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Water‐Mediated Selectivity Control of CH<sub>3</sub>OH versus CO/CH<sub>4</sub> in CO<sub>2</sub> Photoreduction on Single‐Atom Implanted Nanotube Arrays

Juan‐Ru Huang, Wenxiong Shi, Shen‐Yue Xu, Hao Luo, Jiangwei Zhang, Tong‐Bu Lu, Zhiming Zhang

2023Advanced Materials44 citationsDOIOpen Access PDF

Abstract

Abstract Controllable methanol production in artificial photosynthesis is highly desirable due to its high energy density and ease of storage. Herein, single atom Fe is implanted into TiO 2 /SrTiO 3 (TSr) nanotube arrays by two‐step anodization and Sr‐induced crystallization. The resulting Fe‐TSr with both single Fe reduction centers and dominant oxidation facets (001) contributes to efficient CO 2 photoreduction and water oxidation for controlled production of CH 3 OH and CO/CH 4 . The methanol yield can reach to 154.20 µmol g cat −1 h −1 with 98.90% selectivity by immersing all the catalyst in pure water, and the yield of CO/CH 4 is 147.48 µmol g cat −1 h −1 with &gt;99.99% selectivity when the catalyst completely outside water. This CH 3 OH yield is 50 and 3 times higher than that of TiO 2 and TSr and stands among all the state‐of‐the‐art catalysts. The facile gas–solid and gas–liquid–solid phase switch can selectively control CH 3 OH production from ≈0% (above H 2 O) to 98.90% (in H 2 O) via slowly immersing the catalyst into water, where abundant •OH and H 2 O around Fe sites play important role in selective CH 3 OH production. This work highlights a new insight for water‐mediated CO 2 photoreduction to controllably produce CH 3 OH.

Topics & Concepts

CatalysisSelectivityMaterials scienceYield (engineering)MethanolAtom (system on chip)NanotubeCrystallizationChemical engineeringNanotechnologyCarbon nanotubeOrganic chemistryChemistryComputer scienceEngineeringEmbedded systemMetallurgyAdvanced Photocatalysis TechniquesCatalytic Processes in Materials ScienceElectronic and Structural Properties of Oxides