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Updated: Jan 11, 2026

Synthesis and Reaction Chemistry of Nanosize Monosodium Titanate
Published on: February 23, 2016
Potassium Coordination Stabilized Ruδ+ State on Potassium Titanate Nanowire for Efficient Photothermal CO2
Xingzhi Wang1, Wenshu Zhao1, Chengxin Liu1
1Institute for Advanced Interdisciplinary Research (iAIR), School of Chemistry and Chemical Engineering, University of Jinan, Jinan, 250022, P. R. China.
Abstract:
Photothermal CO2 methanation offers a solution to achieve both the decarbonization targets and the substitution of fossil fuel feedstocks using renewable energy. The slightly oxidized Ru (Ruδ+) site is an active site for low-temperature CO2 activation. However, the susceptibility of Ruδ+ to reduction under the photothermal reaction process is a key limitation to the stabilization. Herein, the K2RuO3 with high Ru─O bond strength via potassium coordination stabilized onto K2Ti6O13 is constructed (KTO-Ruδ+/Ru0). Benefiting from reducing activation energy by the Ruδ+ as Lewis active sites, the CO2 hydrogenation path for KTO-Ruδ+/Ru0 tends to favor a more advantageous formate pathway. In addition, K ions in K2RuO3 and K2Ti6O13 as alkaline promoters facilitate the adsorption of CO2 and suppress dehydration to stablize the Ruδ+. The KTO-Ruδ+/Ru0 exhibits remarkable photothermal CO2 methanation activity (CH4 yield of 526 ± 5.5 mmol gcat -1 h-1), and CH4 selectivity reaches over 99.9%. Taking advantage of thin KTO-Ruδ+/Ru0 inorganic porous paper, the flow reactor system with the efficient contact among the KTO-Ruδ+/Ru0, flowing gas and the solar illumination obtains an ultrahigh photothermal CH4 production rate of 0.99 mol gcat -1 h-1 at a gas flow rate of 35 mL min-1 (gas hourly space velocity of 210 000 mL gcat -1 h-1) with ≈96.6% CH4 selectivity. This work suggests alternative perspectives for designing stabilized oxidation-state photothermal catalysts for flow photothermal CO2 methanation.
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