AI Article Synopsis

  • Research on ultrafine gold nanoparticles has recently gained attention due to challenges in synthesis and unique electron dynamics observed in atomically precise Au(SR) nanoparticles.
  • A study using femtosecond transient-absorption spectroscopy identified a rapid relaxation process (4-5 ps) along with electron-phonon coupling (around 1 ps) and slower phonon interactions (over 100 ps).
  • Findings indicate consistent plasmon-bleaching signals across different Au(SR) types and solvents, suggesting plasmon splitting and quantum effects in small gold cores, paving the way for future investigations into nanometals.

Article Abstract

Research on plasmons of gold nanoparticles has gained broad interest in nanoscience. However, ultrasmall sizes near the metal-to-nonmetal transition regime have not been explored until recently due to major synthetic difficulties. Herein, intriguing electron dynamics in this size regime is observed in atomically precise Au(SR) nanoparticles. Femtosecond transient-absorption spectroscopy reveals an unprecedented relaxation process of 4-5 ps-a fast phonon-phonon relaxation process, together with electron-phonon coupling (∼1 ps) and normal phonon-phonon coupling (>100 ps) processes. Three types of -R capped Au(SR) all exhibit two plasmon-bleaching signals independent of the -R group as well as solvent, indicating plasmon splitting and quantum effect in the ultrasmall core of Au(SR) This work is expected to stimulate future work on the transition-size regime of nanometals and discovery of behavior of nascent plasmons.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6613166PMC
http://dx.doi.org/10.1073/pnas.1904337116DOI Listing

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