Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Topics

Publications (1/1 displayed)

  • 2020Design and synthesis of multigrain nanocrystals via geometric misfit strain.83citations

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Chart of shared publication
Kim, Dokyoon
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Gu, X. Wendy
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Jeong, Beomgyun
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Kim, Min Gyu
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Hyeon, Taeghwan
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Alivisatos, A. Paul
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Sung, Yung-Eun E.
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Yoo, Ji Mun
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Cho, Min Gee
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Oh, Myoung Hwan
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Kang, Kisuk
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Park, Inchul
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Chung, Dong Young
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Jo, Jinwoung
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Chart of publication period
2020

Co-Authors (by relevance)

  • Kim, Dokyoon
  • Gu, X. Wendy
  • Jeong, Beomgyun
  • Kim, Min Gyu
  • Hyeon, Taeghwan
  • Alivisatos, A. Paul
  • Sung, Yung-Eun E.
  • Yoo, Ji Mun
  • Hong, Jaeyoung
  • Mcmains, Sara
  • Cho, Min Gee
  • Oh, Myoung Hwan
  • Kang, Kisuk
  • Park, Inchul
  • Chung, Dong Young
  • Jo, Jinwoung
OrganizationsLocationPeople

article

Design and synthesis of multigrain nanocrystals via geometric misfit strain.

  • Kim, Dokyoon
  • Gu, X. Wendy
  • Jeong, Beomgyun
  • Kim, Min Gyu
  • Hyeon, Taeghwan
  • Alivisatos, A. Paul
  • Sung, Yung-Eun E.
  • Yoo, Ji Mun
  • Hong, Jaeyoung
  • Mcmains, Sara
  • Cho, Min Gee
  • Oh, Myoung Hwan
  • Kang, Kisuk
  • Park, Inchul
  • Chung, Dong Young
  • Kwon, Youngwook Paul
  • Jo, Jinwoung
Abstract

The impact of topological defects associated with grain boundaries (GB defects) on the electrical, optical, magnetic, mechanical and chemical properties of nanocrystalline materials1,2 is well known. However, elucidating this influence experimentally is difficult because grains typically exhibit a large range of sizes, shapes and random relative orientations3-5. Here we demonstrate that precise control of the heteroepitaxy of colloidal polyhedral nanocrystals enables ordered grain growth and can thereby produce material samples with uniform GB defects. We illustrate our approach with a multigrain nanocrystal comprising a Co3O4 nanocube core that carries a Mn3O4 shell on each facet. The individual shells are symmetry-related interconnected grains6, and the large geometric misfit between adjacent tetragonal Mn3O4 grains results in tilt boundaries at the sharp edges of the Co3O4 nanocube core that join via disclinations. We identify four design principles that govern the production of these highly ordered multigrain nanostructures. First, the shape of the substrate nanocrystal must guide the crystallographic orientation of the overgrowth phase7. Second, the size of the substrate must be smaller than the characteristic distance between the dislocations. Third, the incompatible symmetry between the overgrowth phase and the substrate increases the geometric misfit strain between the grains. Fourth, for GB formation under near-equilibrium conditions, the surface energy of the shell needs to be balanced by the increasing elastic energy through ligand passivation8-10. With these principles, we can produce a range of multigrain nanocrystals containing distinct GB defects.

Topics
  • impedance spectroscopy
  • surface
  • grain
  • phase
  • dislocation
  • random
  • surface energy
  • grain growth