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Uniform Distance Scaling Behavior of Planet-Satellite Nanostructures Made by Star Polymers.

Christian RossnerQiyun TangOtto GlatterMarcus MüllerPhilipp Vana
Published in: Langmuir : the ACS journal of surfaces and colloids (2017)
Planet-satellite nanostructures from RAFT star polymers and larger (planet) as well as smaller (satellite) gold nanoparticles are analyzed in experiments and computer simulations regarding the influence of arm number of star polymers. A uniform scaling behavior of planet-satellite distances as a function of arm length was found both in the dried state (via transmission electron microscopy) after casting the nanostructures on surfaces and in the colloidally dispersed state (via simulations and small-angle X-ray scattering) when 2-, 3-, and 6-arm star polymers were employed. This indicates that the planet-satellite distances are mainly determined by the arm length of star polymers. The observed discrepancy between TEM and simulated distances can be attributed to the difference of polymer configurations in dried and dispersed state. Our results also show that these distances are controlled by the density of star polymers end groups, and the number of grabbed satellite particles is determined by the magnitude of the corresponding density. These findings demonstrate the feasibility to precisely control the planet-satellite structures at the nanoscale.
Keyphrases
  • gold nanoparticles
  • high resolution
  • electron microscopy
  • molecular dynamics
  • magnetic resonance
  • escherichia coli
  • deep learning
  • staphylococcus aureus
  • computed tomography
  • atomic force microscopy