Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/141643
Title: Low-temperature thermocatalytic removal of formaldehyde in air using copper manganite spinels
Authors: Hua, Y.
Vikrant, K.
Kim, K. -H.
Heynderickx, P. M.
Boukhvalov, D. W.
Issue Date: 2024
Publisher: Academic Press Inc.
Citation: Hua, Y., Vikrant, K., Kim, K. H., Heynderickx, P. M., & Boukhvalov, D. W. (2024). Low-temperature thermocatalytic removal of formaldehyde in air using copper manganite spinels. Environmental Research, 255, [119186]. https://doi.org/10.1016/j.envres.2024.119186
Abstract: The removal of formaldehyde (FA) is vital for indoor air quality management in light of its carcinogenic propensity and adverse environmental impact. A series of copper manganite spinel structures (e.g., CuMn2O4) are prepared using the sol-gel combustion method and treated with reduction or oxidation pretreatment at 300 °C condition. Accordingly, CuMn2O4–O (“O” suffix for oxidation pre-treatment in air) is identified as the best performer to achieve 100% conversion (XFA) of FA (50 ppm) at 90 °C; its performance, if assessed in terms of reaction kinetic rate (r) at XFA = 10%, is 5.02E-03 mmol g−1 h−1. The FA removal performance increases systematically with decreases in flow rate, FA concentration, and relative humidity (RH) or with increases in bed mass. The reaction pathways and intermediates of FA catalytic oxidation on CuMn2O4-A are studied with density functional theory simulations, temperature-programmed characterization experiments, and in-situ diffuse reflectance infrared Fourier transform spectroscopy. The synergistic combination of large quantities of adsorbed oxygen (OA) species and oxidized metal species (e.g., Cu2+) contribute to the enhanced catalytic performance of CuMn2O4–O to oxidize FA into CO2 with the reaction intermediates of H2CO2 (DOM), HCOO−, and CO. The present study is expected to provide valuable insights into the thermocatalytic oxidation of FA over spinel CuMn2O4 materials and their catalytic performances in relation to the key process variables. © 2024 Elsevier Inc.
Keywords: CATALYTIC OXIDATION
COPPER MANGANITE SPINEL
FORMALDEHYDE
VOLATILE ORGANIC COMPOUNDS
AIR POLLUTANTS
ALUMINUM OXIDE
CATALYSIS
COLD TEMPERATURE
COPPER
FORMALDEHYDE
MAGNESIUM OXIDE
OXIDATION-REDUCTION
TEMPERATURE
AIR QUALITY
CATALYTIC OXIDATION
COPPER
COPPER COMPOUNDS
DENSITY FUNCTIONAL THEORY
FORMALDEHYDE
FOURIER TRANSFORM INFRARED SPECTROSCOPY
INDOOR AIR POLLUTION
MANGANITES
REACTION INTERMEDIATES
SOL-GELS
TEMPERATURE
COPPER
COPPER MANGANITE
CUPRIC ION
FORMALDEHYDE
MANGANESE OXIDE
METAL
OXIDE
OXYGEN
UNCLASSIFIED DRUG
ALUMINUM OXIDE
FORMALDEHYDE
MAGNESIUM OXIDE
SPINELL
ADVERSE ENVIRONMENTAL IMPACTS
AIR QUALITY MANAGEMENT
CARCINOGENICS
CATALYTIC PERFORMANCE
COPPER MANGANITE SPINEL
COPPER MANGANITES
INDOOR AIR QUALITY
LOWS-TEMPERATURES
OXIDATION PRE-TREATMENT
SPINEL STRUCTURE
AIR QUALITY
COPPER
ENVIRONMENTAL IMPACT
FORMALDEHYDE
INDOOR AIR
LOW TEMPERATURE
OXIDATION
POLLUTANT REMOVAL
REDUCTION
SPINEL
VOLATILE ORGANIC COMPOUND
AIR QUALITY CONTROL
AMBIENT AIR
ARTICLE
CATALYSIS
COMBUSTION
CONCENTRATION PROCESS
CONTROLLED STUDY
DENSITY FUNCTIONAL THEORY
DIFFUSE REFLECTANCE INFRARED FOURIER TRANSFORM SPECTROSCOPY
ENVIRONMENTAL IMPACT
FLOW RATE
LOW TEMPERATURE
OXIDATION KINETICS
REACTION ANALYSIS
RELATIVE HUMIDITY
SOL-GEL
SYNERGISTIC EFFECT
THERMOCATALYTIC OXIDATIVE REMOVAL
THERMOSTABILITY
AIR POLLUTANT
CATALYSIS
CHEMISTRY
COLD
OXIDATION REDUCTION REACTION
TEMPERATURE
VOLATILE ORGANIC COMPOUNDS
URI: http://elar.urfu.ru/handle/10995/141643
Access: info:eu-repo/semantics/openAccess
other-oa
SCOPUS ID: 85194047022
WOS ID: 001246920400001
PURE ID: 58177081
ISSN: 0013-9351
DOI: 10.1016/j.envres.2024.119186
Sponsorship: Universiteit Gent; National Research Foundation of Korea, NRF; Korea Basic Science Institute, KBSI; National Research Facilities and Equipment Center; Ministry of Science, ICT and Future Planning, MSIP, (2021R1A3B1068304); Ministry of Science, ICT and Future Planning, MSIP; Ministry of Education, MOE, (2022R1A6C101A779); Ministry of Education, MOE
This work was supported by a grant from the National Research Foundation of Korea (NRF) funded by the Ministry of Science and ICT (MSIT) of the Korean government (Grant No: 2021R1A3B1068304). P.M.H. would like to thank the Research and Development Program of Ghent University Global Campus (GUGC), Korea. This research was also supported by Korea Basic Science Institute (National Research Facilities and Equipment Center) grant funded by the Ministry of Education (2022R1A6C101A779).
RSCF project card: Universiteit Gent; National Research Foundation of Korea, NRF; Korea Basic Science Institute, KBSI; National Research Facilities and Equipment Center; Ministry of Science, ICT and Future Planning, MSIP, (2021R1A3B1068304); Ministry of Science, ICT and Future Planning, MSIP; Ministry of Education, MOE, (2022R1A6C101A779); Ministry of Education, MOE
This work was supported by a grant from the National Research Foundation of Korea (NRF) funded by the Ministry of Science and ICT (MSIT) of the Korean government (Grant No: 2021R1A3B1068304). P.M.H. would like to thank the Research and Development Program of Ghent University Global Campus (GUGC), Korea. This research was also supported by Korea Basic Science Institute (National Research Facilities and Equipment Center) grant funded by the Ministry of Education (2022R1A6C101A779).
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