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Published on: July 12, 2016
Selective Catalysis-Mediated Interface to Stabilize Antimony Atom-Cluster Anode for Robust Potassium-Ion Batteries
Song Chen1, Fangrui Yu1, Hongli Deng1
1State Key Laboratory for Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, School of Physics and Electronics, Hunan Key Laboratory of Two-Dimensional Materials, Chongqing Research Institute, Hunan University, Changsha, 410082, P.R. China.
Abstract:
Controlling the electrode-electrolyte interfacial behavior is crucial for achieving a high-quality solid electrolyte interphase (SEI) and ensuring sustainable battery performance. Here, we propose a selective catalysis strategy to stabilize antimony atom-cluster (SbSA-AC) anode/electrolyte interface for robust potassium-ion batteries (PIBs). Specifically, the electrode featuring SbSA-AC in porous carbon (SbSA-AC/PC) as "electrocatalyst" unduly catalyzes the reduction of the dimethyl ether-based electrolyte, resulting in loose SEI layer and rapid capacity decay. While in triethyl phosphate-based electrolyte, the SbSA-AC/PC selectively catalyzes the preferential decomposition of anions and the polymerization of solvent molecules, leading to a bilayer SEI with inner inorganic-rich components and an outer elastic polyphosphate layer, which improve the interface stability and electrochemical performance. Thus, the SbSA-AC/PC maintains a long-term stability over 12 months and demonstrates long-cycling stability over 4000 cycles with a capacity retention of 96%. This research establishes a correlation between electrode/electrolyte interactions and SEI characteristics, providing a new insight for advanced interface engineering in high-performance PIBs and beyond.
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