| Literature DB >> 35477113 |
Ruiting Guo1, Xiong Liu2, Fanjie Xia1, Yalong Jiang1, Huazhang Zhang3, Meng Huang1, Chaojiang Niu2, Jinsong Wu1, Yan Zhao1, Xuanpeng Wang3,4, Chunhua Han1, Liqiang Mai1,4,5.
Abstract
Uneven distribution of electric fields at the electrolyte-anode interface and associated Zn dendrite growth is one of the most critical barriers that limit the life span of aqueous zinc-ion batteries. Herein, new-type Zn-A-O (A = Si, Ti) interface layers with thin and uniform thickness, porosity, and hydrophilicity properties are developed to realize homogeneous and smooth Zn plating. For ZnSiO3 nanosheet arrays on Zn foil (Zn@ZSO), their formation follows an "etching-nucleation-growth" mechanism that is confirmed by a well-designed Zn-island-based identical-location microscopy method, the geometric area of which is up to 1000 cm2 in one-pot synthesis based on a low-temperature wet-chemical method. Guided by the structural advantages of the ZSO layer, the Zn2+ flux gets equalized. Besides ultralow polarization, the life spans of symmetric cells and full cells coupled with a high-mass-loading K0.27 MnO2 ·0.54H2 O (8 mg cm-2 ) cathode, are increased by 3-7 times with the Zn@ZSO anode. Moreover, the large-scale preparation of Zn@ZSO foil contributes to a 0.5 Ah multilayer pouch cell with high performance, further confirming its prospects for practical application.Entities:
Keywords: high-capacity pouch cells; integration mechanisms; large-scale production; uniform Zn plating; zinc metasilicate coatings
Year: 2022 PMID: 35477113 DOI: 10.1002/adma.202202188
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849