Publikation:

Monte Carlo computer simulations and electron microscopy of colloidal cluster formation via emulsion droplet evaporation

Lade...
Vorschaubild

Dateien

Colloidal cluster formation_JCP-2011.pdf
Colloidal cluster formation_JCP-2011.pdfGröße: 1.33 MBDownloads: 449

Datum

2011

Autor:innen

Schwarz, Ingmar
Fortini, Andrea
Wagner, Claudia Simone
Schmidt, Matthias

Herausgeber:innen

Kontakt

ISSN der Zeitschrift

Electronic ISSN

ISBN

Bibliografische Daten

Verlag

Schriftenreihe

Auflagebezeichnung

DOI (zitierfähiger Link)
ArXiv-ID

Internationale Patentnummer

Angaben zur Forschungsförderung

Projekt

Open Access-Veröffentlichung
Open Access Green
Core Facility der Universität Konstanz

Gesperrt bis

Titel in einer weiteren Sprache

Publikationstyp
Zeitschriftenartikel
Publikationsstatus
Published

Erschienen in

The Journal of Chemical Physics. 2011, 135(24), 244501. ISSN 0021-9606. eISSN 1089-7690. Available under: doi: 10.1063/1.3672106

Zusammenfassung

We consider a theoretical model for a binary mixture of colloidal particles and spherical emulsion droplets. The hard sphere colloids interact via additional short-ranged attraction and long-ranged repulsion. The droplet-colloid interaction is an attractive well at the droplet surface, which induces the Pickering effect. The droplet-droplet interaction is a hard-core interaction. The droplets shrink in time, which models the evaporation of the dispersed (oil) phase, and we use Monte Carlo simulations for the dynamics. In the experiments, polystyrene particles were assembled using toluene droplets as templates. The arrangement of the particles on the surface of the droplets was analyzed with cryogenic field emission scanning electron microscopy. Before evaporation of the oil, the particle distribution on the droplet surface was found to be disordered in experiments, and the simulations reproduce this effect. After complete evaporation, ordered colloidal clusters are formed that are stable against thermal fluctuations. Both in the simulations and with field emission scanning electron microscopy, we find stable packings that range from doublets, triplets, and tetrahedra to complex polyhedra of colloids. The simulated cluster structures and size distribution agree well with the experimental results. We also simulate hierarchical assembly in a mixture of tetrahedral clusters and droplets, and find supercluster structures with morphologies that are more complex than those of clusters of single particles.

Zusammenfassung in einer weiteren Sprache

Fachgebiet (DDC)
540 Chemie

Schlagwörter

colloids, drops, emulsions, evaporation, field emission electron microscopy, molecular clusters, Monte Carlo methods, scanning electron microscopy

