Ligand‐Programmed Consecutive Symmetry Break(s) in Nanoparticle Based Materials Showing Emergent Phenomena : Transitioning from Sixfold to Threefold Symmetry in Anisotropic ZnO Colloids

dc.contributor.authorTheiss, Sebastian
dc.contributor.authorVoggel, Michael
dc.contributor.authorKuper, Henning
dc.contributor.authorHörmann, Martin
dc.contributor.authorKrings, Ulrich
dc.contributor.authorBaum, Peter
dc.contributor.authorBecker, Jörg August
dc.contributor.authorWittmann, Valentin
dc.contributor.authorPolarz, Sebastian
dc.date.accessioned2021-01-07T10:32:09Z
dc.date.available2021-01-07T10:32:09Z
dc.date.issued2021-02
dc.description.abstractThe central promise of nanoparticle‐based materials is that cooperative properties may emerge, when individual quantum dots are positioned on a periodic lattice. Yet, there are only a few papers in the literature reporting such effects. Nevertheless, it is clear that the symmetry of the superlattice is decisive for the desired emergent phenomena. An interesting question is, how the symmetry of the initial monodisperse nanoparticles affects the structure of the colloidal crystal during self‐assembly processes. For instance, particles with a hexagonal cross‐section demonstrate self‐organization, which is very similar to spherical colloids. Likewise, one would also expect that trigonal nanoparticles behave similarly. Unfortunately, it is very hard to obtain monodisperse semiconductor colloids with a trigonal shape, because this requires a symmetry break during morphogenesis of the nanocrystal. While such a symmetry break is known in the literature for structures attached to a solid substrate, herein, colloidal synthesis of trigonal ZnO nanorods is successfully demonstrated, and the mechanism is elucidated via experimental and theoretical methods. 2D‐superlattices formed by such particles with trigonal cross‐section are compared to hexagonal analogues. It is found that there are distinct differences, which result in important differences in properties such as the formation of voids and also in optical properties.eng
dc.description.versionpublishedde
dc.identifier.doi10.1002/adfm.202009104eng
dc.identifier.ppn1755955898
dc.identifier.urihttps://kops.uni-konstanz.de/handle/123456789/52304
dc.language.isoengeng
dc.rightsAttribution-NonCommercial-NoDerivatives 4.0 International
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/
dc.subject.ddc540eng
dc.titleLigand‐Programmed Consecutive Symmetry Break(s) in Nanoparticle Based Materials Showing Emergent Phenomena : Transitioning from Sixfold to Threefold Symmetry in Anisotropic ZnO Colloidseng
dc.typeJOURNAL_ARTICLEde
dspace.entity.typePublication
kops.citation.bibtex
@article{Theiss2021-02Ligan-52304,
  year={2021},
  doi={10.1002/adfm.202009104},
  title={Ligand‐Programmed Consecutive Symmetry Break(s) in Nanoparticle Based Materials Showing Emergent Phenomena : Transitioning from Sixfold to Threefold Symmetry in Anisotropic ZnO Colloids},
  number={8},
  volume={31},
  issn={1616-301X},
  journal={Advanced Functional Materials},
  author={Theiss, Sebastian and Voggel, Michael and Kuper, Henning and Hörmann, Martin and Krings, Ulrich and Baum, Peter and Becker, Jörg August and Wittmann, Valentin and Polarz, Sebastian},
  note={Article Number: 2009104}
}
kops.citation.iso690THEISS, Sebastian, Michael VOGGEL, Henning KUPER, Martin HÖRMANN, Ulrich KRINGS, Peter BAUM, Jörg August BECKER, Valentin WITTMANN, Sebastian POLARZ, 2021. Ligand‐Programmed Consecutive Symmetry Break(s) in Nanoparticle Based Materials Showing Emergent Phenomena : Transitioning from Sixfold to Threefold Symmetry in Anisotropic ZnO Colloids. In: Advanced Functional Materials. Wiley. 2021, 31(8), 2009104. ISSN 1616-301X. eISSN 1616-3028. Available under: doi: 10.1002/adfm.202009104deu
kops.citation.iso690THEISS, Sebastian, Michael VOGGEL, Henning KUPER, Martin HÖRMANN, Ulrich KRINGS, Peter BAUM, Jörg August BECKER, Valentin WITTMANN, Sebastian POLARZ, 2021. Ligand‐Programmed Consecutive Symmetry Break(s) in Nanoparticle Based Materials Showing Emergent Phenomena : Transitioning from Sixfold to Threefold Symmetry in Anisotropic ZnO Colloids. In: Advanced Functional Materials. Wiley. 2021, 31(8), 2009104. ISSN 1616-301X. eISSN 1616-3028. Available under: doi: 10.1002/adfm.202009104eng
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kops.sourcefieldAdvanced Functional Materials. Wiley. 2021, <b>31</b>(8), 2009104. ISSN 1616-301X. eISSN 1616-3028. Available under: doi: 10.1002/adfm.202009104deu
kops.sourcefield.plainAdvanced Functional Materials. Wiley. 2021, 31(8), 2009104. ISSN 1616-301X. eISSN 1616-3028. Available under: doi: 10.1002/adfm.202009104deu
kops.sourcefield.plainAdvanced Functional Materials. Wiley. 2021, 31(8), 2009104. ISSN 1616-301X. eISSN 1616-3028. Available under: doi: 10.1002/adfm.202009104eng
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