Heteroatom-doped mesoporous carbon nanofibers (HMCNFs) were prepared by direct carbonization of highly cross-linked organic–inorganic hybrid polymeric nanofibers (PNFs) under an inert atmosphere. The HMCNFs were of large Brunauer–Emmett–Teller (BET) surface area, uniform mesopore (with diameter 4 nm), and high content of heteroatoms. Electrodes prepared by using HMCNFs showed a high specific capacitance of 214.9 F/g in 6 M KOH electrolyte, because of the large BET surface area and high content of heteroatoms. This work involved preparation of carbon nanofibers from a novel precursor and used the nanofibers in the fabrication of high-performance supercapacitor electrodes
This work reports a facile one-step method for the synthesis of new hybrid porous materials using bi...
Carbon-based materials, as one of the most important electrode materials for supercapacitors, have a...
Multiple heteroatom doping represents an effective strategy for improving the supercapacitive perfor...
Supercapacitors (also known as ultracapacitors) are considered to be the most promising approach to ...
A novel supercapacitor electrode material based on heteroatom (N, O, P) doped mesoporous carbon micr...
The exploration of new-family flexible carbon architectures is significant with regard to flexible e...
Heteroatom-doped carbon nanostructures with uniform size and morphology, well-designed architectures...
Heteroatom-doped three-dimensional (3D) carbon fiber networks have attracted immense interest becaus...
Current supercapacitors suffer from low energy density mainly due to the high degree of microporosit...
Abstract The electrochemical property of ordered mesoporous carbon (OMC) can be changed significantl...
Carbon nanofibers (CNFs) are a fascinating electrode material for energy storage devices due to thei...
Heteroatom-doped three-dimensional (3D) carbon fiber networks have attracted immense interest becaus...
Fabrication of novel three-dimensional material architectures is essential for successful developmen...
Single electric double-layer capacitors cannot meet the growing demand for energy due to their insuf...
A new nanoarchitecture approach based on metal-organic frameworks (MOF) is reported that can achieve...
This work reports a facile one-step method for the synthesis of new hybrid porous materials using bi...
Carbon-based materials, as one of the most important electrode materials for supercapacitors, have a...
Multiple heteroatom doping represents an effective strategy for improving the supercapacitive perfor...
Supercapacitors (also known as ultracapacitors) are considered to be the most promising approach to ...
A novel supercapacitor electrode material based on heteroatom (N, O, P) doped mesoporous carbon micr...
The exploration of new-family flexible carbon architectures is significant with regard to flexible e...
Heteroatom-doped carbon nanostructures with uniform size and morphology, well-designed architectures...
Heteroatom-doped three-dimensional (3D) carbon fiber networks have attracted immense interest becaus...
Current supercapacitors suffer from low energy density mainly due to the high degree of microporosit...
Abstract The electrochemical property of ordered mesoporous carbon (OMC) can be changed significantl...
Carbon nanofibers (CNFs) are a fascinating electrode material for energy storage devices due to thei...
Heteroatom-doped three-dimensional (3D) carbon fiber networks have attracted immense interest becaus...
Fabrication of novel three-dimensional material architectures is essential for successful developmen...
Single electric double-layer capacitors cannot meet the growing demand for energy due to their insuf...
A new nanoarchitecture approach based on metal-organic frameworks (MOF) is reported that can achieve...
This work reports a facile one-step method for the synthesis of new hybrid porous materials using bi...
Carbon-based materials, as one of the most important electrode materials for supercapacitors, have a...
Multiple heteroatom doping represents an effective strategy for improving the supercapacitive perfor...