Published August 2, 2013 | Version v1
Journal article

Variable tunneling barriers in FEBID based PtC metal-matrix nanocomposites as a transducing element for humidity sensing

  • 1. Institute for Electron Microscopy and Nanoanalysis, Graz University of Technology, Steyrergasse 17, A-8010 Graz (Austria)
  • 2. NanoTecCenter Weiz Forschungsgesellschaft mbH, Franz-Pichler-Straße 32, A-8160 Weiz (Austria)
  • 3. Institute for Physics, Goethe University, Max-von-Laue-Straße 1, D-60438 Frankfurt (Germany)
  • 4. Institute for Physics, Karl-Franzens University Graz, Universitätsplatz 5, A-8010 Graz (Austria)

Description

The development of simple gas sensing concepts is still of great interest for science and technology. The demands on an ideal device would be a single-step fabrication method providing a device which is sensitive, analyte-selective, quantitative, and reversible without special operating/reformation conditions such as high temperatures or special environments. In this study we demonstrate a new gas sensing concept based on a nanosized PtC metal-matrix system fabricated in a single step via focused electron beam induced deposition (FEBID). The sensors react selectively on polar H2O molecules quantitatively and reversibly without any special reformation conditions after detection events, whereas non-polar species (O2, CO2, N2) produce no response. The key elements are isolated Pt nanograins (2–3 nm) which are embedded in a dielectric carbon matrix. The electrical transport in such materials is based on tunneling effects in the correlated variable range hopping regime, where the dielectric carbon matrix screens the electric field between the particles, which governs the final conductivity. The specific change of these dielectric properties by the physisorption of polar gas molecules (H2O) can change the tunneling probability and thus the overall conductivity, allowing their application as a simple and straightforward sensing concept. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/0957-4484/24/30/305501

Additional details

Publishing Information

Journal Title
Nanotechnology (Print)
Journal Volume
24
Journal Issue
30
Journal Page Range
[7 p.]
ISSN
0957-4484