The interfacial instability between a thiophosphate solid electrolyte and oxide cathodes results in rapid capacity fade and has driven the need for cathode coatings. In this work, the stability, evolution, and performance of uncoated, Li2ZrO3-coated, and Li3B11O18-coated LiNi0.5Co0.2Mn0.3O2 cathodes are compared using first-principles computations and electron microscopy characterization. Li3B11O18 is identified as a superior coating that exhibits excellent oxidation/chemical stability, leading to substantially improved performance over cells with Li2ZrO3-coated or uncoated cathodes. The chemical and structural origin of the different performance is interpreted using different microscopy techniques which enable the direct observation of the...
The intrinsic stability of the 5V LiCoPO4 - LiCo2P3O10 thin film (carbon free) cathode material coat...
Surface properties of electrode materials play a critical role in the function of batteries. Therefo...
This overview addresses the atomistic aspects of degradation of layered LiMO2 (M = Ni, Co, Mn) oxide...
The interfacial instability between a thiophosphate solid electrolyte and oxide cathodes results in ...
Enabling long cyclability of high-voltage oxide cathodes is a persistent challenge for all-solid-sta...
Solid-state batteries are on the roadmap for commercialization as the next generation of batteries b...
In the recent years, lithium-ion batteries have prevailed and dominated as the primary power sources...
Motivated by new applications including electric vehicles and the smart grid, interest in advanced l...
With the rapid development of energy storage and electric vehicles, thiophosphate-based all-solid-st...
© 2020 American Chemical Society Solid-state batteries offer higher energy density and enhanced safe...
The intrinsic stability of the 5 V LiCoPO4-LiCo2P3O10 thin-film (carbon-free) cathode material coate...
Copyright © 2018 American Chemical Society. All-solid-state batteries promise significant safety and...
The stability of solid-electrolyte interphase (SEI) surface films at Li-metal anodes is crucial for ...
Cathode surface coatings present one of the most popular and effective solutions to suppress cathode...
Li-ion batteries are not only a technology for the future, they are indeed already the technology of...
The intrinsic stability of the 5V LiCoPO4 - LiCo2P3O10 thin film (carbon free) cathode material coat...
Surface properties of electrode materials play a critical role in the function of batteries. Therefo...
This overview addresses the atomistic aspects of degradation of layered LiMO2 (M = Ni, Co, Mn) oxide...
The interfacial instability between a thiophosphate solid electrolyte and oxide cathodes results in ...
Enabling long cyclability of high-voltage oxide cathodes is a persistent challenge for all-solid-sta...
Solid-state batteries are on the roadmap for commercialization as the next generation of batteries b...
In the recent years, lithium-ion batteries have prevailed and dominated as the primary power sources...
Motivated by new applications including electric vehicles and the smart grid, interest in advanced l...
With the rapid development of energy storage and electric vehicles, thiophosphate-based all-solid-st...
© 2020 American Chemical Society Solid-state batteries offer higher energy density and enhanced safe...
The intrinsic stability of the 5 V LiCoPO4-LiCo2P3O10 thin-film (carbon-free) cathode material coate...
Copyright © 2018 American Chemical Society. All-solid-state batteries promise significant safety and...
The stability of solid-electrolyte interphase (SEI) surface films at Li-metal anodes is crucial for ...
Cathode surface coatings present one of the most popular and effective solutions to suppress cathode...
Li-ion batteries are not only a technology for the future, they are indeed already the technology of...
The intrinsic stability of the 5V LiCoPO4 - LiCo2P3O10 thin film (carbon free) cathode material coat...
Surface properties of electrode materials play a critical role in the function of batteries. Therefo...
This overview addresses the atomistic aspects of degradation of layered LiMO2 (M = Ni, Co, Mn) oxide...