4.8 Article

Plasmonic high-entropy carbides

Journal

NATURE COMMUNICATIONS
Volume 13, Issue 1, Pages -

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41467-022-33497-1

Keywords

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Funding

  1. DOD-ONR [N00014-21-1-2132, N00014-20-1-2525, N00014-20-1-2299]
  2. DoD High Performance Computing Modernization Program

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In this study, the authors investigated the optical properties of high-entropy transition-metal carbides and discovered that their optical response can be tuned by changing their composition and concentration. Experimental results showed that high-entropy carbides exhibit plasmonic properties even at high temperatures. These findings provide new insights for the development of multifunctional high-entropy ceramics.
Discovering multifunctional materials with tunable plasmonic properties, capable of surviving harsh environments is critical for advanced optical and telecommunication applications. We chose high-entropy transition-metal carbides because of their exceptional thermal, chemical stability, and mechanical properties. By integrating computational thermodynamic disorder modeling and time-dependent density functional theory characterization, we discovered a crossover energy in the infrared and visible range, corresponding to a metal-to-dielectric transition, exploitable for plasmonics. It was also found that the optical response of high-entropy carbides can be largely tuned from the near-IR to visible when changing the transition metal components and their concentration. By monitoring the electronic structures, we suggest rules for optimizing optical properties and designing tailored high-entropy ceramics. Experiments performed on the archetype carbide HfTa4C5 yielded plasmonic properties from room temperature to 1500K. Here we propose plasmonic transition-metal high-entropy carbides as a class of multifunctional materials. Their combination of plasmonic activity, high-hardness, and extraordinary thermal stability will result in yet unexplored applications.

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