We use an x-ray free-electron laser to study the ultrafast lattice dynamics following above band-gap photoexcitation of the incipient ferroelectric potassium-tantalate, \kto. % We use ultrafast near-UV (central wavelength 266\,nm and 50 fs pulse duration) laser light to photoexcite charge carriers across the gap and probe the ultrafast lattice dynamics by recording the x-ray diffuse intensity throughout multiple Brillouin zones using pulses from the Linac Coherent Light Source (LCLS) (central wavelength 1.3\,\AA\, and <10~fs pulse duration). We observe changes in the diffuse intensity that we conclude are associated with a hardening of the soft transverse optical and transverse acoustic phonon branches along Γ to X and Γ to M. Using ground- and excited-state interatomic force constants from density functional theory (DFT) and assuming the phonon populations can be described by a time-dependent temperature, we fit the quasi-equilibrium thermal diffuse intensity to the experimental time-dependent intensity. We obtain the instantaneous lattice temperature and density of photoexcited charge carriers as a function of time delay. The DFT calculations demonstrate that photoexcitation transfers charge from oxygen 2p derived π-bonding orbitals to Ta 5d derived antibonding orbitals, further suppressing the ferroelectric instability and increasing the stability of the cubic, paraelectric structure.
@article{arxiv.2201.10769,
title = {Ultrafast Suppression of the Ferroelectric Instability in KTaO$_3$},
author = {Viktor Krapivin and Mingqiang Gu and D. Hickox-Young and S. W. Teitelbaum and Y. Huang and G. de la Peña and D. Zhu and N. Sirica and M. -C. Lee and R. P. Prasankumar and A. Maznev and K. A. Nelson and M. Chollet and James M. Rondinelli and D. A. Reis and M. Trigo},
journal= {arXiv preprint arXiv:2201.10769},
year = {2022}
}