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Structural, chemical, and electronic control in Co-SiNx granular metals for high-pass filter applications

  • Simeon J. Gilbert
  • , Michael P. McGarry
  • , Melissa L. Meyerson
  • , Paul G. Kotula
  • , Luke Yates
  • , James A. Ohlhausen
  • , Peter A. Sharma
  • , Anthony Trofe
  • , Michael P. Siegal
  • , Laura B. Biedermann

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Granular metals, consisting of nanoscale conducting and insulating regions, have been studied for more than 50 years for fundamental and applied research. Granular metals exhibit non-linear conductivity vs frequency behavior, consistent with the universal power law response, and have recently been suggested for high-pass filter applications. Here, we report that cobalt-silicon nitride (Co-SiNx) granular metals with optimized sputter conditions and post-growth annealing exhibit an exceptional 109 increase in conductivity at 1 MHz compared to the DC conductivity. The improved frequency response is correlated with structural and chemical improvements examined via scanning transmission electron microscopy and x-ray photoemission spectroscopy. While we focus on improvements for high-pass filter applications, the structural, chemical, and electronic control demonstrated here will benefit a variety of granular metal and nanoparticle applications.

Original languageEnglish
Article number065101
JournalJournal of Applied Physics
Volume137
Issue number6
DOIs
StatePublished - Feb 14 2025
Externally publishedYes

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