Published April 30, 2015 | Version v1
Journal article

Study of nanometric thin pyrolytic carbon films for explosive electron emission cathode in high-voltage planar diode

  • 1. Research Institute for Nuclear Problems, Belarusian State University, Bobruiskaya Str. 11, Minsk 220030 (Belarus)
  • 2. National Research Tomsk State University, 36 Lenin Prospekt, Tomsk 634050 (Russian Federation)
  • 3. Institut für Materialphysik of Universität Göttingen, Friedrich-Hund-Platz 1, 37077 Göttingen (Germany)
  • 4. CIC energiGUNE, Albert Einstein 48, 01510 Minano, Alava (Spain)
  • 5. Institute of Photonics, University of Eastern Finland, P.O. Box 111, Joensuu FI-80101 (Finland)

Description

We report on an experimental study of explosive electron emission properties of cathode made by nanometric thin pyrolytic carbon (PyC) films (2–150 nm) deposited on Cu substrate via methane-based chemical vapor deposition. High current density at level of 300 A/cm2 in 5 · 10−5 Pa vacuum has been observed together with very stable explosive emission from the planar cathode. The Raman spectroscopy investigation proves that the PyC films remain the same after seven shots. According to the optical image analysis of the cathode before and after one and seven shots, we conclude that the most unusual and interesting feature of using the PyC films/Cu cathode for explosive emission is that the PyC layer on the top of the copper target prevents its evaporation and oxidation, which leads to higher emission stability compared to conventional graphitic/Cu cathodes, and therefore results in longer working life. - Highlights: • Explosive electron emission from pyrolytic carbon (PyC) cathode is reported. • We observe high current density, 300 A/cm2, and stable emission parameters. • PyC integrity ensures a high application potential for high current electronics

Availability note (English)

Available from http://dx.doi.org/10.1016/j.tsf.2014.09.044

Additional details

Identifiers

DOI
10.1016/j.tsf.2014.09.044;
PII
S0040-6090(14)00922-5;

Publishing Information

Journal Title
Thin Solid Films
Journal Volume
581
Journal Page Range
p. 107-111
ISSN
0040-6090
CODEN
THSFAP

Conference

Title
Carbon- or Nitrogen-Containing Nanostructured Composite Films
Acronym
E-MRS 2014 spring meeting symposium G
Dates
26-30 May 2014
Place
Lille (France)

Optional Information

Copyright
Copyright (c) 2014 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.