4.8 Article

Unraveling and Regulating Self-Discharge Behavior of Ti3C2Tx MXene-Based Supercapacitors

期刊

ACS NANO
卷 14, 期 4, 页码 4916-4924

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.0c01056

关键词

supercapacitors; self-discharge behavior; self-discharge mechanism; MXene; chemically interface-tailored engineering

资金

  1. National Natural Science Foundation of China [51977185, 51972277, 51602265]
  2. Sichuan Science and Technology Program [2018RZ0074]
  3. Cultivation Program for the Excellent Doctoral Dissertation of Southwest Jiaotong University [D-YB201709]

向作者/读者索取更多资源

Rich chemistry and surface functionalization provide MXenes enhanced electrochemical activity yet severely exacerbate their self-discharge behavior in supercapacitors. However, this self-discharge behavior and its related mechanism are still remaining issues. Herein, we propose a chemically interface-tailored regulation strategy to successfully unravel and efficiently alleviate the self-discharge behavior of Ti3C2Tx MXene-based supercapacitors. As a result, Ti3C2Tx MXenes with fewer F elements (similar to 0.65 atom %) show a positive self-discharge rate decline of similar to 20% in comparison with MXenes with higher F elements (similar to 8.09 atom %). Such decline of the F elements can highly increase tight-bonding ions corresponding to an individual self-discharge process, naturally resulting in a dramatic 50% increase of the transition potential (V-T). Therefore, the mixed self-discharge rate from both tight-bonding (contain fewer F elements) and loose-bonding ions (contain more F elements) is accordingly lowered. Through chemically interface-tailored engineering, the significantly changed average oxidation state and local coordination information on MXene affected the interaction of ion counterparts, which was evidently revealed by X-ray absorption fine structures. Theoretically, this greatly improved self-discharge performance was proven to be from higher adsorption energy between the interface of the electrode and the electrolyte by density functional theory. Therefore, this chemically interface-tailored regulation strategy can guide the design of high-performance MXene-based supercapacitors with low self-discharge behavior and will promote its wider commercial applications.

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