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Synthesis of Ionic Liquid Based Electrolytes, Assembly of Li-ion Batteries, and Measurements of Performance at High Temperature
Published on: December 20, 2016
Ionic-Liquid-Triggered Amorphization Engineers Symmetry-Breaking p-Block Bismuth Oxides with Electric Dipole Domains
Shunyou Hu1, Huanchun Zhang1, Yancen Li1
1School of Light Industry and Chemical Engineering, Dalian Polytechnic University, Dalian, China.
Abstract:
The practical application of lithium-sulfur batteries is severely hindered by the sluggish sulfur redox kinetics and the notorious lithium polysulfides (LiPSs) shuttle effect. Herein, we report a strategy utilizing an Fe-based ionic liquid to trigger amorphization, engineering symmetry-breaking p-block bismuth oxides on carbon nanofibers (CNFs) with electric dipole domains and asymmetric Fe1-O-Bi electronic bridges (Fe1⊂A/C-Bi2O3@CNFs). The amorphous phase induces significant electronic delocalization, facilitating substantial orbital overlap and creating electron transport channels for rapid redox of LiPSs. Specifically, the asymmetric Fe1-O-Bi electron bridges lower the p-band center through 3d-2p-6p multi-orbital coupling, optimizing the chemical adsorption of LiPSs and preventing active site poisoning. The electronic dipole domain functions as an electron/Li+ "pump" to enhance charge transfer and Li+ diffusion. In addition, the electric dipole domain induces dipole-dipole interactions, facilitating Li─S bond polarization and cleavage. As a result, the Fe1⊂A/C-Bi2O3-based cell achieved a cyclability of 698 mAh g-1 at 1.0 C over 1000 cycles with a degradation rate of 0.026% per cycle, and a high areal capacity of 6.8 mAh cm-2 under a sulfur loading of 7.4 mg cm-2. The strategy of constructing an electronic dipole domain through amorphization provides a new direction for the rational design of efficient catalysts for sulfur redox reactions.
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