Cathode structures derived from carbonized electrospun polyacrylonitrile (PAN) nanofibers are a current line of development for improvement of gas diffusion electrodes for metal–air batteries and fuel cells. Diameter, surface morphology, carbon structure and chemical composition of the carbon based fibers play a crucial role for the functionality of the resulting cathodes, especially with respect to oxygen adsorption properties, electrolyte wetting and electronic conductivity. These functionalities of the carbon fibers are strongly influenced by the carbonization process. Hitherto, fibers were mostly characterized by ex situ methods, which require great effort for statistical analysis in the case of microscopy. Here, we show the morphologic...
Electrospinning is a method that can be use to prepare polymeric or composite fibres having diameter...
Porous carbon materials represent prospective materials for absorbers, filters, and electronic appli...
Wortmann M, Frese N, Mamun A, et al. Chemical and Morphological Transition of Poly(acrylonitrile)/Po...
Carbonaceous materials have great potential for applications as anodes of alkali-metal ion batteries...
Carbon nanofibers with a diameter less than 100 nm were prepared by electrospinning. We investigated...
An exact understanding of the conductivity of individual fibers and their networks is crucial to tai...
This study deals with the fabrication of polyacrylonitrile (PAN) nanofibers via an electrospinning p...
Polyacrylonitrile (PAN) and PAN/carbon nanotube (CNT) based carbon fibers at various CNT content hav...
Carbon nanofibers with diameters of 200–300 nm were developed through stabilization and carbonizatio...
An exact understanding of the conductivity of individual fibers and their networks is crucial to tai...
Electrospinning is the most widely utilized method to create nanofibers because of the direct setup,...
<div><p>This study deals with the fabrication of polyacrylonitrile (PAN) nanofibers via an electrosp...
The aim of this work was to manufacture, using the electrospinning technique, polyacrylonitrile- (PA...
Presented to the 12th Annual Symposium on Graduate Research and Scholarly Projects (GRASP) held at ...
Ceramic, polymer and composite nanofibers are nowadays begun to be utilized in many fields of nanote...
Electrospinning is a method that can be use to prepare polymeric or composite fibres having diameter...
Porous carbon materials represent prospective materials for absorbers, filters, and electronic appli...
Wortmann M, Frese N, Mamun A, et al. Chemical and Morphological Transition of Poly(acrylonitrile)/Po...
Carbonaceous materials have great potential for applications as anodes of alkali-metal ion batteries...
Carbon nanofibers with a diameter less than 100 nm were prepared by electrospinning. We investigated...
An exact understanding of the conductivity of individual fibers and their networks is crucial to tai...
This study deals with the fabrication of polyacrylonitrile (PAN) nanofibers via an electrospinning p...
Polyacrylonitrile (PAN) and PAN/carbon nanotube (CNT) based carbon fibers at various CNT content hav...
Carbon nanofibers with diameters of 200–300 nm were developed through stabilization and carbonizatio...
An exact understanding of the conductivity of individual fibers and their networks is crucial to tai...
Electrospinning is the most widely utilized method to create nanofibers because of the direct setup,...
<div><p>This study deals with the fabrication of polyacrylonitrile (PAN) nanofibers via an electrosp...
The aim of this work was to manufacture, using the electrospinning technique, polyacrylonitrile- (PA...
Presented to the 12th Annual Symposium on Graduate Research and Scholarly Projects (GRASP) held at ...
Ceramic, polymer and composite nanofibers are nowadays begun to be utilized in many fields of nanote...
Electrospinning is a method that can be use to prepare polymeric or composite fibres having diameter...
Porous carbon materials represent prospective materials for absorbers, filters, and electronic appli...
Wortmann M, Frese N, Mamun A, et al. Chemical and Morphological Transition of Poly(acrylonitrile)/Po...