<oai_dc:dc xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:oai_dc="http://www.openarchives.org/OAI/2.0/oai_dc/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/oai_dc/ http://www.openarchives.org/OAI/2.0/oai_dc.xsd">
  <dc:creator>Lattuada, Marco</dc:creator>
  <dc:creator>Zaccone, Alessio</dc:creator>
  <dc:creator>Wu, Hua</dc:creator>
  <dc:creator>Morbidelli, Massimo</dc:creator>
  <dc:date>2016-06-15</dc:date>
  <dc:description xmlns:ns0="xml" ns0:lang="en">Application of shear flow to charge-stabilized aqueous colloidal suspensions is  ubiquitous in industrial applications and as a means to achieve controlled field-induced  assembly of nanoparticles. Yet, applying shear flow to a charge-stabilized colloidal  suspension, which is initially monodisperse and in quasi-equilibrium leads to non-trivial  clustering phenomena (and sometimes to a gelation transition), dominated by the  complex interplay between DLVO interactions and shear flow. The quantitative  understanding of these strongly nonequilibrium phenomena is still far from being  complete. By taking advantage of a recent shear-induced aggregation rate theory  developed in our group, we present here a systematic numerical study, based on the  governing master kinetic equation (population-balance) for the shear-induced  clustering and breakup of colloids exposed to shear flow. In the presence of sufficiently  stable particles, the clustering kinetics is characterized by an initial very slow growth,  controlled by repulsion. During this regime, particles are slowly aggregating to form  clusters, the reactivity of which increases along with their size growth. When their size  reaches a critical threshold, a very rapid, explosive-like growth follows, where shear  forces are able to overcome the energy barrier between particles. This stage  terminates when a dynamic balance between shear-induced aggregation and cluster  breakage is reached. It is also observed that these systems are characterized by a  cluster mass distribution that for a long time presents a well-defined bimodality. The  model predictions are quantitatively in excellent agreement with available experimental  data, showing how the theoretical picture is able to quantitatively account for the  underlying nonequilibrum physics.</dc:description>
  <dc:format>application/pdf</dc:format>
  <dc:identifier>https://folia.unifr.ch/global/documents/305063</dc:identifier>
  <dc:identifier>https://folia.unifr.ch/documents/305063/files/lat_pbd.pdf</dc:identifier>
  <dc:identifier>https://folia.unifr.ch/documents/305063/files/lat_pbd_sm.pdf</dc:identifier>
  <dc:language>eng</dc:language>
  <dc:relation>info:eu-repo/semantics/altIdentifier/doi/10.1039/C6SM01097K</dc:relation>
  <dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
  <dc:rights>License undefined</dc:rights>
  <dc:source>Soft Matter. - 2016, vol. 12, no. 24, p. 5313–5324</dc:source>
  <dc:subject>info:eu-repo/classification/udc/54</dc:subject>
  <dc:title xmlns:ns1="xml" ns1:lang="en">Population-balance description of shear-induced clustering, gelation and suspension viscosity in sheared DLVO colloids</dc:title>
  <dc:type>http://purl.org/coar/resource_type/c_6501</dc:type>
</oai_dc:dc>
