4.8 Article

Extreme mixing in nanoscale transition metal alloys

期刊

MATTER
卷 4, 期 7, 页码 2340-2353

出版社

CELL PRESS
DOI: 10.1016/j.matt.2021.04.014

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资金

  1. National Science Foundation (NSF) Scalable Nano-manufacturing project [1635221]
  2. NSF [DMR-1809439]
  3. Toyota Research Institute
  4. STROBE, an NSF Science and Technology Center [DMR 1548924]
  5. Office of Science, Office of Basic Energy Sciences of the US Department of Energy (DOE) [DE-AC02-05CH11231]
  6. US DOE [DE-AC02-06CH11357]
  7. Canadian Light Source

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The study successfully achieved nanoalloying at the nanoscale using a high-temperature and high-entropy strategy, expanding the range of possible alloys to include early transition metals. This broadens the available compositions of nanoalloys and provides clear guidelines for further research.
The ability to alloy different elements is critical for property tuning and materials discovery. However, general alloying at the nanoscale remains extremely challenging due to strong immiscibility and easy oxidation, particularly for early transition metals that are highly reactive. Here, we report nanoscale alloying using a high-temperature- and high-entropy-based strategy (T*Delta S-mix) to significantly expand the possible alloys and include early transition metals, While high-temperature synthesis favors alloy formation and metal reduction, the high-entropy compositional design is critical to further extending the alloying to strongly repelling combinations (e.g., Au-W) and easily oxidized elements (e.g., Zr). In particular, we explicitly characterized a record 15-element nanoalloy, which showed a solid-solution structure featuring localized strain and lattice distortions as a result of extreme mixing. Our study significantly broadens available compositions of nanoalloys and provides clear guidelines by utilizing the less-explored entropic chemistry.

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