TY - JOUR
T1 - Ni-Doped Cobalt-Cobalt Nitride Heterostructure Arrays for High-Power Supercapacitors
AU - Liu, Ximeng
AU - Zang, Wenjie
AU - Guan, Cao
AU - Zhang, Lei
AU - Qian, Yuhong
AU - Elshahawy, Abdelnaby M.
AU - Zhao, Dan
AU - Pennycook, Stephen J.
AU - Wang, John
N1 - Publisher Copyright:
© Copyright 2018 American Chemical Society.
PY - 2018/10/12
Y1 - 2018/10/12
N2 - Metal nitrides are widely recognized as a class of desirable supercapacitor electrode materials owing to their high electrical conductivity and structural stability. Embedding metal nanoparticles in nitrides can further enhance the conductivity for electron transport. Herein, a heterostructure consisting of Ni-doped Co-Co2N is synthesized by simple thermal annealing of metal-organic framework (MOF)-derived NiCo2O4 in ammonia atmosphere, in the process of which the MOF-derived two-dimensional (2D) nanoflake arrays were well retained, and the metal-metal nitride heterostructure was well established when annealed at 350 °C. Benefiting from the MOF-derived 2D nanoflake morphology and the metal-metal nitride heterostructure, the Ni-doped Co-Co2N delivers a specific capacity of 361.93 C/g. A full cell test has been conducted using Ni-doped Co-Co2N as the positive electrode and porous carbon as the negative electrode, and it shows an energy density of 20.4 Wh/kg at the power density of 9.85 kW/kg with 82.4% of initial energy density being retained after 5000 cycles.
AB - Metal nitrides are widely recognized as a class of desirable supercapacitor electrode materials owing to their high electrical conductivity and structural stability. Embedding metal nanoparticles in nitrides can further enhance the conductivity for electron transport. Herein, a heterostructure consisting of Ni-doped Co-Co2N is synthesized by simple thermal annealing of metal-organic framework (MOF)-derived NiCo2O4 in ammonia atmosphere, in the process of which the MOF-derived two-dimensional (2D) nanoflake arrays were well retained, and the metal-metal nitride heterostructure was well established when annealed at 350 °C. Benefiting from the MOF-derived 2D nanoflake morphology and the metal-metal nitride heterostructure, the Ni-doped Co-Co2N delivers a specific capacity of 361.93 C/g. A full cell test has been conducted using Ni-doped Co-Co2N as the positive electrode and porous carbon as the negative electrode, and it shows an energy density of 20.4 Wh/kg at the power density of 9.85 kW/kg with 82.4% of initial energy density being retained after 5000 cycles.
UR - http://www.scopus.com/inward/record.url?scp=85053906752&partnerID=8YFLogxK
U2 - 10.1021/acsenergylett.8b01393
DO - 10.1021/acsenergylett.8b01393
M3 - 文章
AN - SCOPUS:85053906752
SN - 2380-8195
VL - 3
SP - 2462
EP - 2469
JO - ACS Energy Letters
JF - ACS Energy Letters
IS - 10
ER -