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Influence of Keto-Enol Tautomerism in Regulating CO Photoreduction Activity in Porous Organic Porphyrinic Photopolymers.

作者信息

Boruah Ankita, Boro Bishal, Wang Jiarui, Paul Ratul, Ghosh Rajib, Mohapatra Debansh, Li Pei-Zhou, Zhang Xinglong, Mondal John

机构信息

Department of Catalysis & Fine Chemicals, CSIR- Indian Institute of Chemical Technology, Uppal Road, Hyderabad, Telangana State 500007, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201001, India.

出版信息

ACS Appl Mater Interfaces. 2025 Jan 8;17(1):1259-1272. doi: 10.1021/acsami.4c17714. Epub 2024 Dec 29.

Abstract

Photoassisted CO reduction employing a metal-free system is both challenging and fascinating. In our study, we present a structural engineering strategy to tune the potential energy barrier, which, in turn, affects the photoreduction ability. A series of porphyrin-based porous organic polymers () were hydrothermally synthesized and the influence of keto-enol tautomerization on the CO photoreduction potential has been rigorously investigated. Among the screened photocatalysts, demonstrated the highest CO/CO conversion efficacy, producing 518 μmol g h of CO selectively under light illumination for 2 h. Density Functional Theory computational investigations concretely highlighted the reaction mechanistic pathway supporting the CO conversion reaction. Additionally, the electron density mapping underpinned the thermodynamic energy barrier requirements for the progress of the reaction and elucidated the reason for the enhanced photocatalytic activity seen in . In situ Fourier-Transform Infrared spectroscopy was carried out for real-time investigations to understand the synergistic reaction dynamics and unlock the generation of key reaction intermediates during the CO reduction reaction process. Additionally, ultrafast transient absorption spectroscopy plays a vital role in understanding the surface interaction dynamics of our designed catalysts. Overall, this straightforward modulation strategy not only enhances CO reduction performance but also contributes toward presenting a crisp and concrete understanding of the structure-property relationship, opening up the possibilities for the development of artificial photocatalysts. The results introduce a strategy for photocatalytic CO reduction using an efficient, stable, and recyclable metal-free photocatalytic system.

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