Single-Molecule Study of a Plasmon-Induced Reaction for a Strongly Chemisorbed Molecule

Angew Chem Int Ed Engl. 2020 May 11;59(20):7960-7966. doi: 10.1002/anie.202001863. Epub 2020 Apr 6.

Abstract

Chemical reactions induced by plasmons achieve effective solar-to-chemical energy conversion. However, the mechanism of these reactions, which generate a strong electric field, hot carriers, and heat through the excitation and decay processes, is still controversial. In addition, it is not fully understood which factor governs the mechanism. To obtain mechanistic knowledge, we investigated the plasmon-induced dissociation of a single-molecule strongly chemisorbed on a metal surface, two O2 species chemisorbed on Ag(110) with different orientations and electronic structures, using a scanning tunneling microscope (STM) combined with light irradiation at 5 K. A combination of quantitative analysis by the STM and density functional theory calculations revealed that the hot carriers are transferred to the antibonding (π*) orbitals of O2 strongly hybridized with the metal states and that the dominant pathway and reaction yield are determined by the electronic structures formed by the molecule-metal chemical interaction.

Keywords: oxygen; plasmon; reaction mechanisms; scanning tunneling microscope; single molecule.