TY - JOUR
T1 - Simultaneous cross-linking and pore-forming electrospun carbon nanofibers towards high capacitive performance
AU - Jiang, Qinting
AU - Pang, Xin
AU - Geng, Shitao
AU - Zhao, Yuhui
AU - Wang, Xiaomei
AU - Qin, Hua
AU - Liu, Bo
AU - Zhou, Jin
AU - Zhou, Tong
PY - 2019
Y1 - 2019
N2 - Large effective surface area and high electrical conductivity are critical for the high-performance carbon-based electrode materials for supercapacitors. Herein, three-dimensional (3D) cross-linked nitrogen-enriched porous carbon nanofibers (C-CNFs) are facilely prepared by electrospinning of polyacrylonitrile/zinc chloride (PAN/ZnCl2) precursor, preoxidation and carbonization of the electrospun composite nanofibers. The ZnCl2 additive makes effects of both cross-linking and pore-forming electrospun carbon nanofibers simultaneously. The asprepared C-CNFs exhibits a good rate capability of about 60% with current densities ranging from 1 to 60 A g(-1) excellent cycling stability of 97.3% over 60,000 cycles in alkaline electrolyte, and high specific capacitance of 214 F g(-1)at 1.0 A g(-1) in acidic electrolyte, all of which are significantly superior to the non-cross-linked carbon nanofibers. The significant enhancement of capacitive performance of C-CNFs can be attributed the synergistic effect of its enlarged specific surface area for more charge accumulation and cross-linked architecture that enable the electrons to fast transfer throughout the fibrous membrane. Moreover, the 3D cross-linked carbon nanofiber networks is expected to be a building block of composite electrodes fabrication for the promising applications in other systems that involve a continuous pathway for electron transport, such as the metal ion batteries and catalysis.
AB - Large effective surface area and high electrical conductivity are critical for the high-performance carbon-based electrode materials for supercapacitors. Herein, three-dimensional (3D) cross-linked nitrogen-enriched porous carbon nanofibers (C-CNFs) are facilely prepared by electrospinning of polyacrylonitrile/zinc chloride (PAN/ZnCl2) precursor, preoxidation and carbonization of the electrospun composite nanofibers. The ZnCl2 additive makes effects of both cross-linking and pore-forming electrospun carbon nanofibers simultaneously. The asprepared C-CNFs exhibits a good rate capability of about 60% with current densities ranging from 1 to 60 A g(-1) excellent cycling stability of 97.3% over 60,000 cycles in alkaline electrolyte, and high specific capacitance of 214 F g(-1)at 1.0 A g(-1) in acidic electrolyte, all of which are significantly superior to the non-cross-linked carbon nanofibers. The significant enhancement of capacitive performance of C-CNFs can be attributed the synergistic effect of its enlarged specific surface area for more charge accumulation and cross-linked architecture that enable the electrons to fast transfer throughout the fibrous membrane. Moreover, the 3D cross-linked carbon nanofiber networks is expected to be a building block of composite electrodes fabrication for the promising applications in other systems that involve a continuous pathway for electron transport, such as the metal ion batteries and catalysis.
U2 - 10.1016/j.apsusc.2019.02.077
DO - 10.1016/j.apsusc.2019.02.077
M3 - Article
SN - 0169-4332
VL - 479
SP - 128
EP - 136
JO - Applied Surface Science
JF - Applied Surface Science
ER -