Affiliation:
1. Wenzhou University
2. Harbin Institute of Technology
Abstract
AbstractDeveloping the high-capacity anode materials such as conversion-type metal oxides which possess both Li and Na storage activity is very practical for the high-energy LIBs/SIBs. Herein, we use NiCo2O4anodes as a model to investigate the morphology evolution which accounts for the poor cycling performance and understand the effect of structure optimization on the electrochemical performance. Three NiCo2O4samples with different morphologies of microspheres, nanospheres and nanosheets are synthesized. Firstly, the serious structural degradation of NiCo2O4microspheres is observed whether it works as a LIB or SIB anode. In addition, a significant difference between the lithiation and sodiation capacity of NiCo2O4materials reveals Na+ions only partially intercalated in NiCo2O4and the conversion reaction limited by the strain. Next, NiCo2O4nanosheets on Ni foam as a binder-free anode for LIBs are investigated which suggest the positive effect of 3D nanostructures on the morphology stability. As a result, NiCo2O4nanosheets deliver a high lithiation capacity of 1092 mAh g− 1after 100 cycles at 0.5 A g− 1and an excellent rate capacity of 643 mAh g− 1at 4 A g− 1. Finally, NiCo2O4nanospheres are evaluted as a SIB anode which indicate the smaller particle size of active materials is beneficial to the release of stress and structure stability during discharge-charge processes. A rational design of the electrode’ architecture is very important for the conversion-type 3d transition metal oxide anodes for advanced LIBs and SIBs.
Publisher
Research Square Platform LLC