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arXiv · 2510.26011

Photoinduced Electronic Band Dynamics and Defect-mediated Surface Potential Evolution in PdSe$_2$

Abstract

We use time- and angle-resolved photoemission spectroscopy (TR-ARPES) combined with density functional theory to investigate ultrafast carrier dynamics in low-symmetry layered semiconducting PdSe$_2$. The indirect bandgap is determined to be 0.55~eV. Following photoexcitation above this gap, we resolve a valence band shift and broadening, both lasting less than a picosecond, consistent with bandgap renormalization and carrier scattering, indicative of strong many-body interactions. Subsequently, hot carriers populate the conduction band minimum and are captured by defect states. A surface photovoltage (SPV) of $\sim$ 67~meV emerges, persisting for over 50~ps, driven by defect-assisted charge separation. The formation of native vacancies, promoted by the low-symmetry lattice, likely gives rise to the mid-gap states responsible for this long-lived SPV response. Detailed analysis of TR-ARPES spectra disentangles the contributions of bandgap renormalization, carrier scattering, defect states, and SPV. These findings establish PdSe$_2$ as a prototypical layered quantum material exhibiting exotic photoresponses on ultrafast timescales.

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BibTeXRIS

Omar Abdul-Aziz, Manuel Tuniz, Wibke Bronsch, Fulvio Parmigiani, Federico Cilento, Daniel Wolverson, Charles J. Sayers, Giulio Cerullo, Claudia Dallera, Ettore Carpene, Paul H. M. van Loosdrecht, Hamoon Hedayat. 2025-10-29. Photoinduced Electronic Band Dynamics and Defect-mediated Surface Potential Evolution in PdSe$_2$. https://arxiv.org/abs/2510.26011

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