Comparison of Composite Materials Designed to Optimize Heterogeneous Decatungstate Oxidative Photocatalysis.

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Bibliographic Details
Title: Comparison of Composite Materials Designed to Optimize Heterogeneous Decatungstate Oxidative Photocatalysis.
Authors: Ong, Julia, Cajka, Benjamin, Scaiano, Juan C.
Source: Molecules; Sep2025, Vol. 30 Issue 17, p3597, 13p
Subject Terms: HETEROGENEOUS catalysis, PHOTOCATALYSIS, COMPOSITE materials, CATALYSTS recycling, PHOTOCHEMISTRY, PHOTOCATALYSTS, SUSTAINABLE chemistry, ULTRAVIOLET radiation
Abstract: Catalysis plays a pivotal role in green chemistry practices, particularly in reducing waste generated during chemical synthesis. Decatungstate (DT) emerges as a potent photocatalyst for Type I oxidations, exhibiting remarkable resilience to oxygen quenching, a characteristic that sets it apart from other excited triplet state photocatalysts. While homogeneous DT catalysis demonstrates effectiveness, its solubility poses challenges for its separation and recycling. To address these limitations, we focus on the development and comparison of heterogeneous DT photocatalysts, aiming to optimize their yield, recovery, and reusability. We synthesized tetrabutylammonium decatungstate (TBADT)-supported catalysts using silica, alumina, titanium dioxide, and glass wool and characterized them using diffuse reflectance measurements. Subsequently, we evaluated their photocatalytic performance by monitoring the oxidation of 1-phenylethanol and cyclohexanol under UVA irradiation. Our findings reveal that TBADT@silica emerges as the most effective catalyst, achieving approximately 20% conversion of cyclohexanol and 50% conversion of 1-phenylethanol with good reusability. Interestingly, we observed that 3-aminopropyl-triethoxysilane (APTES) treatment, intended to enhance DT anchoring, unexpectedly quenches the 3DT* triplet state, reducing catalytic activity. This unexpected finding underscores the importance of careful consideration in designing robust and recyclable heterogeneous decatungstate catalysts. Our research contributes significantly to the advancement of heterogeneous photocatalysis, paving the way for future applications in flow photochemistry. Further, we share a Python code (Google 3.12.11) to correct spectra obtained in Cary spectrometers. [ABSTRACT FROM AUTHOR]
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Database: Complementary Index
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