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Article

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Title

In situ Fe-doped thin carbon wires via AC high voltage arc discharge

Authors

[ 1 ] Instytut Nanotechnologii i Nanobiologii, Akademia im. Jakuba z Paradyża | [ 2 ] Wydział Nauk o Zdrowiu, Akademia im. Jakuba z Paradyża | [ P ] employee

Scientific discipline (Law 2.0)

[3.3] Medical sciences
[6.3] Security studies

Year of publication

2024

Published in

Scientific Reports

Journal year: 2024 | Journal volume: 14 | Journal number: 29528

Article type

scientific article

Publication language

polish

Keywords
EN
  • High voltage AC arc discharge method (HVAC)
  • , Graphite electrode deposits
  • AC arc discharge in liquid paraffin
  • Carbon rods doped with iron powders
Abstract

EN This study explores the controlled, continuous production of thin carbon rods between graphite electrodes (continued electrode deposits) during an arc discharge of high voltage alternating current with a frequency of 50 Hz in liquid paraffin, along with in situ doping of the resulting material using a suspension of liquid paraffin and iron powder ( <10 μm). The surface morphology of the obtained carbon rod nanomaterials was characterized using scanning electron microscopy (SEM) coupled with energy dispersive X-ray spectroscopy (EDX), scanning transmission electron microscopy (STEM) with EDX chemical composition analysis, X-ray microtomography (micro-CT), and atomic force microscopy (AFM). The AFM technique in scanning thermal microscopy (SThM) and conductive probe (CP) modes was employed to determine the temperature and electrical conductivity of the obtained nanostructures. Qualitative analysis was conducted using Raman spectroscopy, X-ray powder diffraction (XRD), and X-ray photoelectron spectroscopy (XPS). This simple system for producing thin, stable carbon wires (< 1.2 mm thick) enables efficient and low-cost production and doping of these materials. The high-voltage alternating current (HVAC) arc discharge method for growing controlled, metal-doped electrode deposits presents a new approach to producing inexpensive, porous carbon nanomaterials for various scientific and technological applications.

Pages (from - to)

1 - 13

DOI

10.1038/s41598-024-81096-5

URL

https://www.nature.com/articles/s41598-024-81096-5

License type

CC BY-NC-ND (attribution - noncommercial - no derivatives)

Open Access Mode

open journal

Open Access Text Version

final published version

Release date

11.2024

Date of Open Access to the publication

at the time of publication

Ministry points / journal

140