Synergy of Facet and Defect on Carrier Dynamics of Photocatalyst Particles

Nano Lett. 2025 Jan 15;25(2):898-904. doi: 10.1021/acs.nanolett.4c05916. Epub 2025 Jan 3.

Abstract

Cu2O semiconductors are highly regarded in photocatalysis for their outstanding photogenerated carrier dynamics. However, the mechanisms underlying carrier separation and recombination in Cu2O remain elusive, largely due to the intricate interplay between defects and facet engineering. Herein, we elucidate the critical synergy between internal defects and facets in Cu2O for carrier dynamics. Specifically, split Cu vacancy and H interstitial defects preferentially capture holes and electrons, respectively, leading to effective separation of photogenerated carriers in the different Cu2O facets. Moreover, H interstitials can also convert split Cu vacancies into H-filled Cu vacancies, eliminating midgap states and extending the photogenerated carrier lifetime of Cu2O. The efficient separation and extended lifetime of carrier enhances the photocatalytic efficiency of Cu2O. Our findings reveal the defect-dependent mechanism for photogenerated carrier dynamics in photocatalysts with different facets, offering valuable insights for facet regulation in high-performance photocatalysis.

Keywords: defect; facet; first-principles calculations; nonadiabatic molecular dynamics simulations; photogenerated carrier.