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用于高倍率和长寿命锂硫电池的有机-无机杂化乙醇酸氧钒实现的双位点吸附和高氧化还原活性

The Dual-Site Adsorption and High Redox Activity Enabled by Hybrid Organic-Inorganic Vanadyl Ethylene Glycolate for High-Rate and Long-Durability Lithium-Sulfur Batteries.

作者信息

Xiao Wei, Kiran Gundegowda Kalligowdanadoddi, Yoo Kisoo, Kim Jong-Hoon, Xu Hengyue

机构信息

Department of Mechanical Engineering, Yeungnam University, 280 Daehak-ro, Gyeongsan-si, Gyeongsanbuk-do, 38541, South Korea.

Energy Storage and Conversion Laboratory, Department of Electrical Engineering, Chungnam National University, Daejeon, 34134, Republic of Korea.

出版信息

Small. 2023 May;19(20):e2206750. doi: 10.1002/smll.202206750. Epub 2023 Jan 31.

Abstract

Transition metal oxides (TMOs) have attracted considerable attention owing to their strong anchoring ability and natural abundance. However, their single-site adsorption toward sulfur (S) species significantly lowers the possibility of S species reacting with Li in the electrolyte and increases the reaction barrier. This study investigates molecular modification by coupling the TMO structure with Li conductive polymer ligands, and vanadyl ethylene glycolate (VEG) is successfully synthesized by introducing organic ligands into the VO crystal structure. In addition to the strong interaction between the VO and lithium polysulfides via the V-S bond, the groups in the VEG polymer ligands can reversibly couple/decouple with Li in the electrolyte. Such dual-site adsorption enables a smooth dynamic adsorption-diffusion process. Accordingly, the VEG-based Li-S cells exhibit excellent rate reversibility, cyclic stability, and a long cycle life without the addition of conducting agents. Encouragingly, the VEG-based cells also exhibit close and excellent capacity decays of 0.081%, 0.078%, and 0.095% at 0, 25, and 50 °C (1 C for 200 cycles), respectively. This work provides a novel approach for developing advanced catalysts that can realize Li-S batteries with long-term durability, fast charge-discharge properties, and applications in a wide temperature range.

摘要

过渡金属氧化物(TMOs)因其强大的锚定能力和天然丰度而备受关注。然而,它们对硫(S)物种的单中心吸附显著降低了S物种在电解质中与锂反应的可能性,并增加了反应势垒。本研究通过将TMO结构与锂导电聚合物配体耦合来研究分子修饰,并且通过将有机配体引入VO晶体结构成功合成了乙二醇氧钒(VEG)。除了VO与多硫化锂之间通过V-S键产生的强相互作用外,VEG聚合物配体中的基团还可以在电解质中与锂可逆地耦合/解耦。这种双中心吸附实现了平稳的动态吸附-扩散过程。因此,基于VEG的锂硫电池在不添加导电剂的情况下表现出优异的倍率可逆性、循环稳定性和长循环寿命。令人鼓舞的是,基于VEG的电池在0、25和50°C(1 C下循环200次)时也分别表现出接近且优异的容量衰减,分别为0.081%、0.078%和0.095%。这项工作为开发先进催化剂提供了一种新方法,该催化剂可实现具有长期耐久性、快速充放电性能并能在宽温度范围内应用的锂硫电池。

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