TY - JOUR AU - Ning Li AU - Meiling Sun AU - Wang Hay Kan AU - Zengqing Zhuo AU - Sooyeon Hwang AU - Sara E Renfrew AU - Maxim Avdeev AU - Ashfia Huq AU - Bryan D McCloskey AU - Dong Su AU - Wanli Yang AU - Wei Tong AB -
The dependence on lithium-ion batteries leads to a pressing demand for advanced cathode materials. We demonstrate a new concept of layered-rocksalt intergrown structure that harnesses the combined figures of merit from each phase, including high capacity of layered and rocksalt phases, good kinetics of layered oxide and structural advantage of rocksalt. Based on this concept, lithium nickel ruthenium oxide of a main layered structure (R3¯3¯m) with intergrown rocksalt (Fm3¯3¯m) is developed, which delivers a high capacity with good rate performance. The interwoven rocksalt structure successfully prevents the anisotropic structural change that is typical for layered oxide, enabling a nearly zero-strain operation upon high-capacity cycling. Furthermore, a design principle is successfully extrapolated and experimentally verified in a series of compositions. Here, we show the success of such layered-rocksalt intergrown structure exemplifies a new battery electrode design concept and opens up a vast space of compositions to develop high-performance intergrown cathode materials.
BT - Nature Communications DA - 12/2021 DO - 10.1038/s41467-021-22527-z IS - 1 LA - eng N2 -The dependence on lithium-ion batteries leads to a pressing demand for advanced cathode materials. We demonstrate a new concept of layered-rocksalt intergrown structure that harnesses the combined figures of merit from each phase, including high capacity of layered and rocksalt phases, good kinetics of layered oxide and structural advantage of rocksalt. Based on this concept, lithium nickel ruthenium oxide of a main layered structure (R3¯3¯m) with intergrown rocksalt (Fm3¯3¯m) is developed, which delivers a high capacity with good rate performance. The interwoven rocksalt structure successfully prevents the anisotropic structural change that is typical for layered oxide, enabling a nearly zero-strain operation upon high-capacity cycling. Furthermore, a design principle is successfully extrapolated and experimentally verified in a series of compositions. Here, we show the success of such layered-rocksalt intergrown structure exemplifies a new battery electrode design concept and opens up a vast space of compositions to develop high-performance intergrown cathode materials.
PY - 2021 ST - Nat Commun T2 - Nature Communications TI - Layered-rocksalt intergrown cathode for high-capacity zero-strain battery operation UR - https://www.nature.com/articles/s41467-021-22527-z VL - 12 ER -