| Literature DB >> 32628449 |
Yongzheng Fang, Ruqian Lian, Huipeng Li, Ying Zhang, Zhe Gong, Kai Zhu, Ke Ye, Jun Yan, Guiling Wang, Yu Gao, Yingjin Wei, Dianxue Cao.
Abstract
Sodium (Na) metal batteries have attracted increasing attention and gained rapid development. However, the processing, storing, and application of Na metal anode are restricted by its inherent stickiness and poor mechanical properties. Herein, an MXene-Ti3C2Tx-coated carbon cloth (Ti3C2Tx-CC) host is designed and synthesized, which shows highly metallic conductive and sodiophilic surface. After a thermal infusion treatment, a Na-Ti3C2Tx-CC composite with rigidity and bendability is obtained and employed as a metal anode for Na ion batteries. The Na-Ti3C2Tx-CC electrodes present stable cycling performance and high stripping/plating capacity in both ether-based (up to 5 mA∙h∙cm2) and carbonate-based (up to 8 mA∙h∙cm2) electrolyte. The fundamental protection mechanism of MXene-Ti3C2Tx is investigated. Ti3C2Tx efficiently induces Na's initial nucleation and laterally oriented deposition, which effectively avoids the generation of mossy/dendritic Na. The arrangement of Na atoms deposited on the MXene surface inherits the MXene atomic architecture, leading to a smooth "sheet-like" Na surface. Meanwhile, a flexible Na-based Na-Ti3C2Tx-CC‖Na3V2(PO4)3 device is assembled and exhibits capable electrochemical performance.Entities:
Year: 2020 PMID: 32628449 DOI: 10.1021/acsnano.0c03259
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881