Holographic Perfusion Porosimetry of Individual Colloidal Particles

ORAL

Abstract

The in-line hologram of a micrometer-scale colloidal sphere can be analyzed with the Lorenz-Mie theory of light scattering to obtain precise measurements of the sphere's diameter and refractive index. The same technique also can be used to characterize porous and irregularly shaped colloidal particles provided that the extracted parameters are interpreted with effective-medium theory to represent the properties of an equivalent effective sphere. We demonstrate through experiments on mesoporous silica spheres, protein aggregates and nanoparticle agglomerates that the effective-sphere model consistently accounts for the influence of the medium on the particle's measured effective refractive index.This dependence yields information on the particles' structure and composition that cannot be obtained in other ways, including their porosity, the polydispersity of their porosity, and the size distribution and connectivity of their pores.

*This work was supported by the National Science Foundation under Award Number IPP-1631815, and by the National Center For Advancing Translational Sciences of the National Institutes of Health under Award Number R44TR001590. Additional support was provided by the MRSEC program of the National Science Foundation under award number DMR-1420073.

Presenters

  • David G Grier

    • New York University
    • New York Univ NYU
    • Department of Physics, New York University

Authors

  • David G Grier

    • New York University
    • New York Univ NYU
    • Department of Physics, New York University
  • Mary Ann Odete

    • Spheryx, Inc
    • Spheryx, Inc.
  • Fook C Cheong

    • Spheryx, Inc
    • Spheryx, Inc.
  • Annemarie Winters

    • Spheryx, Inc
    • Spheryx, Inc.
  • Jesse J Elliott

    • Department of Physics, University of Chicago
  • Laura A Philips

    • Spheryx, Inc.