4.8 Article

Holey graphene anchoring of the monodispersed nano-sulfur with covalently-grafted polyaniline for lithium sulfur batteries

Journal

CARBON
Volume 188, Issue -, Pages 155-165

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.carbon.2021.11.037

Keywords

Polyaniline; Holey graphene; Nano-sulfur; Three-dimensional porous network; Li-S battery

Funding

  1. National Natural Science Foundation of China [12164013, 51662004]
  2. Natural Science Foun-dation of Guangxi Zhuang Autonomous Region of China [2018GXNSFAA281191, 2018GXNSFAA050014, 2020GXNSFAA159015, 2018GXNSFBA281111]
  3. Guangxi Key Labo-ratory of Optical and Electronic Materials and Devices [20KF-20]
  4. Innovation Project of Guangxi Graduate Education [YCSW2021207]
  5. Opening Project of Guangxi Key Laboratory of Calcium Carbonate Resources Comprehensive Utilization (Hezhou University) [HZXYKFKT201903]

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A novel egg tray hierarchical architecture was designed to confine and uniformly distribute nano-sulfur onto a 3D holey graphene framework with polyaniline crosslinking for high-performance Li-S batteries. The structure improves the contact between sulfur and graphene for effective charge transportation and provides buffering space for volume variations during electrochemical processes. The photo-assisted method developed in this study efficiently prohibits the dissolution and shuttle effect of polysulfide, resulting in excellent performance of the prepared electrode.
The homogeneous distribution of nano-sulfur onto 3D structures for the development of high-performance Li-S batteries (LSBs) is a top concern to solve the low utilization of sulfur, sluggish redox kinetics, and lithium polysulfide (LiPS) shuttle effect. Herein, a novel egg tray hierarchical architecture of confining and uniformly distributing nano-sulfur into a 3D holey graphene (HG) framework with polyaniline crosslinking (3DHG/NS/CPANI) via photo-assisted method was designed for high-mass-loading LSB cathode. Notably, HG contains both conductive skeletons as electron transfer paths and abundant void spaces in favor of homogenous sulfur anchoring. This configuration improves the contact between nano-sulfur and graphene for effective charge transportation and provides buffering space for volume variations during electrochemical processes. Moreover, a facile photo-assisted method was developed to cross link HG with polyaniline to act as an efficient polysulfide adsorbent, allowing nano-sulfur (NS) to be firmly embedded into the holes of graphene through physical and chemical effects, thus prohibiting the dissolution and shuttle effect of polysulfide. Considering these advantages, the prepared 3DHG/NS/CPANI electrode exhibited excellent performance with high sulfur utilization and specific capacity, resulting in specific discharge capacities at 0.5 and 1C of 1082 and 921 mA h(-1), respectively, and small capacity decay of 0.04% per cycle over 500 cycles at 1C. The strategy in this work, which synergistically combines morphology control, nano-sulfur positioning, and structural engineering to enhance the electrochemical performance for Li-S batteries, will offer a valuable reference to energy storage and conversion advances. (C) 2021 Elsevier Ltd. All rights reserved.

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