Center for Nanoscale Materials, Argonne National Laboratory , Argonne, Illinois 60439, United States.
Nano Lett. 2017 May 10;17(5):2959-2966. doi: 10.1021/acs.nanolett.7b00207. Epub 2017 Apr 14.
For the promotion of lithium-oxygen batteries available for practical applications, the development of advanced cathode catalysts with low-cost, high activity, and stable structural properties is demanded. Such development is rooted on certain intelligent catalyst-electrode design that fundamentally facilitates electronic and ionic transport and improves oxygen diffusivity in a porous environment. Here we design a biphasic nitrogen-doped cobalt@graphene multiple-capsule heterostructure, combined with a flexible, stable porous electrode architecture, and apply it as promising cathodes for lithium-oxygen cells. The biphasic nitrogen-doping feature improves the electric conductivity and catalytic activity; the multiple-nanocapsule configuration makes high/uniform electroactive zones possible; furthermore, the colander-like porous electrode facilitates the oxygen diffusion, catalytic reaction, and stable deposition of discharge products. As a result, the electrode exhibits much improved electrocatalytic properties associated with unique morphologies of electrochemically grown lithium peroxides.
为了推动可实际应用的锂-氧电池的发展,需要开发具有低成本、高活性和稳定结构特性的先进阴极催化剂。这种开发基于某些智能催化剂-电极设计,从根本上促进了电子和离子的传输,并提高了多孔环境中的氧气扩散率。在这里,我们设计了一种具有两相氮掺杂的钴/石墨烯多胶囊杂化结构,结合了灵活、稳定的多孔电极结构,并将其作为有前途的锂-氧电池阴极。两相氮掺杂提高了导电性和催化活性;多纳米胶囊结构使高/均匀的电活性区成为可能;此外,漏勺状多孔电极促进了氧气扩散、催化反应和放电产物的稳定沉积。因此,该电极表现出与电化学生长的过氧化锂独特形态相关的显著改进的电催化性能。