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Inserting an "atomic trap" for directional dopant migration in core/multi-shell quantum dots.
Chu, Chun; Hofman, Elan; Gao, Chengpeng; Li, Shuya; Lin, Hanjie; MacSwain, Walker; Franck, John M; Meulenberg, Robert W; Chakraborty, Arindam; Zheng, Weiwei.
Afiliação
  • Chu C; Department of Chemistry, Syracuse University Syracuse New York 13244 USA wzhen104@syr.edu.
  • Hofman E; Department of Chemistry, Syracuse University Syracuse New York 13244 USA wzhen104@syr.edu.
  • Gao C; Department of Chemistry, Syracuse University Syracuse New York 13244 USA wzhen104@syr.edu.
  • Li S; Department of Chemistry, Syracuse University Syracuse New York 13244 USA wzhen104@syr.edu.
  • Lin H; Department of Chemistry, Syracuse University Syracuse New York 13244 USA wzhen104@syr.edu.
  • MacSwain W; Department of Chemistry, Syracuse University Syracuse New York 13244 USA wzhen104@syr.edu.
  • Franck JM; Department of Chemistry, Syracuse University Syracuse New York 13244 USA wzhen104@syr.edu.
  • Meulenberg RW; Department of Physics and Astronomy and Frontier Institute for Research in Sensor Technologies, University of Maine Orono Maine 04469 USA.
  • Chakraborty A; Department of Chemistry, Syracuse University Syracuse New York 13244 USA wzhen104@syr.edu.
  • Zheng W; Department of Chemistry, Syracuse University Syracuse New York 13244 USA wzhen104@syr.edu.
Chem Sci ; 14(48): 14115-14123, 2023 Dec 13.
Article em En | MEDLINE | ID: mdl-38098727
ABSTRACT
Diffusion of atoms or ions in solid crystalline lattice is crucial in many areas of solid-state technology. However, controlling ion diffusion and migration is challenging in nanoscale lattices. In this work, we intentionally insert a CdZnS alloyed interface layer, with small cationic size mismatch with Mn(ii) dopant ions, as an "atomic trap" to facilitate directional (outward and inward) dopant migration inside core/multi-shell quantum dots (QDs) to reduce the strain from the larger cationic mismatch between dopants and host sites. Furthermore, it was found that the initial doping site/environment is critical for efficient dopant trapping and migration. Specifically, a larger Cd(ii) substitutional site (92 pm) for the Mn(ii) dopant (80 pm), with larger local lattice distortion, allows for efficient atomic trapping and dopant migration; while Mn(ii) dopant ions can be very stable with no significant migration when occupying a smaller Zn(ii) substitutional site (74 pm). Density functional theory calculations revealed a higher energy barrier for a Mn(ii) dopant hopping from the smaller Zn substitutional tetrahedral (Td) site as compared to a larger Cd substitutional Td site. The controlled dopant migration by "atomic trapping" inside QDs provides a new way to fine tune the properties of doped nanomaterials.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article