Size dependent structural and polymorphic transitions in ZnO: from nanocluster to bulk

dc.contributor.author
Viñes Solana, Francesc
dc.contributor.author
Lamiel Garcia, Josep Oriol
dc.contributor.author
Illas i Riera, Francesc
dc.contributor.author
Bromley, Stefan Thomas
dc.date.issued
2020-06-18T08:05:40Z
dc.date.issued
2020-06-18T08:05:40Z
dc.date.issued
2017-07-28
dc.date.issued
2020-06-18T08:05:40Z
dc.identifier
2040-3364
dc.identifier
https://hdl.handle.net/2445/166207
dc.identifier
678170
dc.description.abstract
We report on an extensive survey of (ZnO)(N) nanostructures ranging from bottom-up generated nanoclusters to top-down nanoparticles cuts from bulk polymorphs. The obtained results enable us to follow the energetic preferences of structure and polymorphism in (ZnO)(N) systems with N varying between 10-1026. This size range encompasses small nanoclusters with 10s of atoms and nanoparticles with 100s of atoms, which we also compare with appropriate bulk limits. In all cases the nanostructures and bulk systems are optimized using accurate all-electron, relativistic density functional theory based calculations with numeric atom centered orbital basis sets. Specifically, sets of five families of (ZnO)(N) species are considered: single-layered and multi-layered nanocages, and bulk cut nanoparticles from the sodalite (SOD), body centered tetragonal (BCT), and wurtzite (WZ) ZnO polymorphs. Using suitable fits to interpolate and extrapolate these data allows us to assess the size-dependent energetic stabilities of each family. With increasing size our results indicate a progressive change in energetic stability from single-layered to multi-layered cage-like nanoclusters. For nanoparticles of around 2.6 nm diameter we identify a transitional region where multi-layered cages, SOD, and BCT nanostructures are very similar in energetic stability. This transition size also marks the size regime at which bottom-up nanoclusters give way to top-down bulk-cut nanoparticles. Eventually, a final crossover is found where the most stable WZ-ZnO polymorph begins to energetically dominate at N similar to 2200. This size corresponds to an approximate nanoparticle diameter of 4.7 nm, in line with experiments reporting the observation of wurtzite crystallinity in isolated ligand-free ZnO nanoparticles of 4-5 nm size or larger.
dc.format
8 p.
dc.format
application/pdf
dc.language
eng
dc.publisher
Royal Society of Chemistry
dc.relation
Versió postprint del document publicat a: https://doi.org/10.1039/c7nr02818k
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Nanoscale, 2017, vol. 9, num. 28, p. 10067-10074
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https://doi.org/10.1039/c7nr02818k
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info:eu-repo/grantAgreement/EC/H2020/676580/EU//NoMaD
dc.rights
(c) Viñes Solana, Francesc et al., 2017
dc.rights
info:eu-repo/semantics/openAccess
dc.source
Articles publicats en revistes (Ciència dels Materials i Química Física)
dc.subject
Teoria del funcional de densitat
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Nanopartícules
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Òxid de zinc
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Density functionals
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Nanoparticles
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Zinc oxide
dc.title
Size dependent structural and polymorphic transitions in ZnO: from nanocluster to bulk
dc.type
info:eu-repo/semantics/article
dc.type
info:eu-repo/semantics/acceptedVersion


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