| Literature DB >> 32284597 |
Youbing Li1,2, Hui Shao3,4, Zifeng Lin5, Jun Lu6, Liyuan Liu3,4, Benjamin Duployer3,4, Per O Å Persson6, Per Eklund6, Lars Hultman6, Mian Li1, Ke Chen1, Xian-Hu Zha1, Shiyu Du1, Patrick Rozier3,4, Zhifang Chai1, Encarnacion Raymundo-Piñero4,7, Pierre-Louis Taberna3,4, Patrice Simon8,9,10, Qing Huang11.
Abstract
Two-dimensional carbides and nitrides of transition metals, known as MXenes, are a fast-growing family of materials that have attracted attention as energy storage materials. MXenes are mainly prepared from Al-containing MAX phases (where A = Al) by Al dissolution in F-containing solution; most other MAX phases have not been explored. Here a redox-controlled A-site etching of MAX phases in Lewis acidic melts is proposed and validated by the synthesis of various MXenes from unconventional MAX-phase precursors with A elements Si, Zn and Ga. A negative electrode of Ti3C2 MXene material obtained through this molten salt synthesis method delivers a Li+ storage capacity of up to 738 C g-1 (205 mAh g-1) with high charge-discharge rate and a pseudocapacitive-like electrochemical signature in 1 M LiPF6 carbonate-based electrolyte. MXenes prepared via this molten salt synthesis route may prove suitable for use as high-rate negative-electrode materials for electrochemical energy storage applications.Year: 2020 PMID: 32284597 DOI: 10.1038/s41563-020-0657-0
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841