Theory and experiment of optical absorption of platinum nanoparticles synthesized by gamma radiation

Elham Gharibshahi, Elias Saion, Roy Luigi Johnston, Ahmadreza Ashraf

Research output: Contribution to journalArticlepeer-review

2 Citations (Scopus)
181 Downloads (Pure)

Abstract

Platinum nanoparticles were synthesized using the gamma radiolytic technique in an aqueous solution containing Platinum tetraammine chloride in presence of poly vinyl pyrrolidone, isopropanol, tetrahydrofuran and deionized water. The gamma irradiation was carried out in a60Co gamma source chamber and the particle size was found to decrease from 4.88 to 3.14 nm on increasing the gamma radiation dose from 80 to 120 kGy. UV-visible absorption spectra were measured and revealed two steady absorption maxima at 216 and 264 nm in the UV region, which was blue shifted (i.e. toward lower wavelength) with decreasing particle size. By taking the conduction electrons of an isolated particle that are not entirely free, but instead bound to their respective quantum levels, the optical absorption of platinum nanoparticles can be calculated via intra-band quantum excitation for particle sizes similar to those measured experimentally. We found that the calculated absorption maxima of electronic excitations matched the measured absorption maxima well. This finding suggests that the optical absorption of metal nanoparticles commonly applied in nanoscience and nanotechnology can be described accurately by the quantum excitation of conduction electrons.

Original languageEnglish
Pages (from-to)204-210
Number of pages7
JournalApplied Radiation and Isotopes
Volume147
Early online date22 Feb 2019
DOIs
Publication statusPublished - 1 May 2019

Bibliographical note

Copyright © 2019 Elsevier Ltd. All rights reserved.

Keywords

  • platinum nanoparticles
  • gamma radiolysis
  • optical absorption
  • absorption maxima
  • intra-band quantum excitation
  • theory of metal nanoparticles

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