Single-Atom-Layer Metallization of Plasmonic Semiconductor Surface for Selectively Enhancing IR-Driven Photocatalytic Reduction of CO<sub>2</sub> into CH<sub>4</sub>.

Lu, Na; Jiang, Xiaoyi; Zhu, Yongan; Yu, Linqun; Du, Shiwen; Huang, Jindou; Zhang, Zhenyi · Adv Mater · 2025

basic_science · Level V

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Abstract

Efficient harvesting and utilization of abundant infrared (IR) photons from sunlight is crucial for the industrial application of photocatalytic CO<sub>2</sub> reduction. Plasmonic semiconductors have significant potential in absorbing low-energy IR photons to generate energetic hot electrons. However, modulating these hot electrons to selectively enhance the activity of CO<sub>2</sub> reduction into CH<sub>4</sub> remains a challenge. Herein, the study proposes a single-atom-layer (SAL) metallization strategy to enhance the generation of IR-driven hot electrons and facilitate their transfer from plasmonic semiconductors to CO<sub>2</sub> for producing CH<sub>4</sub>. This strategy is demonstrated using a paradigmatic W<sub>18</sub>O<sub>49</sub>@W-Sn nanowire array (NWA), where Sn<sup>2+</sup> ions are grafted onto exposed O atoms on the surface of plasmonic W<sub>18</sub>O<sub>49</sub> to form a surface W-Sn SAL. The incorporation of Sn single atoms enhances plasmonic absorption in IR light for W<sub>18</sub>O<sub>49</sub> NWA. The W-Sn SAL not only promotes CO<sub>2</sub> adsorption and reduces its reaction activation energy barrier but also shifts the endoergic CO-protonation process toward an exoergic reaction pathway. Thus, the W<sub>18</sub>O<sub>49</sub>@W-Sn NWA exhibits >98% selectivity for IR-driven CO<sub>2</sub> reduction to CH<sub>4</sub> with an activity over 9.0 times higher than that of bare W<sub>18</sub>O<sub>49</sub> NWA. This SAL metallization strategy can also be applied to other plasmonic semiconductors for selectively enhancing CO<sub>2</sub>-to-CH<sub>4</sub> reduction reactions.