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Enhanced Catalytic Soot Oxidation by Ce-Based MOF-Derived Ceria Nano-Bar with Promoted Oxygen Vacancyopen access

Authors
Tsai, Yu-ChihLee, JechanKwon, EilhannHuang, Chao-WeiNguyen Nhat HuyYou, SimingHsu, Pei-SyuanOh, Wen DaLin, Kun-Yi Andrew
Issue Date
Sep-2021
Publisher
MDPI
Keywords
MOFs; ceria; carbon black; catalytic oxidation; high aspect ratio
Citation
CATALYSTS, v.11, no.9
Indexed
SCIE
SCOPUS
Journal Title
CATALYSTS
Volume
11
Number
9
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/189341
DOI
10.3390/catal11091128
ISSN
2073-4344
Abstract
As CeO2 is a useful catalyst for soot elimination, it is important to develop CeO2 with higher contact areas, and reactivities for efficient soot oxidation and catalytic soot oxidation are basically controlled by structures and surface properties of catalysts. Herein, a Ce-Metal organic framework (MOFs) consisting of Ce and benzene-1,3,5-tricarboxylic acid (H3BTC) is employed as the precursor as CeBTC exhibits a unique bar-like high-aspect-ratio morphology, which is then transformed into CeO2 with a nanoscale bar-like configuration. More importantly, this CeO2 nanobar (CeONB) possesses porou, and even hollow structures, as well as more oxygen vacancies, enabling CeONB to become a promising catalyst for soot oxidation. Thus, CeONB shows a much higher catalytic activity than commercial CeO2 nanoparticle (comCeO) for soot oxidation with a significantly lower ignition temperature (T-ig). Moreover, while soot oxidation by comCeO leads to production of CO together with CO2, CeONB can completely convert soot to CO2. The tight contact mode also enables CeONB to exhibit a very low T-ig of 310 degrees C, whereas the existence of NO also enhances the soot oxidation by CeONB to reduce the T-ig. The mechanism of NO-assisted soot oxidation is also examined, and validated by DRIFTS to identify the formation and transformation of nitrogen-containing intermediates. CeONB is also recyclable over many consecutive cycles and maintained its high catalytic activity for soot oxidation. These results demonstrate that CeONB is a promising and easily prepared high-aspect-ratio Ce-based catalyst for soot oxidation.
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Kwon, Eilhann E.
COLLEGE OF ENGINEERING (DEPARTMENT OF EARTH RESOURCES AND ENVIRONMENTAL ENGINEERING)
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