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  A compact photoreactor for automated H2 photoproduction : revisiting the (Pd, Pt, Au)/TiO2 (P25) Schottky junctions

Jiménez-Calvo, P., Muñoz-Batista, M. J., Isaacs, M., Ramnarain, V., Ihiawakrim, D., Li, X., et al. (2023). A compact photoreactor for automated H2 photoproduction: revisiting the (Pd, Pt, Au)/TiO2 (P25) Schottky junctions. Chemical Engineering Journal, 459: 141514. doi:10.1016/j.cej.2023.141514.

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 Creators:
Jiménez-Calvo, Pablo1, Author                 
Muñoz-Batista, Mario J., Author
Isaacs, Mark, Author
Ramnarain, Vinavadini, Author
Ihiawakrim, Dris, Author
Li, Xiaoyan, Author
Ángel Muñoz-Márquez, Miguel, Author
Teobaldi, Gilberto, Author
Kociak, Mathieu, Author
Paineau, Erwan, Author
Affiliations:
1Volker Strauß, Kolloidchemie, Max Planck Institute of Colloids and Interfaces, Max Planck Society, ou_3025555              

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Free keywords: Photoreactor; Photonic profile; Schottky junctions; Co-catalysts; Photocatalytic hydrogen
 Abstract: The configuration and geometry of chemical reactors underpins the accuracy of performance evaluation for photocatalytic materials and, accordingly, the development and validation of thermodynamic and kinetic model reactions. The lack of accurate photonic, mass, and heat transport profiles for photochemical reactors hinder standardization, scale-up, and ultimately comparison between different experiments. This work proposes two contributions at the interface between engineering of chemical process and materials science: (A) an automated compact stainless-steel photoreactor with 40 cm<sup>3</sup> and 65 cm</sup>2</sup> of volume and area, respectively, for hydrogen photoproduction as a model reaction and (B) the synthesis, characterization, and performance of TiO2 Schottky junctions, using Pd, Pt, or Au nanoparticles (ca. 0.5, 1, 2 wt% loadings each) to validate the operation of the reactor. A photonic profile methodology is implemented to the studied reactor to obtain the local light absorption profile, opening up for evaluation of the local quantum yield calculation for the selected materials. A combination of transmission electron microscopy, (X-ray/ultraviolet) photoelectron/electron, energy loss/infrared spectroscopies, X-ray scattering, inductively coupled plasma atomic emission spectroscopy, and ultraviolet–visible spectrophotometry is employed to determine the distinctive surface and bulk properties to build structure–function correlations. The (Pd, Pt, Au)/TiO2 Schottky junction exhibits H<sub>2</sub> production rates slightly higher than previous studies, with quantum yields almost 2-fold higher than reported values. These results, demonstrate that the proposed novel geometry of the photoreactor improves the photonic, heat, and mass profiles. An in-depth analysis of the Au plasmon was investigated coupling electron energy loss spectroscopy, UV–vis, and transmission electron microscope, resulting in insightful information about the Au NP mode at the TiO<sub>2</sub> interface.

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Language(s): eng - English
 Dates: 2023-01-252023
 Publication Status: Issued
 Pages: -
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 Table of Contents: -
 Rev. Type: -
 Identifiers: DOI: 10.1016/j.cej.2023.141514
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Title: Chemical Engineering Journal
Source Genre: Journal
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Publ. Info: Lausanne : Elsevier
Pages: - Volume / Issue: 459 Sequence Number: 141514 Start / End Page: - Identifier: ISSN: 1385-8947