The effect of lithium boron oxide (LBO) coating on the electrochemical performance of orthorhombic LiMnO2 (o-LiMnO2) cathode for lithium-ion batteries is investigated. o-LiMnO2 synthesized via solid state synthesis technique is modified with LBO addition. The presence of LBO is identified via Fourier transform infrared spectroscopy analysis. o-LiMnO2 is observed to transform to a spinel-like phase during cycling which undergoes capacity fading. Studies indicate that the presence of 1-2 wt% LBO results in an improved capacity and better capacity retention with cycling. The pristine sample reveals a maximum specific capacity of 172 mAhg(-1), whereas the LBO-modified samples display about 189.1 mAhg(-1) in the cycling tests conducted at a rate...
A promising cathode material for rechargeable batteries is LiMn2O4, which exhibits higher operating ...
A series of surface-doped LiMn2O4 samples modified by a Li2CuO2-Li2NiO2 solid solution were synthesi...
In order to improve the cycling performance of LiMn2O4, the spinel phase LiMn2-xBaxO4 (x = 0.01, 0.0...
Lithium-ion batteries are widely used in potential power sources for portable electronic devices suc...
The electrochemical cycling behavior of Al2O3-coated orthorhombic LiMnO2 (o-LiMnO2) cathodes prepare...
The LBS coating on the surface of spinel LiMn2O4 powder was carried out using the solid-state method...
The structural stability of metal-oxide-coated orthorhombic LiMnO2 (o-LiMnO2) was characterized by i...
The effect of the Li2O-2B2O3 (LBO) glass coating on the charge-discharge cycling performance of spin...
The effect of the Al2O3 coating on the charge)discharge cycling performance of spinel powder (LiMn2O...
[[abstract]]Surface modification on the electrode has a vital impact on lithium-ion batteries, and i...
[[abstract]]Surface treatment of the lithium manganese oxide cathode material coated by lithium bora...
Low-temperature sol-gel coating of CoO on orthorhombic LiMnO2 (o-LiMnO2) particles greatly stabilize...
The surface of spinel LiMn2O4 was modified with Fe2O3 (1.0, 2.0, 3.0, 4.0, and 5.0 wt%) by a simple ...
Orthorhombic LiMnO2 cathodes suffer severe capacity fading due to accelerated manganese dissolution ...
Extreme fast charging (XFC, i.e., achieving at least 80% state of charge within 15 minutes) and high...
A promising cathode material for rechargeable batteries is LiMn2O4, which exhibits higher operating ...
A series of surface-doped LiMn2O4 samples modified by a Li2CuO2-Li2NiO2 solid solution were synthesi...
In order to improve the cycling performance of LiMn2O4, the spinel phase LiMn2-xBaxO4 (x = 0.01, 0.0...
Lithium-ion batteries are widely used in potential power sources for portable electronic devices suc...
The electrochemical cycling behavior of Al2O3-coated orthorhombic LiMnO2 (o-LiMnO2) cathodes prepare...
The LBS coating on the surface of spinel LiMn2O4 powder was carried out using the solid-state method...
The structural stability of metal-oxide-coated orthorhombic LiMnO2 (o-LiMnO2) was characterized by i...
The effect of the Li2O-2B2O3 (LBO) glass coating on the charge-discharge cycling performance of spin...
The effect of the Al2O3 coating on the charge)discharge cycling performance of spinel powder (LiMn2O...
[[abstract]]Surface modification on the electrode has a vital impact on lithium-ion batteries, and i...
[[abstract]]Surface treatment of the lithium manganese oxide cathode material coated by lithium bora...
Low-temperature sol-gel coating of CoO on orthorhombic LiMnO2 (o-LiMnO2) particles greatly stabilize...
The surface of spinel LiMn2O4 was modified with Fe2O3 (1.0, 2.0, 3.0, 4.0, and 5.0 wt%) by a simple ...
Orthorhombic LiMnO2 cathodes suffer severe capacity fading due to accelerated manganese dissolution ...
Extreme fast charging (XFC, i.e., achieving at least 80% state of charge within 15 minutes) and high...
A promising cathode material for rechargeable batteries is LiMn2O4, which exhibits higher operating ...
A series of surface-doped LiMn2O4 samples modified by a Li2CuO2-Li2NiO2 solid solution were synthesi...
In order to improve the cycling performance of LiMn2O4, the spinel phase LiMn2-xBaxO4 (x = 0.01, 0.0...