材料科学
尖晶石
八面体
电解质
锂(药物)
阴极
电催化剂
多孔性
析氧
非阻塞I/O
电池(电)
催化作用
电极
氧化物
化学工程
纳米技术
化学物理
结晶学
电化学
复合材料
物理化学
晶体结构
热力学
冶金
内分泌学
功率(物理)
工程类
化学
物理
医学
生物化学
作者
Biao He,Jun Wang,Jiaqing Liu,Yong Li,Qishun Huang,Yue Hou,Gaoyang Li,Jiajia Li,Runhao Zhang,Junjie Zhou,Wei Tian,Yong Du,Feng Dang,Hongchao Wang,Biao Kong
标识
DOI:10.1002/aenm.201904262
摘要
Abstract Promising lithium–oxygen batteries (LOBs) with extra‐high capacities have attracted increasing attention for use in future electric devices. However, the challenges facing this complicated battery system still limit their practical applications. These challenges mainly consist of inefficient product evolution and low‐activity catalysts. In present work, a cation occupying, modified 3D‐architecture NiFeO cubic spinel is constructed via superassembly strategy to achieve a high rate, stable electrocatalyst for LOBs. The octahedron predominant spinel provides a stable polycrystal structure and optimized electronic structure, which dominates the discharge/charge products evolution with multiformation kinetics of crystal Li 2 O 2 and Li 2− x O 2 at low and high rate conditions and energetically favors the mass transport between the electrode/electrolyte interface. Simultaneously, the porous NiFeO framework provides adequate spaces for Li 2 O 2 accommodation and complex channels for sufficient electrolyte, oxygen, and ion transportation, which dramatically alter the cathode catalysis for an unprecedented performance. As a consequence, a large specific capacity of 23413 mAh g −1 and an excellent cyclability of 193 cycles at a high current of 1000 mA g −1 , and 300 cycles at a current of 500 mA g −1 , are achieved. The present work provides intrinsic insights into designing high‐performance metal oxide electrocatalysts for Li–O 2 batteries with fine‐tuned electronic and frame structure.
科研通智能强力驱动
Strongly Powered by AbleSci AI