材料科学
电催化剂
电池(电)
电解质
化学工程
纳米颗粒
催化作用
电流密度
纳米技术
碳纤维
多孔性
电导率
电化学
锌
兴奋剂
电极
冶金
光电子学
复合材料
有机化学
复合数
功率(物理)
化学
物理
量子力学
物理化学
工程类
作者
Zheng Liu,Yanfei Zhu,Kuikui Xiao,Yali Xu,Yufan Peng,Jilei Liu,Xiaohua Chen
标识
DOI:10.1021/acsami.1c03220
摘要
Designing low-cost preparation of high-activity electrocatalysts with excellent stability is the route one must take to fully realize large-scale application implementation of zinc–air batteries. 3D nitrogen-doped nanocarbons with transition metals or their derivatives encapsulated in show promising potential in the field of non-precious metal oxygen electrocatalysis. Herein, we report a simple, economical, and large-scale production method to construct worm-like porous nitrogen-doped carbon with in situ-grown carbon nanotubes and uniformly embedded Fe/Fe3C nanoparticles. It not only has high conductivity owing to the nitrogen-doped nature but also has ample active sites and electrolyte diffusion channels benefitting from the uniformly distributed heterostructural Fe/Fe3C nanoparticles and discrete hierarchically porous structures. When used as catalyst materials for a zinc–air battery, an energy density of 719.1 Wh kg–1 and a peak power density of 101.3 mW cm–2 at a 50 mA cm–2 discharge current density is achieved. Additionally, throughout charging and discharging for 200 cycles at a current density of 20 mA cm–2, the charge/discharge voltage gap is nearly constant.
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