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Structural Design of Bismuth Telluride Nanoplates through Process Variables

  • Jordan Ackley
  • , Ariel E. Briggs
  • , Karthik Chinnathambi
  • , Nicholas McKibben
  • , Cadré Francis
  • , Josh Eixenberger
  • , Tony Valayil Varghese
  • , David Estrada

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Binary pnictogen chalcogen compounds, primarily bismuth tellurides and selenides, are of great interest due to their applications in emerging quantum devices, as well as thermoelectric generators. The performance of bismuth telluride in these roles depends on its structure at the nanoscale, particularly the size, shape, and crystallinity of its nanocrystalline forms. However, current methods for controlling these features are often slow, inconsistent, or difficult to scale. Here, we demonstrate that through a solvothermal synthesis and hot injection process, precise control over the morphology of bismuth telluride nanoplates is possible with independent tuning of process variables, such as temperature and reaction time. We find that the nanoplate shape and internal porosity vary systematically with synthesis temperature and that the same morphological outcomes can be rapidly achieved at a fixed temperature by adjusting reaction duration. These results reveal that both the temperature and time can independently direct bismuth telluride morphological features, allowing for rapid, tunable synthesis strategies. Our approach offers a scalable framework, not only for bismuth telluride but also for related layered chalcogenides used in energy harvesting and quantum technologies.

Original languageEnglish
Pages (from-to)2649-2657
Number of pages9
JournalChemistry of Materials
Volume38
Issue number6
Early online dateMar 15 2026
DOIs
StatePublished - Mar 24 2026

INL Publication Number

  • NA

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