Engineering a local acid-like environment in alkaline medium for efficient hydrogen evolution reaction.

Tan, Hao; Tang, Bing; Lu, Ying; Ji, Qianqian; Lv, Liyang; Duan, Hengli; Li, Na; Wang, Yao et al. · Nat Commun · 2022

basic_science · Level V

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Abstract

Tuning the local reaction environment is an important and challenging issue for determining electrochemical performances. Herein, we propose a strategy of intentionally engineering the local reaction environment to yield highly active catalysts. Taking Pt<sup>δ-</sup> nanoparticles supported on oxygen vacancy enriched MgO nanosheets as a prototypical example, we have successfully created a local acid-like environment in the alkaline medium and achieve excellent hydrogen evolution reaction performances. The local acid-like environment is evidenced by operando Raman, synchrotron radiation infrared and X-ray absorption spectroscopy that observes a key H<sub>3</sub>O<sup>+</sup> intermediate emergence on the surface of MgO and accumulation around Pt<sup>δ-</sup> sites during electrocatalysis. Further analysis confirms that the critical factors of the forming the local acid-like environment include: the oxygen vacancy enriched MgO facilitates H<sub>2</sub>O dissociation to generate H<sub>3</sub>O<sup>+</sup> species; the F centers of MgO transfers its unpaired electrons to Pt, leading to the formation of electron-enriched Pt<sup>δ-</sup> species; positively charged H<sub>3</sub>O<sup>+</sup> migrates to negatively charged Pt<sup>δ-</sup> and accumulates around Pt<sup>δ-</sup> nanoparticles due to the electrostatic attraction, thus creating a local acidic environment in the alkaline medium.