One-Pot Synthesis of (CrMnFeCoNi)O High-Entropy Oxides for Efficient Catalytic Oxidation of Propane: A Promising Substitute for Noble Metal Catalysts.

ACS Appl Mater Interfaces

Key Laboratory of Environment Remediation and Ecological Health, Ministry of Education, College of Environmental and Resource Sciences, Zhejiang University, 866 Yuhangtang Road, Hangzhou 310058, P.R. China.

Published: December 2024

AI Article Synopsis

  • The catalytic oxidation of propane is challenging, but high-entropy oxides (HEOs) like (CrMnFeCoNi)O show promise due to their unique properties.
  • The (CrMnFeCoNi)O HEO catalysts are made through a continuous hydrothermal flow synthesis (CHFS) method, resulting in smaller particle sizes and higher surface areas without the need for additional calcination.
  • This catalyst achieves a 90% propane conversion at 255 °C and outperforms traditional catalysts like Pt/AlO and Pd/AlO in activity and stability, making it a potential alternative for industrial use.

Article Abstract

The efficient catalytic oxidation of propane, as a short-chain alkane, remains challenging in environmental catalysis. High-entropy oxides (HEOs) exhibit advantages in abundant and well-dispersed elemental composition, exceptional thermal stability, and enriched lattice defects. Herein, (CrMnFeCoNi)O HEO catalysts are successfully synthesized by using a continuous hydrothermal flow synthesis (CHFS) route, without any subsequent calcination processes. This route yields HEOs with fine particle sizes, high specific surface areas, and abundant near-surface lattice oxygen compared to the traditional coprecipitation method. Notably, the propane conversion over the CHFS-made (CrMnFeCoNi)O HEO reaches 90% at 255 °C, with an apparent activation energy of 53.2 kJ/mol, mainly attributed to its enriched lattice oxygen and enhanced oxygen mobility that prevent the accumulation of acetates and the consequent occupation of active sites. In comparison to commercial Pt/AlO and Pd/AlO, (CrMnFeCoNi)O HEO demonstrates exceptional activity and can maintain long-term stability under high-temperature (upon 650 °C) and moisture-rich conditions (at 2-10 vol %). These attributes highlight its potential as a promising substitute for noble metal catalysts in industrial applications.

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Source
http://dx.doi.org/10.1021/acsami.4c14292DOI Listing

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