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In situ Fe-doped thin carbon wires via AC high voltage arc discharge
Krzysztof Jankowski
,
Iwona Jasiuk
, Paweł Uznański
, Mirosław Szybowicz
, Agnes Ostafin
, Romuald Brzozowski
, Mahmoud Mahrous
, Christian Bonney
, Mikołaj Tomasik
, Szymon Całuch
Mechanical Science and Engineering
Biomedical and Translational Sciences
Bioengineering
Aerospace Engineering
National Center for Supercomputing Applications (NCSA)
Beckman Institute for Advanced Science and Technology
Carl R. Woese Institute for Genomic Biology
Civil and Environmental Engineering
Center for the Study of Global Gender Equity
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Keyphrases
In Situ
100%
Energy Dispersive X-ray Spectroscopy
100%
Atomic Force Microscopy
100%
Fe-doped
100%
Arc Discharge
100%
AC High Voltage
100%
Carbon Wire
100%
High Voltage Alternating Current
100%
Carbon Rods
100%
Liquid Paraffin
100%
Microcomputed Tomography
50%
Scanning Electron Microscopy
50%
Nanostructures
50%
Nanomaterials
50%
X-ray Photoelectron Spectroscopy
50%
Temperature-dependent Thermal Conductivity
50%
Raman Spectroscopy
50%
Surface Morphology
50%
Scanning Transmission Electron Microscopy
50%
Electrical Conductivity
50%
Microscopic Techniques
50%
Technological Applications
50%
In-situ Doping
50%
Scanning Thermal Microscopy (SThM)
50%
Low-cost Production
50%
Simple System
50%
Diffraction Ray
50%
X-ray Powder Diffraction
50%
Conductivity Probe
50%
Graphite Electrode
50%
X-ray Microtomography
50%
Scientific Applications
50%
Continuous Production
50%
Stable Carbon Isotopes
50%
Metal-doped
50%
Liquid Iron
50%
Iron Powder
50%
Chemical Composition Analysis
50%
Thermal Conductive
50%
Doped Electrode
50%
Porous Carbon Nanomaterial
50%
Alternating Current Arc
50%
Arc-discharge Method
50%
Material Science
Energy-Dispersive X-Ray Spectroscopy
100%
Nanostructured Material
100%
Atomic Force Microscopy
100%
Scanning Electron Microscopy
50%
X-Ray Photoelectron Spectroscopy
50%
Electrical Conductivity
50%
Surface Morphology
50%
Scanning Transmission Electron Microscopy
50%
Raman Spectroscopy
50%
X Ray Powder Diffraction
50%
Chemical Composition Analysis
50%
X-Ray Microtomography
50%
Porous Carbon
50%
Iron Powder
50%
Nanostructure
50%
Engineering
Nanomaterial
100%
Atomic Force Microscopy
66%
Rod
66%
Alternating Current
66%
Conductive
33%
Ray Photoelectron Spectroscopy
33%
Surface Morphology
33%
X-Ray Powder Diffraction
33%
Simple System
33%
Graphite Electrode
33%
Iron Powder
33%
Porosity
33%
Electrical Conductivity
33%