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Simultaneously Regulating the Band Gap and Catalytic Activity of TiO2 via Embedded MoO2 Based on Interlaced CNT Carrier for Li-S Battery to Achieve Efficient Adsorption
Author(s) -
Tan Wang,
Sibo Zhang,
Xiaoshi Lang,
Lan Li,
Chuangang Yao,
Kedi Cai
Publication year - 2022
Publication title -
journal of the electrochemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.258
H-Index - 271
eISSN - 1945-7111
pISSN - 0013-4651
DOI - 10.1149/1945-7111/ac5850
Subject(s) - polysulfide , cathode , electrolyte , materials science , catalysis , adsorption , substrate (aquarium) , chemical engineering , band gap , anode , sulfur , lithium (medication) , nanotechnology , electrode , chemistry , optoelectronics , organic chemistry , medicine , oceanography , endocrinology , engineering , metallurgy , geology
To tackle the issues of lithium sulfur battery (Li-S), a strategy of simultaneous regulating the band gap and catalytic activity of TiO 2 via embedded MoO 2 based on interlaced carbon nanotubes carrier as substrate material to achieve efficient adsorption has been proposed. This substrate material is controlled to be nanosized with abundant catalytically active sites and widely-distributed pore through the cross-linked porous conductive skeleton, further promoting the electrolyte penetration and charge transfer. In addition, the introduction of MoO 2 tailors the Ti electronic states, so the substrate material renders high adsorption energy of −1.47 eV for Li 2 S 6 by theoretical calculation. Furthermore, the cathode exhibits high conversion efficiency from long-chain lithium polysulfide to Li 2 S (Q low /Q high (the conversion capacity of Li 2 S) is 2.91 at 0.1C) and excellent sulfur utilization and fast sulfur reaction kinetics. The cathode also exhibits a low-capacity fade and excellent cycling performance.

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