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September 23, 2025Compounds8 citationsOpen Access

Support Surface Chemistry Evolution During the Preparation of Metal Oxide–Activated Carbon Catalysts by Wet Impregnation: A FT-IR Spectroscopy Analysis

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ABAdrián Barroso‐BogeatMAMaría Alexandre-FrancoCFCarmen Fernández-González

Key Points

  • The study reveals that thermal treatment significantly alters the surface chemistry of activated carbon catalysts and their basicity.
  • PEs identified include predominantly formed phenolic hydroxyl and carboxylic acid groups during wet impregnation, correlating with the oxidizing power of precursor solutions.
  • FT-IR spectroscopy was primarily used to analyze the surface chemistry across different preparation stages, including impregnation and thermal treatment.
  • These findings suggest a complex interaction between the activated carbon support and metal oxide precursors, emphasizing the importance of surface functionalization.

Abstract

The present work is aimed at shedding light on the evolution of surface chemistry of a commercial activated carbon (AC) support during the preparation of supported metal oxide (MO) catalysts by the conventional wet impregnation method. Particular attention is paid to the chemical changes of oxygen-containing surface functionalities across three preparation stages of impregnation, oven-drying, and thermal treatment. AC was impregnated with aqueous solutions of several MO precursors (Al(NO3)3, Fe(NO3)3, Zn(NO3)2, SnCl2, and Na2WO4) at 80 °C for 5 h, oven-dried at 120 °C for 24 h, and heat-treated at 200 °C and 850 °C for 2 h under an inert atmosphere. The surface chemistry of the resulting catalyst samples, classified in three series by the thermal treatment, was mainly studied by FT-IR spectroscopy, complemented by elemental analysis and pH of the point of zero charge (pHpzc) measurements. During impregnation, phenolic hydroxyl and carboxylic acid groups were predominantly formed by wet oxidation of chromene, 2-pyrone, and ether-type structures found in the pristine AC. The extent of these oxidations correlated with the oxidising power of the precursor solutions. As expected, thermal treatment at 850 °C brought about markedly stronger chemical changes, with most of the above oxygen functionalities decomposing and forming less acidic structures, such as 4-pyrone groups, metal carboxylates, and C-O-M atomic groupings. All these surface chemical modifications result in a lowering of the strong basicity of the raw carbon support (pHpzc ≈ 10.5), thus leading to pHpzc values for the catalysts widely ranging from 1.6 to 9.7.

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Cite This Study

Barroso‐Bogeat et al. (2025) studied this question.

synapsesocial.com/papers/68d4724731b076d99fa6a8a4https://doi.org/10.3390/compounds5030036
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