Structural water and disordered structure promote aqueous sodium-ion energy storage in sodium-birnessite

Author:

Shan XiaoqiangORCID,Guo Fenghua,Charles Daniel S.,Lebens-Higgins ZacharyORCID,Abdel Razek Sara,Wu Jinpeng,Xu Wenqian,Yang WanliORCID,Page Katharine L.ORCID,Neuefeind Joerg C.ORCID,Feygenson MikhailORCID,Piper Louis F. J.ORCID,Teng XiaoweiORCID

Abstract

Abstract Birnessite is a low-cost and environmentally friendly layered material for aqueous electrochemical energy storage; however, its storage capacity is poor due to its narrow potential window in aqueous electrolyte and low redox activity. Herein we report a sodium rich disordered birnessite (Na0.27MnO2) for aqueous sodium-ion electrochemical storage with a much-enhanced capacity and cycling life (83 mAh g−1 after 5000 cycles in full-cell). Neutron total scattering and in situ X-ray diffraction measurements show that both structural water and the Na-rich disordered structure contribute to the improved electrochemical performance of current cathode material. Particularly, the co-deintercalation of the hydrated water and sodium-ion during the high potential charging process results in the shrinkage of interlayer distance and thus stabilizes the layered structure. Our results provide a genuine insight into how structural disordering and structural water improve sodium-ion storage in a layered electrode and open up an exciting direction for improving aqueous batteries.

Funder

DOE | Office of Science

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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