Rational Design of Dot-on-Rod Nano-Heterostructure for Photocatalytic CO<sub>2</sub> Reduction: Pivotal Role of Hole Transfer and Utilization.

Xin, Zhi-Kun; Gao, Yu-Ji; Gao, Yuying; Song, Hong-Wei; Zhao, Jiaqing; Fan, Fengtao; Xia, An-Dong; Li, Xu-Bing et al. · Adv Mater · 2022

basic_science · Level V

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Abstract

Inspired by green plants, artificial photosynthesis has become one of the most attractive approaches toward carbon dioxide (CO<sub>2</sub> ) valorization. Semiconductor quantum dots (QDs) or dot-in-rod (DIR) nano-heterostructures have gained substantial research interest in multielectron photoredox reactions. However, fast electron-hole recombination or sluggish hole transfer and utilization remains unsatisfactory for their potential applications. Here, the first application of a well-designed ZnSe/CdS dot-on-rods (DORs) nano-heterostructure for efficient and selective CO<sub>2</sub> photoreduction with H<sub>2</sub> O as an electron donor is presented. In-depth spectroscopic studies reveal that surface-anchored ZnSe QDs not only assist ultrafast (≈2 ps) electron and hole separation, but also promote interfacial hole transfer participating in oxidative half-reactions. Surface photovoltage (SPV) spectroscopy provides a direct image of spatially separated electrons in CdS and holes in ZnSe. Therefore, ZnSe/CdS DORs photocatalyze CO<sub>2</sub> to CO with a rate of ≈11.3 µmol g<sup>-1</sup> h<sup>-1</sup> and ≥85% selectivity, much higher than that of ZnSe/CdS DIRs or pristine CdS nanorods under identical conditions. Obviously, favored energy-level alignment and unique morphology balance the utilization of electrons and holes in this nano-heterostructure, thus enhancing the performance of artificial photosynthetic solar-to-chemical conversion.