TY - JOUR
T1 - Ultra-high lithium storage capacity achieved by porous ZnFe2O4/α-Fe2O3 micro-octahedrons
AU - Zhao, Di
AU - Xiao, Ying
AU - Wang, Xia
AU - Gao, Qing
AU - Cao, Minhua
PY - 2014/7
Y1 - 2014/7
N2 - Transition metal oxide-based hybrid material systems have been demonstrated to exhibit significantly improved electrochemical performance as anode materials for lithium ion batteries (LIBs). In this work, porous ZnFe2O4/α-Fe2O3 micro-octahedrons have been designed and fabricated by a facile solvothermal method followed by thermal treatment. The unique structures including the heterojunctions between ZnFe2O4 and α-Fe2O3 NPs and the open inter-connected pores are beneficial for the electrochemical performance. When evaluated as an anode material for LIBs, the as-prepared porous ZnFe2O4/α-Fe2O3 micro-octahedrons show an excellent lithium storage performance. The discharge capacity could reach 1752mAhg-1 after 75 cycles at a current density of 200mAg-1. More importantly, when the current density was increased to as high as 4Ag-1, the ZnFe2O4/α-Fe2O3 electrode can still retain reversible capacity of 1090mAhg-1. The capability and rate performance of the porous ZnFe2O4/α-Fe2O3 micro-octahedrons both are better than those of bare ZnFe2O4 and α-Fe2O3. The superior lithium storage performance of the porous ZnFe2O4/α-Fe2O3 micro-octahedrons is mainly attributed to their unique composition and microstructure, which not only could provide high conductivity, good Li+ diffusion, and large electrode-electrolyte contact area, but also could reduce volume change during charge/discharge process.
AB - Transition metal oxide-based hybrid material systems have been demonstrated to exhibit significantly improved electrochemical performance as anode materials for lithium ion batteries (LIBs). In this work, porous ZnFe2O4/α-Fe2O3 micro-octahedrons have been designed and fabricated by a facile solvothermal method followed by thermal treatment. The unique structures including the heterojunctions between ZnFe2O4 and α-Fe2O3 NPs and the open inter-connected pores are beneficial for the electrochemical performance. When evaluated as an anode material for LIBs, the as-prepared porous ZnFe2O4/α-Fe2O3 micro-octahedrons show an excellent lithium storage performance. The discharge capacity could reach 1752mAhg-1 after 75 cycles at a current density of 200mAg-1. More importantly, when the current density was increased to as high as 4Ag-1, the ZnFe2O4/α-Fe2O3 electrode can still retain reversible capacity of 1090mAhg-1. The capability and rate performance of the porous ZnFe2O4/α-Fe2O3 micro-octahedrons both are better than those of bare ZnFe2O4 and α-Fe2O3. The superior lithium storage performance of the porous ZnFe2O4/α-Fe2O3 micro-octahedrons is mainly attributed to their unique composition and microstructure, which not only could provide high conductivity, good Li+ diffusion, and large electrode-electrolyte contact area, but also could reduce volume change during charge/discharge process.
KW - Lithium ion batteries
KW - Micro-octahedrons
KW - Porous materials
KW - Ultra-high capacity
KW - Zinc ferrite-iron oxide
UR - http://www.scopus.com/inward/record.url?scp=84901342850&partnerID=8YFLogxK
U2 - 10.1016/j.nanoen.2014.05.001
DO - 10.1016/j.nanoen.2014.05.001
M3 - Article
AN - SCOPUS:84901342850
SN - 2211-2855
VL - 7
SP - 124
EP - 133
JO - Nano Energy
JF - Nano Energy
ER -