There is an urgent need for low-cost, resource-friendly, high-energy-density cathode materials for lithium-ion batteries to satisfy the rapidly increasing need for electrical energy storage. To replace the nickel and cobalt, which are limited resources and are associated with safety problems, in current lithium-ion batteries, high-capacity cathodes based on manganese would be particularly desirable owing to the low cost and high abundance of the metal, and the intrinsic stability of the Mn4+ oxidation state. Here we present a strategy of combining high-valent cations and the partial substitution of fluorine for oxygen in a disordered-rocksalt structure to incorporate the reversible Mn2+/Mn4+ double redox couple into lithium-excess cathode m...
Cobalt-free layered lithium-rich nickel manganese oxides, Li[LixNiyMn1-x-y]O-2 (LLNMO), are promisin...
Li-rich Mn-based oxides (LRMO) are promising cathode materials to build next-generation lithium-ion ...
We report excellent cycling performance for P2–Na<sub>0.6</sub>Li<sub>0.2</sub>Mn<sub>0.8</sub>O<sub...
Cation-disordered rocksalt (DRS) materials have shown good initial reversibility and facile Li$^{+}$...
A disordered rocksalt Li-excess cathode material, Li1.25Nb0.25Mn0.5O2, was synthesized and investiga...
A disordered rocksalt Li-excess cathode material, Li1.25Nb0.25Mn0.5O2, was synthesized and investiga...
The discovery of facile Li transport in disordered, Li-excess rocksalt materials has opened a vast n...
Mn-based Li-excess cation-disordered rocksalt (DRX) oxyfluorides are promising candidates for next-g...
Cation-disordered rocksalts (DRXs) have emerged as a new class of high-capacity Li-ion cathode mater...
The rapid market growth of rechargeable batteries requires electrode materials that combine high pow...
The quantity of charge stored in transition metal oxide intercalation cathodes for Li or Na batterie...
Mn-redox-based oxides and oxyfluorides are considered the most promising earth-abundant high-energy ...
Lithium-rich transition-metal-oxide cathodes are among the most promising materials for next generat...
Cobalt-free layered lithium-rich nickel manganese oxides, Li[LixNiyMn1−x−y]O2 (LLNMO), are promising...
The demand for high-performance lithium-ion batteries and thus efficient cathode materials is steadi...
Cobalt-free layered lithium-rich nickel manganese oxides, Li[LixNiyMn1-x-y]O-2 (LLNMO), are promisin...
Li-rich Mn-based oxides (LRMO) are promising cathode materials to build next-generation lithium-ion ...
We report excellent cycling performance for P2–Na<sub>0.6</sub>Li<sub>0.2</sub>Mn<sub>0.8</sub>O<sub...
Cation-disordered rocksalt (DRS) materials have shown good initial reversibility and facile Li$^{+}$...
A disordered rocksalt Li-excess cathode material, Li1.25Nb0.25Mn0.5O2, was synthesized and investiga...
A disordered rocksalt Li-excess cathode material, Li1.25Nb0.25Mn0.5O2, was synthesized and investiga...
The discovery of facile Li transport in disordered, Li-excess rocksalt materials has opened a vast n...
Mn-based Li-excess cation-disordered rocksalt (DRX) oxyfluorides are promising candidates for next-g...
Cation-disordered rocksalts (DRXs) have emerged as a new class of high-capacity Li-ion cathode mater...
The rapid market growth of rechargeable batteries requires electrode materials that combine high pow...
The quantity of charge stored in transition metal oxide intercalation cathodes for Li or Na batterie...
Mn-redox-based oxides and oxyfluorides are considered the most promising earth-abundant high-energy ...
Lithium-rich transition-metal-oxide cathodes are among the most promising materials for next generat...
Cobalt-free layered lithium-rich nickel manganese oxides, Li[LixNiyMn1−x−y]O2 (LLNMO), are promising...
The demand for high-performance lithium-ion batteries and thus efficient cathode materials is steadi...
Cobalt-free layered lithium-rich nickel manganese oxides, Li[LixNiyMn1-x-y]O-2 (LLNMO), are promisin...
Li-rich Mn-based oxides (LRMO) are promising cathode materials to build next-generation lithium-ion ...
We report excellent cycling performance for P2–Na<sub>0.6</sub>Li<sub>0.2</sub>Mn<sub>0.8</sub>O<sub...