Ouyang Yue, Zong Wei, Zhu Xiaobo, Mo Lulu, Chao Guojie, Fan Wei, Lai Feili, Miao Yue-E, Liu Tianxi, Yu Yan
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, 2999 North Renmin Road, Shanghai, 201620, P. R. China.
The Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University, Wuxi, Jiangsu, 214122, P. R. China.
Adv Sci (Weinh). 2022 Sep;9(26):e2203181. doi: 10.1002/advs.202203181. Epub 2022 Jul 21.
Constructing intimate coupling between transition metal and carbon nanomaterials is an effective means to achieve strong immobilization of lithium polysulfides (LiPSs) in the applications of lithium-sulfur (LiS) batteries. Herein, a universal spinning-coordinating strategy of constructing continuous metal-nitrogen-carbon (MNC, M = Co, Fe, Ni) heterointerface is reported to covalently bond metal nanoparticles with nitrogen-doped porous carbon fibers (denoted as M/MN@NPCF). Guided by theoretical simulations, the Co/CoN@NPCF hybrid is synthesized as a proof of concept and used as an efficient sulfur host material. The polarized CoNC bridging bonds can induce rapid electron transfer from Co nanoparticles to the NPCF skeleton, promoting the chemical anchoring of LiPSs to improve sulfur utilization. Hence, the as-assembled LiS battery presents a remarkable capacity of 781 mAh g at 2.0 C and a prominent cycling lifespan with a low decay rate of only 0.032% per cycle. Additionally, a well-designed Co/CoN@NPCF-S electrode with a high sulfur loading of 7.1 mg cm is further achieved by 3D printing technique, which demonstrates an excellent areal capacity of 6.4 mAh cm at 0.2 C under a lean-electrolyte condition. The acquired insights into strongly coupled continuous heterointerface in this work pave the way for rational designs of host materials in LiS systems.
在锂硫(Li-S)电池应用中,构建过渡金属与碳纳米材料之间的紧密耦合是实现多硫化锂(LiPSs)强固定化的有效手段。在此,报道了一种构建连续金属 - 氮 - 碳(M-N-C,M = Co、Fe、Ni)异质界面的通用纺丝配位策略,以将金属纳米颗粒与氮掺杂多孔碳纤维共价键合(表示为M/M-N@NPCF)。在理论模拟的指导下,合成了Co/Co-N@NPCF杂化物作为概念验证,并用作高效的硫主体材料。极化的Co-N-C桥键可诱导电子从Co纳米颗粒快速转移到NPCF骨架,促进LiPSs的化学锚定以提高硫利用率。因此,组装后的Li-S电池在2.0 C时具有781 mAh g的显著容量和出色的循环寿命,每循环的低衰减率仅为0.032%。此外,通过3D打印技术进一步实现了具有7.1 mg cm高硫负载的精心设计的Co/Co-N@NPCF-S电极,在贫电解质条件下,该电极在0.2 C时表现出6.4 mAh cm的优异面积容量。这项工作中获得的关于强耦合连续异质界面的见解为Li-S系统中主体材料的合理设计铺平了道路。