Beijing Key Laboratory of Green Chemical Reaction Engineering and Technology, Department of Chemical Engineering, Tsinghua University, Beijing, 100084, China.
Advanced Research Institute of Multidisciplinary Science, Beijing Institute of Technology, Beijing, 100081, China.
Adv Mater. 2018 Jan;30(2). doi: 10.1002/adma.201705219. Epub 2017 Nov 27.
Lithium-sulfur (LiS) batteries are strongly considered as the next-generation rechargeable cells. However, both the shuttle of lithium polysulfides (LiPSs) and sluggish kinetics in random deposition of lithium sulfides (Li S) significantly degrade the capacity, rate performance, and cycling life of LiS cells. Herein, bifunctional Ba Sr Co Fe O perovskite nanoparticles (PrNPs) are proposed as a promoter to immobilize LiPSs and guide the deposition of Li S in a LiS cell. The oxygen vacancy in PrNPs increases the metal reactivity to anchor LiPSs, and co-existence of lithiophilic (O) and sulfiphilic (Sr) sites in PrNP favor the dual-bonding (LiO and SrS bonds) to anchor LiPSs. The high catalytic nature of PrNP facilitates the kinetics of LiPS redox reaction. The PrNP with intrinsic LiPS affinity serves as nucleation sites for Li S deposition and guides its uniform propagation. Therefore, the bifunctional LiPS promoter in LiS cell yields high rate performance and ultralow capacity decay rate of 0.062% (a quarter of pristine LiS cells). The proposed strategy to immobilize LiPSs, promotes the conversion of LiPS, and regulates deposition of Li S by an emerging perovskite promoter and is also expected to be applied in other energy conversion and storage devices based on multi-electron redox reactions.
锂硫(LiS)电池被强烈认为是下一代可充电电池。然而,多硫化锂(LiPSs)的穿梭和随机沉积的硫化锂(Li S)动力学缓慢,显著降低了 LiS 电池的容量、倍率性能和循环寿命。在此,我们提出了一种双功能钡锶钴铁氧体钙钛矿纳米粒子(PrNP)作为促进剂,用于固定 LiPSs 并引导 Li S 在 LiS 电池中的沉积。PrNP 中的氧空位增加了金属的反应性,以固定 LiPSs,并且 PrNP 中同时存在亲锂(O)和亲硫(Sr)位点,有利于双重键合(LiO 和 SrS 键)来固定 LiPSs。PrNP 的高催化性质有利于 LiPS 氧化还原反应的动力学。具有内在 LiPS 亲和力的 PrNP 作为 Li S 沉积的成核位点,并引导其均匀扩展。因此,LiS 电池中的双功能 LiPS 促进剂具有高倍率性能和超低的容量衰减率(0.062%,为原始 LiS 电池的四分之一)。我们提出的固定 LiPSs 的策略、促进 LiPS 的转化以及通过新兴的钙钛矿促进剂来调节 Li S 的沉积,预计也将应用于基于多电子氧化还原反应的其他能量转换和存储设备中。