Bioinspired catalytic pocket promotes CO<sub>2</sub>-to-ethanol photoconversion on colloidal quantum wells.

Pan, Rongrong; Wang, Qi; Zhao, Yan; Feng, Zhendong; Xu, Yanjun; Wang, Zhuan; Li, Yapeng; Zhang, Xiuming et al. · Sci Adv · 2024

basic_science · Level V

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Abstract

Sluggish surface reaction is a critical factor that strongly governs the efficiency of photocatalytic solar fuel production, particularly in CO<sub>2</sub>-to-ethanol photoconversion. Here, inspired by the principles underlying enzyme catalytic proficiency and specificity, we report a biomimetic photocatalyst that affords superior CO<sub>2</sub>-to-ethanol photoreduction efficiency (5.5 millimoles gram<sup>-1</sup> hour<sup>-1</sup> in average with 98.2% selectivity) distinctly surpassing the state of the art. The key is to create a class of catalytic pocket, which contains spatially organized NH<sub>2</sub>…Cu-Se(-Zn) multiple functionalities at close range, over ZnSe colloidal quantum wells. Such structure offers a platform to mimic the concerted cooperation between the active site and surrounding secondary/outer coordination spheres in enzyme catalysis. This is manifested by the chemical adsorption and activation of CO<sub>2</sub> via a bent geometry, favorable stabilization toward a variety of important intermediates, promotion of multielectron/proton transfer processes, etc. These results highlight the potential of incorporating enzyme-like features into the design of photocatalysts to overcome the challenges in CO<sub>2</sub> reduction.