Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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University of Bath

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (8/8 displayed)

  • 2019Improved permittivity and permeability measurement in open or short circuit terminated test fixturescitations
  • 2014Manufacturing and characterization of Magnéli phase conductive fibres40citations
  • 2014Investigation of soil contamination by iron pipe corrosion and its influence on GPR detection3citations
  • 2014Improved GPR image focussing with repetitive normalised Superimposition techniques4citations
  • 2012AC electrical properties of TiO2 and Magnéli phases, TinO2n−149citations
  • 2012In-pipe GPR configuration and the determination of target depth and ground permittivity2citations
  • 2011Impedance spectroscopy analysis of TinO2n-1 Magnéli phases27citations
  • 2010Effects of iron pipe corrosion on GPR detection10citations

Places of action

Chart of shared publication
Clemens, F.
1 / 24 shared
Ragulis, P.
1 / 1 shared
Bowen, Christopher R.
3 / 96 shared
Adamaki, V.
2 / 4 shared
Taylor, John
3 / 12 shared
Jenks, C. H. J.
3 / 3 shared
John, U. E.
1 / 1 shared
Chapman, D. N.
2 / 3 shared
Abed, T. M.
1 / 1 shared
Curioni, G.
1 / 2 shared
Abdul-Latif, O. M.
1 / 1 shared
Regonini, D.
1 / 3 shared
Dent, A. C. E.
1 / 5 shared
Redfern, M. A.
1 / 1 shared
Orlando, G.
1 / 4 shared
Regonini, Domenico
1 / 2 shared
Dent, Andrew C. E.
1 / 6 shared
Rogers, C. D. F.
1 / 1 shared
Royal, A. C. D.
1 / 1 shared
Naji, Adham
1 / 1 shared
Redfern, Miles A.
1 / 1 shared
Chart of publication period
2019
2014
2012
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Co-Authors (by relevance)

  • Clemens, F.
  • Ragulis, P.
  • Bowen, Christopher R.
  • Adamaki, V.
  • Taylor, John
  • Jenks, C. H. J.
  • John, U. E.
  • Chapman, D. N.
  • Abed, T. M.
  • Curioni, G.
  • Abdul-Latif, O. M.
  • Regonini, D.
  • Dent, A. C. E.
  • Redfern, M. A.
  • Orlando, G.
  • Regonini, Domenico
  • Dent, Andrew C. E.
  • Rogers, C. D. F.
  • Royal, A. C. D.
  • Naji, Adham
  • Redfern, Miles A.
OrganizationsLocationPeople

article

AC electrical properties of TiO2 and Magnéli phases, TinO2n−1

  • Regonini, D.
  • Bowen, Christopher R.
  • Pennock, Stephen
  • Adamaki, V.
  • Dent, A. C. E.
  • Taylor, John
Abstract

This paper presents a comprehensive impedance spectroscopy comparison of the AC properties of dense stoichiometric TiO2 and conductive TinO2n − 1 Magnéli phases over a broad temperature range (up to 1000 °C for TiO2 and 375 °C for TinO2n − 1). The frequency dependent conductivity and permittivity of both materials is explained in terms of “universal” power law behaviour. A deviation from the law, with a giant relative permittivity which is largely independent of frequency from 0.1 Hz to 100–200 kHz is observed in the case of TinO2n − 1, due to the presence of residual TiO2 generating an Internal Barrier Layer Capacitor (IBLC) effect. The real–imaginary impedance plots are interpreted using an RC model and allow separation of the contribution of the grain bulk and the grain boundaries to the total resistivity of the material. In the case of the TinO2n − 1 based materials this confirms that the IBLC effect is generated by insulating grain boundaries. The conduction mechanism in both TiO2 and TinO2n − 1 appears to be dominated by electronic conductivities, activated mainly through shallow donor levels up to 200 °C and over the entire band gap, which is narrower for TinO2n − 1, above 200 °C. A deeper understanding of the AC properties of Magnéli phases of Ti at different temperatures aids in the optimisation of electrical properties for a variety of sensor and electrical applications.

Topics
  • impedance spectroscopy
  • grain
  • resistivity
  • phase
  • dielectric constant