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The critical role of hot carrier cooling in optically excited structural transitions

Physics

The critical role of hot carrier cooling in optically excited structural transitions

W. Liu, J. Luo, et al.

This groundbreaking study by Wen-Hao Liu, Jun-Wei Luo, Shu-Shen Li, and Lin-Wang Wang explores the crucial influence of hot carrier cooling in photoinduced phase transitions, revealing how atomic dynamics play a pivotal role in phase transitions of IrTe₂. The findings shed light on phenomena like electron cooling leading to kinetic phase transitions and ultrafast recovery of Ir-Ir dimers.... show more
Abstract
The hot carrier cooling occurs in most photoexcitation-induced phase transitions (PIPTs), but its role has often been neglected in many theoretical simulations as well as in proposed mechanisms. Here, by including the previously ignored hot carrier cooling in real-time time-dependent density functional theory (rt-TDDFT) simulations, we investigated the role of hot carrier cooling in PIPTs. Taking IrTe₂ as an example, we reveal that the cooling of hot electrons from the higher energy levels of spatially extended states to the lower energy levels of the localized Ir-Ir dimer antibonding states strengthens remarkably the atomic driving forces and enhances atomic kinetic energy. These two factors combine to dissolute the Ir-Ir dimers on a timescale near the limit of atomic motions, thus initiating a deterministic kinetic phase transition. We further demonstrate that the subsequent cooling induces nonradiative recombination of photoexcited electrons and holes, leading to the ultrafast recovery of the Ir-Ir dimers observed experimentally. These findings provide a complete picture of the atomic dynamics in optically excited structural phase transitions.
Publisher
npj Computational Materials
Published On
Jul 22, 2021
Authors
Wen-Hao Liu, Jun-Wei Luo, Shu-Shen Li, Lin-Wang Wang
Tags
photoinduced phase transitions
hot carrier cooling
IrTe₂
kinetic phase transition
nonradiative recombination
electronic dynamics
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