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Unprecedented generation of 3D heterostructures by mechanochemical disassembly and re-ordering of incommensurate metal chalcogenides
Nature Communications
  • Oleksandr Dolotko, Ames Laboratory
  • Ihor Hlova, Ames Laboratory
  • Arjun K. Pathak, Ames Laboratory and SUNY Buffalo State
  • Yaroslav Mudryk, Ames Laboratory
  • Vitalij K. Pecharsky, Iowa State University and Ames Laboratory
  • Prashant Singh, Ames Laboratory
  • Duane D. Johnson, Iowa State University and Ames Laboratory
  • Brett W. Boote, Iowa State University and Ames Laboratory
  • Jingzhe Li, Iowa State University and Ames Laboratory
  • Emily A. Smith, Iowa State University and Ames Laboratory
  • Scott L. Carnahan, Iowa State University
  • Aaron J. Rossini, Iowa State University
  • Lin Zhou, Ames Laboratory
  • Ely M. Eastman, Ames Laboratory and Reed College
  • Viktor P. Balema, Ames Laboratory
Document Type
Article
Publication Version
Published Version
Publication Date
6-12-2020
DOI
10.1038/s41467-020-16672-0
Abstract

Three-dimensional heterostructures are usually created either by assembling two-dimensional building blocks into hierarchical architectures or using stepwise chemical processes that sequentially deposit individual monolayers. Both approaches suffer from a number of issues, including lack of suitable precursors, limited reproducibility, and poor scalability of the preparation protocols. Therefore, development of alternative methods that enable preparation of heterostructured materials is desired. We create heterostructures with incommensurate arrangements of well-defined building blocks using a synthetic approach that comprises mechanical disassembly and simultaneous reordering of layered transition-metal dichalcogenides, MX2, and non-layered monochalcogenides, REX, where M = Ta, Nb, RE = Sm, La, and X = S, Se. We show that the discovered solid-state processes are rooted in stochastic mechanochemical transformations directed by electronic interaction between chemically and structurally dissimilar solids toward atomic-scale ordering, and offer an alternative to conventional heterostructuring. Details of composition–structure–properties relationships in the studied materials are also highlighted.

Comments

This article is published as Dolotko, Oleksandr, Ihor Z. Hlova, Arjun K. Pathak, Yaroslav Mudryk, Vitalij K. Pecharsky, Prashant Singh, Duane D. Johnson, Brett W. Boote, Jingzhe Li, Emily A. Smith, Scott L. Carnahan, Aaron J. Rossini, Lin Zhou, Ely M. Eastman, and Viktor P. Balema. "Unprecedented generation of 3D heterostructures by mechanochemical disassembly and re-ordering of incommensurate metal chalcogenides." Nature Communications 11 (2020): 3005. DOI: 10.1038/s41467-020-16672-0. Posted with permission.

Creative Commons License
Creative Commons Attribution 4.0 International
Copyright Owner
The Author(s)
Language
en
File Format
application/pdf
Citation Information
Oleksandr Dolotko, Ihor Hlova, Arjun K. Pathak, Yaroslav Mudryk, et al.. "Unprecedented generation of 3D heterostructures by mechanochemical disassembly and re-ordering of incommensurate metal chalcogenides" Nature Communications Vol. 11 (2020) p. 3005
Available at: http://works.bepress.com/emily-smith/77/