4.8 Article

Fluorine-Free Fabrication of MXene via Photo-Fenton Approach for Advanced Lithium-Sulfur Batteries

期刊

ACS NANO
卷 16, 期 5, 页码 7971-7981

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c00779

关键词

lithium-sulfur batteries; MXene; photo-Fenton; fluorine-free; soft chemistry

资金

  1. Scientific Research Foundation for Special Support Program for Exceptional Talents of Henan University [CX3050A0920027]
  2. National Natural Science Foundation of China [22175054]
  3. Key Scientific Research Projects of Higher Education in Henan Province [21zx008]
  4. Natural Science Foundation of Henan Province [202300410068]
  5. Postdoctoral Foundation of Henan Province [201902029]

向作者/读者索取更多资源

This paper presents a method for fabricating high-purity F-free Ti3C2 using the photo-Fenton reaction, which can serve as an ideal material for advanced flexible Li-S batteries.
The mainstream synthesis method for MXene is using aqueous fluorine-containing acidic solutions to eliminate the A-element layers from their MAX phases. However, this strategy is environmentally hazardous and impairs the material performance (e.g., supercapacitor and Li-S batteries) owing to the presence of -F terminations. Herein, we exploit a low-temperature soft chemistry approach based on photo-Fenton (P.F.) reaction for the fabrication of F-free Ti3C2 (Ff-Ti3C2) with high purity of 95%. It is confirmed that the continuous generation of highly reactive oxygen species (HO center dot and O-2(center dot-) radicals) during the P.F. reaction weakens the metallic Ti-Al bonds in the MAX phase and promotes the formation of high concentration OH- anions, which are conducive to the sequential topochemical deintercalation of Al layers. Moreover, the strengthened charge accumulation on the Ff-Ti3C2 surface creates rich electron reservoirs for actuating the Li-S chemistry, which not only strengthens the host-guest interactions but also propels the kinetics of the polysulfide conversion. Taking advantage of the superior mechanical robustness, better electrolyte wettability, and improved electrocatalytic activity, the resultant Ff-Ti3C2 can be used as an ideal sulfur host and Li-S chemistry mediator for advanced flexible Li-S batteries.

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