A brief review: Ultrafast electron diffractive voltammetry: General formalism and applications
arXiv:1309.3353 · doi:10.1142/S0217984911027492
Abstract
We present a general formalism of ultrafast diffractive voltammetry approach as a contact-free tool to investigate the ultrafast surface charge dynamics in nanostructured interfaces. As case studies, the photoinduced surface charging processes in oxidized silicon surface and the hot electron dynamics in nanoparticle-decorated interface are examined based on the diffractive voltammetry framework. We identify that the charge redistribution processes appear on the surface, sub-surface, and vacuum levels when driven by intense femtosecond laser pulses. To elucidate the voltammetry contribution from different sources, we perform controlled experiments using shadow imaging techniques and N-particle simulations to aid the investigation of the photovoltage dynamics in the presence of pho- toemission. We show that voltammetry contribution associated with photoemission has a long decay tail and plays a more visible role in the nanosecond timescale, whereas the ultrafast voltammetry are dominated by local charge transfer, such as surface charging and molecular charge transport at nanostructured interfaces. We also discuss the general applicability of the diffractive voltammetry as an integral part of quantitative ultrafast electron diffraction methodology in researching different types of interfaces having distinctive surface diffraction and boundary conditions.
14 figures
References in corpus (6)
- Direct observation of optically induced transient structures in graphite using ultrafast electron crystallography
- Dynamics of Size-Selected Gold Nanoparticles Studied by Ultrafast Electron Nanocrystallography
- The development and applications of ultrafast electron nanocrystallography
- Ultrafast imaging of photoelectron packets generated from graphite surface
- Photovoltage Dynamics of the Hydroxylated Si(111) Surface Investigated by Ultrafast Electron Diffraction
- Electronically Driven Fragmentation of Silver Nanocrystals Revealed by Ultrafast Electron Crystallography