Real-Time Electron-Electron Scattering Dynamics in Plasmonic Nanostructures
Yanze Wu, George C. Schatz

TL;DR
This paper introduces a novel real-time simulation method combining DFTB and Lindblad quantum Boltzmann equations to study electron-electron scattering in plasmonic nanostructures, revealing energy-dependent relaxation dynamics.
Contribution
The work develops a self-consistent RT-TDDFTB+LQBE approach to model electron-electron scattering in nanoparticles with hundreds of atoms, capturing detailed relaxation and decoherence processes.
Findings
Quasiparticle lifetimes are highly energy dependent.
Quantum effects cause fluctuating lifetimes in sub-2 nm clusters.
Decoherence occurs within 10 fs, faster than population relaxation.
Abstract
Electron-electron scattering is one of the most important hot carrier relaxation pathways in plasmonic nanoparticles. Understanding the dynamics of this scattering process and the effects of this on excited state dephasing and relaxation is therefore essential for the design of plasmonic nanostructures, including optical properties and the dynamics of electrons in plasmon-driven catalytic reactions. In this work, we have developed a novel approach that incorporates real-time time-dependent density functional tight-binding (DFTB) simulations with the Lindblad quantum Boltzmann equation (LQBE) based on a screened electron-electron interaction that is determined by the random phase approximation (RPA). This approach enables a self-consistent description of electron-electron scattering effects that occur during and after plasmon excitation in clusters/nanoparticles with hundreds of atoms.…
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Taxonomy
TopicsGold and Silver Nanoparticles Synthesis and Applications · Plasmonic and Surface Plasmon Research · Dust and Plasma Wave Phenomena
