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Synergistic Polarization Engineering on Batio3 Bulk and Surface for Boosting Redox Kinetics of Polysulfides in Lithium–Sulfur Batteries

31 Pages Posted: 29 Sep 2023 Publication Status: Published

See all articles by Li Ma

Li Ma

Central South University

Chunxiao Zhang

Central South University

Youquan Zhang

Central South University

Shuai Zhang

Central South University

Baolei Xu

Central South University

Mingyang Yan

Central South University

Yuejiao Chen

Central South University

Libao Chen

Central South University

Li Wang

Central South University - State Key Laboratory of Powder Metallurgy

Liangjun Zhou

Central South University

Weifeng Wei

Central South University - State Key Laboratory of Powder Metallurgy

Abstract

The notorious shuttle effect of intermediate lithium polysulfides and the sluggish kinetics of sulfur redox reactions restrict the further development of high-energy-density lithium-sulfur (Li–S) batteries. Herein, a strategy of synergistic polarization engineering on ferroelectric barium titanate (BaTiO3) bulk and surface is reported, aiming to collectively improve the adsorption-catalytic ability of ferroelectric BaTiO3 to polysulfides. Differential phase contrast-scanning transmission electron microscopy (DPC-STEM) demonstrates that the introduction of ultrathin heteroepitaxial TiOx surface can give rise to the surface local electric field differing from bulk internal polarization field. Experimental and theoretical results further reveal that synergistic polarization engineering by integrating the enhanced bulk internal polarization field with the surface local electric field can collaboratively realize excellent adsorption-catalytic activity resulting from rapid electrons transfer and optimized active sites. As a result, employing BaTiO3@TiOx modified separator can endow the batteries with favorable rate performance (the discharge specific capacity achieves 710 mAh g-1 at 4 C) and substantial enhancement on cyclic performance (64.5% capacity retention at 2 C over 500 cycles). Impressively, even at high sulfur loading of 2.5 mg cm-2, the BaTiO3@TiOx-based cell still stabilizes 78% capacity retention with at 1 C over 150 cycles, showing the practical potential of BaTiO3@TiOx in optimizing catalytic efficiency.

Keywords: Li-S batteries, heteroepitaxial TiOx surface, synergistic polarization, enhanced internal polarization field, improved redox kinetics

Suggested Citation

Ma, Li and Zhang, Chunxiao and Zhang, Youquan and Zhang, Shuai and Xu, Baolei and Yan, Mingyang and Chen, Yuejiao and Chen, Libao and Wang, Li and Zhou, Liangjun and Wei, Weifeng, Synergistic Polarization Engineering on Batio3 Bulk and Surface for Boosting Redox Kinetics of Polysulfides in Lithium–Sulfur Batteries. Available at SSRN: https://ssrn.com/abstract=4586903 or http://dx.doi.org/10.2139/ssrn.4586903

Li Ma

Central South University ( email )

Changsha, 410083
China

Chunxiao Zhang

Central South University ( email )

Changsha, 410083
China

Youquan Zhang

Central South University ( email )

Changsha, 410083
China

Shuai Zhang

Central South University ( email )

Changsha, 410083
China

Baolei Xu

Central South University ( email )

Changsha, 410083
China

Mingyang Yan

Central South University ( email )

Changsha, 410083
China

Yuejiao Chen

Central South University ( email )

Changsha, 410083
China

Libao Chen

Central South University ( email )

Changsha, 410083
China

Li Wang

Central South University - State Key Laboratory of Powder Metallurgy ( email )

China

Liangjun Zhou (Contact Author)

Central South University ( email )

Changsha, 410083
China

Weifeng Wei

Central South University - State Key Laboratory of Powder Metallurgy ( email )

Changsha, Hunan 410083
China

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