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Variable-Temperature Plasmonic High-Entropy Carbides

  • Simon Divilov
  • , Sean D. Griesemer
  • , Robert C. Koennecker
  • , Michael J. Ammendola
  • , Adam C. Zettel
  • , Hagen Eckert
  • , Jeffrey R. Shallenberger
  • , Xiomara Campilongo
  • , William G. Fahrenholtz
  • , Arrigo Calzolari
  • , Douglas E. Wolfe
  • , Stefano Curtarolo

Research output: Contribution to journalArticlepeer-review

Abstract

Effective thermal management at variable and extreme temperatures face limitations for the development of novel energy and aerospace applications. Plasmonic approaches, shown to be capable of tailoring black-body emission, could be effective if materials with high-temperature and tunable plasmonic resonance were available. Here, we report a synergy between experimental and theoretical results proving that many high-entropy transition metal carbides, consisting of four or more metals at equal molar ratio, have plasmonic resonance at room, high (>1000∘C) and variable temperatures. We also found that these high-entropy carbides can be tuned and show considerable plasmonic thermal cycling stability. This paradigm-shift approach could prove quite advantageous as it facilitates the accelerated rational discovery and manufacturability of optically highly optimized high-entropy carbides with ad hoc properties.

Original languageEnglish (US)
Pages (from-to)273-284
Number of pages12
JournalHigh Entropy Alloys and Materials
Volume3
Issue number2
DOIs
StatePublished - Dec 2025

All Science Journal Classification (ASJC) codes

  • Inorganic Chemistry
  • Materials Science (miscellaneous)
  • Metals and Alloys

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