The limited capacity of the positive electrode active material in non-aqueous rechargeable lithium-based batteries acts as a stumbling block for developing high-energy storage devices. Although lithium transition metal oxides are high-capacity electrochemical active materials, the structural instability at high cell voltages (e.g., >4.3 V) detrimentally affects the battery performance. Here, to circumvent this issue, we propose a Li1.46Ni0.32Mn1.2O4-x (0 < x < 4) material capable of forming a medium-entropy state spinel phase with partial cation disordering after initial delithiation. Via physicochemical measurements and theoretical calculations, we demonstrate the structural disorder in delithiated Li1.46Ni0.32Mn1.2O4-x, the direct shuttli...
In recent years, the concept of entropy stabilization of crystal structures in oxide systems has led...
Cation disorder is a phenomenon that is becoming increasingly important for the design of high-energ...
The oxygen redox reaction in lithium rich layered oxide battery cathode materials generates extra ca...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Materials Science and Engineeri...
Owing to their robust Li-ion storage properties induced by the entropy stabilization effect, transit...
The discovery of facile Li transport in disordered, Li-excess rocksalt materials has opened a vast n...
High-entropy oxides based on transition metals, such as Mg0.2Co0.2Ni0.2Cu0.2Zn0.2O (TM-HEO), have re...
First published: 04 September 2021The development of reliable and safe high-energy-density lithium-i...
Recent successes with disordered Li-excess materials and applications of percolation theory have hig...
Li-rich layered materials that have Co-free and Mn-rich 3d-transition metals have the potential to i...
Lithium-rich oxides are attracting intense interest as the next generation cathode materials for lit...
Rechargeable lithium-ion battery (LIB) cathodes consist of transition metal oxide material, which re...
Cation-disordered rocksalt (DRS) materials have shown good initial reversibility and facile Li$^{+}$...
High-entropy (HE) ceramics, by analogy with HE metallic alloys, are an emerging class of solid solut...
Cation disorder is a phenomenon that is becoming increasingly important for the design of high-energ...
In recent years, the concept of entropy stabilization of crystal structures in oxide systems has led...
Cation disorder is a phenomenon that is becoming increasingly important for the design of high-energ...
The oxygen redox reaction in lithium rich layered oxide battery cathode materials generates extra ca...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Materials Science and Engineeri...
Owing to their robust Li-ion storage properties induced by the entropy stabilization effect, transit...
The discovery of facile Li transport in disordered, Li-excess rocksalt materials has opened a vast n...
High-entropy oxides based on transition metals, such as Mg0.2Co0.2Ni0.2Cu0.2Zn0.2O (TM-HEO), have re...
First published: 04 September 2021The development of reliable and safe high-energy-density lithium-i...
Recent successes with disordered Li-excess materials and applications of percolation theory have hig...
Li-rich layered materials that have Co-free and Mn-rich 3d-transition metals have the potential to i...
Lithium-rich oxides are attracting intense interest as the next generation cathode materials for lit...
Rechargeable lithium-ion battery (LIB) cathodes consist of transition metal oxide material, which re...
Cation-disordered rocksalt (DRS) materials have shown good initial reversibility and facile Li$^{+}$...
High-entropy (HE) ceramics, by analogy with HE metallic alloys, are an emerging class of solid solut...
Cation disorder is a phenomenon that is becoming increasingly important for the design of high-energ...
In recent years, the concept of entropy stabilization of crystal structures in oxide systems has led...
Cation disorder is a phenomenon that is becoming increasingly important for the design of high-energ...
The oxygen redox reaction in lithium rich layered oxide battery cathode materials generates extra ca...