4.8 Article

Binary Metal Single Atom Electrocatalysts with Synergistic Catalytic Activity toward High-Rate and High Areal-Capacity Lithium-Sulfur Batteries

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 32, Issue 51, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202208666

Keywords

binary metal single atoms; catalytic activities; hierarchical porous carbon skeletons; lithium-sulfur batteries; synergistic effects

Funding

  1. National Natural Science Foundation of China [22005003]
  2. University Synergy Innovation Program of Anhui Province [GXXT-2021-020]
  3. Yong Scientific Foundation of Anhui University of Technology [DT2100000947]
  4. National Science Foundation of Anhui [2108085QE188]
  5. Natural Science Foundation of Anhui Provincial Education Department [KJ2021A0361]
  6. Scientific Research Foundation of Anhui University of Technology for Talent Introduction [DT19100069]
  7. Yong Scientific Research Foundation of Anhui University of Technology [QZ202003]
  8. Beijing Outstanding Young Scientists Program [BJJWZYJH01201910007023]

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A highly efficient electrocatalyst Fe/Co-N-HPC is constructed to capture and catalyze the conversion of polysulfides, thereby improving the performance of Li-S batteries, including outstanding rate capability and long-term cyclic stability.
Lithium-sulfur (Li-S) batteries with high theoretical energy density have been long considered as an alternative energy storage device to lithium-ion batteries. Nevertheless, the polysulfide shuttle effects trigger fast capacity decay and short battery lifespan, severely hampering their practical utilizations. Herein, an efficient electrocatalyst comprising of nitrogen (N)-coordinated binary metal single atoms (SAs) implanted within a hierarchical porous carbon skeleton (Fe/Co-N-HPC) is constructed to trap and catalyze polysulfides conversion through a separator coating strategy. It is demonstrated that the introduction of Co atom can enrich the electron number of Fe active center, thereby realizing the distinct synergistic catalytic effect of binary metal SAs and improving the bidirectional catalysis of Li-S redox reaction. As a result, Li-S batteries with the Fe/Co-N-HPC-modified separator exhibit outstanding rate capability (740 mAh g(-1) at 5.0 C), and superior long-term cyclic stability (694 mAh g(-1) after 600 cycles at 1.0 C). Increasing the sulfur loading to 4.8 mg cm(-2), a remarkable areal capacity of 6.13 mAh cm(-2) is achieved. Furthermore, in situ X-ray diffraction and theoretical simulation results verify the catalysis mechanism of binary metal SAs by changing the rate-determining steps, providing new directions for constructing high-performance Li-S batteries.

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