Konferenz

Rezension
undefined / . - undefined, undefined

Forschungsvorhaben

Organisationseinheiten

Zeitschriftenheft

Zugehörige Datensätze in KOPS

Zitieren

ISO 690SCHWARZ, Ingmar, Andrea FORTINI, Claudia Simone WAGNER, Alexander WITTEMANN, Matthias SCHMIDT, 2011. Monte Carlo computer simulations and electron microscopy of colloidal cluster formation via emulsion droplet evaporation. In: The Journal of Chemical Physics. 2011, 135(24), 244501. ISSN 0021-9606. eISSN 1089-7690. Available under: doi: 10.1063/1.3672106
BibTex
@article{Schwarz2011-12-28Monte-19738,
  year={2011},
  doi={10.1063/1.3672106},
  title={Monte Carlo computer simulations and electron microscopy of colloidal cluster formation via emulsion droplet evaporation},
  number={24},
  volume={135},
  issn={0021-9606},
  journal={The Journal of Chemical Physics},
  author={Schwarz, Ingmar and Fortini, Andrea and Wagner, Claudia Simone and Wittemann, Alexander and Schmidt, Matthias},
  note={Article Number: 244501}
}
RDF
<rdf:RDF
    xmlns:dcterms="http://purl.org/dc/terms/"
    xmlns:dc="http://purl.org/dc/elements/1.1/"
    xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#"
    xmlns:bibo="http://purl.org/ontology/bibo/"
    xmlns:dspace="http://digital-repositories.org/ontologies/dspace/0.1.0#"
    xmlns:foaf="http://xmlns.com/foaf/0.1/"
    xmlns:void="http://rdfs.org/ns/void#"
    xmlns:xsd="http://www.w3.org/2001/XMLSchema#" > 
  <rdf:Description rdf:about="https://kops.uni-konstanz.de/server/rdf/resource/123456789/19738">
    <dc:creator>Fortini, Andrea</dc:creator>
    <dc:contributor>Schmidt, Matthias</dc:contributor>
    <dc:contributor>Wagner, Claudia Simone</dc:contributor>
    <dcterms:available rdf:datatype="http://www.w3.org/2001/XMLSchema#dateTime">2012-07-12T09:42:01Z</dcterms:available>
    <dcterms:isPartOf rdf:resource="https://kops.uni-konstanz.de/server/rdf/resource/123456789/29"/>
    <dc:creator>Wagner, Claudia Simone</dc:creator>
    <dcterms:bibliographicCitation>Publ. in: The journal of chemical physics ; 135 (2011), 24. - 244501 [10 pages]</dcterms:bibliographicCitation>
    <dc:creator>Wittemann, Alexander</dc:creator>
    <dc:language>eng</dc:language>
    <dcterms:abstract xml:lang="eng">We consider a theoretical model for a binary mixture of colloidal particles and spherical emulsion droplets. The hard sphere colloids interact via additional short-ranged attraction and long-ranged repulsion. The droplet-colloid interaction is an attractive well at the droplet surface, which induces the Pickering effect. The droplet-droplet interaction is a hard-core interaction. The droplets shrink in time, which models the evaporation of the dispersed (oil) phase, and we use Monte Carlo simulations for the dynamics. In the experiments, polystyrene particles were assembled using toluene droplets as templates. The arrangement of the particles on the surface of the droplets was analyzed with cryogenic field emission scanning electron microscopy. Before evaporation of the oil, the particle distribution on the droplet surface was found to be disordered in experiments, and the simulations reproduce this effect. After complete evaporation, ordered colloidal clusters are formed that are stable against thermal fluctuations. Both in the simulations and with field emission scanning electron microscopy, we find stable packings that range from doublets, triplets, and tetrahedra to complex polyhedra of colloids. The simulated cluster structures and size distribution agree well with the experimental results. We also simulate hierarchical assembly in a mixture of tetrahedral clusters and droplets, and find supercluster structures with morphologies that are more complex than those of clusters of single particles.</dcterms:abstract>
    <dspace:hasBitstream rdf:resource="https://kops.uni-konstanz.de/bitstream/123456789/19738/2/Colloidal%20cluster%20formation_JCP-2011.pdf"/>
    <bibo:uri rdf:resource="http://kops.uni-konstanz.de/handle/123456789/19738"/>
    <dc:contributor>Schwarz, Ingmar</dc:contributor>
    <dcterms:title>Monte Carlo computer simulations and electron microscopy of colloidal cluster formation via emulsion droplet evaporation</dcterms:title>
    <dc:contributor>Wittemann, Alexander</dc:contributor>
    <dcterms:hasPart rdf:resource="https://kops.uni-konstanz.de/bitstream/123456789/19738/2/Colloidal%20cluster%20formation_JCP-2011.pdf"/>
    <dcterms:issued>2011-12-28</dcterms:issued>
    <dcterms:rights rdf:resource="https://rightsstatements.org/page/InC/1.0/"/>
    <void:sparqlEndpoint rdf:resource="http://localhost/fuseki/dspace/sparql"/>
    <foaf:homepage rdf:resource="http://localhost:8080/"/>
    <dc:creator>Schwarz, Ingmar</dc:creator>
    <dc:date rdf:datatype="http://www.w3.org/2001/XMLSchema#dateTime">2012-07-12T09:42:01Z</dc:date>
    <dc:creator>Schmidt, Matthias</dc:creator>
    <dspace:isPartOfCollection rdf:resource="https://kops.uni-konstanz.de/server/rdf/resource/123456789/29"/>
    <dc:rights>terms-of-use</dc:rights>
    <dc:contributor>Fortini, Andrea</dc:contributor>
  </rdf:Description>
</rdf:RDF>

Interner Vermerk

xmlui.Submission.submit.DescribeStep.inputForms.label.kops_note_fromSubmitter

Kontakt
URL der Originalveröffentl.

Prüfdatum der URL

Prüfungsdatum der Dissertation

Finanzierungsart

Kommentar zur Publikation

Allianzlizenz
Corresponding Authors der Uni Konstanz vorhanden
Internationale Co-Autor:innen
Universitätsbibliographie
Ja
Begutachtet
Diese Publikation teilen