Homolytic H<sub>2</sub> dissociation for enhanced hydrogenation catalysis on oxides.

Yang, Chengsheng; Ma, Sicong; Liu, Yongmei; Wang, Lihua; Yuan, Desheng; Shao, Wei-Peng; Zhang, Lunjia; Yang, Fan et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

The limited surface coverage and activity of active hydrides on oxide surfaces pose challenges for efficient hydrogenation reactions. Herein, we quantitatively distinguish the long-puzzling homolytic dissociation of hydrogen from the heterolytic pathway on Ga<sub>2</sub>O<sub>3</sub>, that is useful for enhancing hydrogenation ability of oxides. By combining transient kinetic analysis with infrared and mass spectroscopies, we identify the catalytic role of coordinatively unsaturated Ga<sup>3+</sup> in homolytic H<sub>2</sub> dissociation, which is formed in-situ during the initial heterolytic dissociation. This site facilitates easy hydrogen dissociation at low temperatures, resulting in a high hydride coverage on Ga<sub>2</sub>O<sub>3</sub> (H/surface Ga<sup>3+</sup> ratio of 1.6 and H/OH ratio of 5.6). The effectiveness of homolytic dissociation is governed by the Ga-Ga distance, which is strongly influenced by the initial coordination of Ga<sup>3+</sup>. Consequently, by tuning the coordination of active Ga<sup>3+</sup> species as well as the coverage and activity of hydrides, we achieve enhanced hydrogenation of CO<sub>2</sub> to CO, methanol or light olefins by 4-6 times.