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Low-temperature transport in highly boron-doped nanocrystalline diamond

  • P. Achatz
  • , W. Gajewski
  • , E. Bustarret
  • , C. Marcenat
  • , R. Piquerel
  • , C. Chapelier
  • , T. Dubouchet
  • , O. A. Williams
  • , K. Haenen
  • , J. A. Garrido
  • , M. Stutzmann
  • Walter Schottky Institut
  • Institut de Neurosciences de la Timone, Centre National de la Recherche Scientifique - Aix-Marseille University
  • CEA Grenoble
  • IMO-IMOMEC

Research output: Contribution to journalArticlepeer-review

36 Scopus citations

Abstract

We studied the transport properties of highly boron-doped nanocrystalline diamond thin films at temperatures down to 50 mK. The system undergoes a doping-induced metal-insulator transition with an interplay between intergranular conductance g and intragranular conductance g0, as expected for a granular system. The conduction mechanism in the case of the low-conductivity films close to the metal-insulator transition has a temperature dependence similar to Efros-Shklovskii type of hopping. On the metallic side of the transition, in the normal state, a logarithmic temperature dependence of the conductivity is observed, as expected for a metallic granular system. Metallic samples far away from the transition show similarities to heavily boron-doped single-crystal diamond. Close to the transition, the behavior is richer. Global phase coherence leads in both cases to superconductivity (also checked by ac susceptibility), but a peak in the low-temperature magnetoresistance measurements occurs for samples close to the transition. Corrections to the conductance according to superconducting fluctuations account for this negative magnetoresistance.

Original languageEnglish
Article number201203
JournalPhysical Review B - Condensed Matter and Materials Physics
Volume79
Issue number20
DOIs
StatePublished - 1 May 2009

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