2 powders as a multiphase system that simultaneously contained two main phases with distinct, layered and spinel-type structures. The results showed the coexistence of both structures in LixCoO 2 obtained at low temperature (400 and 500°C), although only the layered structure was detected at higher temperatures (600 and 700°C), regardless of the chemical powder process employed. The electrochemical performance, evaluated mainly by the cycling reversibility of Li xCoO2 in the form of ...
© 2019 The Chemical Society Located in Taipei & Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim LiCoO2 (L...
The metastable O2-LiCoO(2) phase undergoes several reversible phase transitions upon lithium deinter...
Three types of intercalation Compounds, LiMn{sub 2}O{sub 4} with spinel structure, LiNiO{sub 2} and ...
A quantitative phase analysis was made of LiXCoO2 powders obtained by two distinct chemical methodol...
In the present work, the intercalation of lithium ions in the LixCoO2 host material was investigated...
LiCoO2 powders were prepared by combustion synthesis, using metallic nitrates as the oxidant and met...
Temperature programmed reduction (TPR) method was introduced to analyze the structural change and th...
In situ high-energy X-ray diffraction was carried out to investigate the structural transformation o...
While LiCoO2: has been widely studied in the past 15 years as a promising positive electrode materia...
The electrochemical properties of the layered intercalation compound LiCoO2 used as a cathode in Li ...
X-ray diffraction (XRD), the traditional characterization method to detect the electrochemical prope...
Thin films of LiCoO2 are obtained by Laser ablation from sintered LiCoO2 targets. The films were dep...
Lithium cobalt oxides are widely investigated as promising bifunctional catalysts for metal-air batt...
The lithium air, or Li–O2, battery system is a promising electrochemical energy storage system becau...
There is an increasing interest in lithiated transition metal oxides because of their use as cathode...
© 2019 The Chemical Society Located in Taipei & Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim LiCoO2 (L...
The metastable O2-LiCoO(2) phase undergoes several reversible phase transitions upon lithium deinter...
Three types of intercalation Compounds, LiMn{sub 2}O{sub 4} with spinel structure, LiNiO{sub 2} and ...
A quantitative phase analysis was made of LiXCoO2 powders obtained by two distinct chemical methodol...
In the present work, the intercalation of lithium ions in the LixCoO2 host material was investigated...
LiCoO2 powders were prepared by combustion synthesis, using metallic nitrates as the oxidant and met...
Temperature programmed reduction (TPR) method was introduced to analyze the structural change and th...
In situ high-energy X-ray diffraction was carried out to investigate the structural transformation o...
While LiCoO2: has been widely studied in the past 15 years as a promising positive electrode materia...
The electrochemical properties of the layered intercalation compound LiCoO2 used as a cathode in Li ...
X-ray diffraction (XRD), the traditional characterization method to detect the electrochemical prope...
Thin films of LiCoO2 are obtained by Laser ablation from sintered LiCoO2 targets. The films were dep...
Lithium cobalt oxides are widely investigated as promising bifunctional catalysts for metal-air batt...
The lithium air, or Li–O2, battery system is a promising electrochemical energy storage system becau...
There is an increasing interest in lithiated transition metal oxides because of their use as cathode...
© 2019 The Chemical Society Located in Taipei & Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim LiCoO2 (L...
The metastable O2-LiCoO(2) phase undergoes several reversible phase transitions upon lithium deinter...
Three types of intercalation Compounds, LiMn{sub 2}O{sub 4} with spinel structure, LiNiO{sub 2} and ...