Characterization of the surface environment of PbSe nanoparticles by correlating calculated and measured x-ray spectra

ORAL

Abstract

Given that defining characteristics of nanoparticles are often dictated by their surfaces, it is desirable to be able to control the surface environments. We seek this control through ligand exchange chemistry and investigate PbSe as a model system. We correlate calculated and measured x-ray spectra to quantify the extent of ligand exchange, validate our structural models, and characterize the optical and electronic properties induced by the new surface environment. Chemical shifts in x-ray photoelectron spectra indicate changes in atomic bonding at the surface, whereas x-ray absorption spectra reveal ligand conformation and binding coordination at the surface. The colloidal synthesis of PbSe particles is highly reliable and the resulting particles are technologically useful size-tunable IR absorbers. Such particles have Pb rich surfaces and native oleic acid coats. We replace the oleic acid with alternate ligands of choice, which may change the Pb:Se ratio at the particle surface.

Authors

  • Keith Gilmore

    • Lawrence Berkeley National Lab
  • Aaron Hammack

    • Lawrence Berkeley National Lab
  • April Sawvel

    • Lawrence Berkeley National Lab
  • Evelyn Rosen

    • Lawrence Berkeley National Lab
  • D. Frank Ogletree

    • Lawrence Berkeley National Lab
  • Jeffrey Urban

    • Lawrence Berkeley, National Laboratory
    • Molecular Foundry, Lawrence Berkeley National Laboratory
    • Lawrence Berkeley National Laboratory
    • Lawrence Berkeley National Lab
  • Delia Milliron

    • Lawrence Berkeley National Lab
  • Brett Helms

    • Lawrence Berkeley National Lab
  • Bruce Cohen

    • Lawrence Berkeley National Lab
  • David Prendergast

    • Molecular Foundry, Lawrence Berkeley National Laboratory
    • Molecular Foundry, Lawrence Berkeley National Laboratory (LBNL)
    • Lawrence Berkeley National Laboratory
    • Lawrence Berkeley National Lab