Experimental and Computational Insights into the Catalytic Mechanism of Y1-x Ba x CoO3-δ Perovskite Oxides with a Controlled Crystal Structure
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作者:
Kajino, Takanobu
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Kyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, Japan
Denso Corp, Adv Res & Innovat Ctr, Nisshin, Aichi 4700111, JapanKyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, Japan
Kajino, Takanobu
[1
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Sugimoto, Ryosuke
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Kyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, JapanKyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, Japan
Sugimoto, Ryosuke
[1
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Ueda, Taisei
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Kyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, JapanKyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, Japan
Ueda, Taisei
[1
]
Fukuura, Shuta
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Kyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, JapanKyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, Japan
Fukuura, Shuta
[1
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Yumura, Takashi
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Kyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, JapanKyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, Japan
Yumura, Takashi
[1
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Haneda, Masaaki
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Nagoya Inst Technol, Adv Ceram Res Ctr, Tajimi, Gifu 5070071, JapanKyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, Japan
Haneda, Masaaki
[3
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Hosokawa, Saburo
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Kyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, JapanKyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, Japan
Hosokawa, Saburo
[1
]
机构:
[1] Kyoto Inst Technol, Fac Mat Sci & Engn, Kyoto 6068585, Japan
[2] Denso Corp, Adv Res & Innovat Ctr, Nisshin, Aichi 4700111, Japan
[3] Nagoya Inst Technol, Adv Ceram Res Ctr, Tajimi, Gifu 5070071, Japan
The crystal structure of Co-based perovskite oxides (ACoO(3)) can be controlled by adjusting the A-site elements. In this study, we synthesized Y1-xBaxCoO3-delta (x = 0, 0.5, and 1.0) via a coprecipitation method and investigated their CO oxidation performances. YCoO3 (x = 0; cubic perovskite oxide; Pbnm) shows a higher catalytic performance than Y0.5Ba0.5CoO2.72 (x = 0.5; A-site-ordered double perovskite oxide; P4/nmm), which exhibits high oxygen nonstoichiometric properties, and BaCoO3 (x = 1.0; hexagonal perovskite oxide; P6(3)/mmc), which contains high-valent Co4+ species. To elucidate the reaction mechanism, we conducted isotopic experiments with CO and O-18(2). The CO oxidation reaction on YCoO3 proceeds via the Langmuir-Hinshelwood mechanism, which is a surface reaction of CO and O-2 gas that does not utilize lattice oxygen. Because of the significantly smaller specific surface area of YCoO3 compared with that of the reference Pt/Al2O3, the bulk features of the crystal structures affect the catalytic reaction. When density functional theory is applied, YCoO3 clearly exhibits semiconducting properties in the ground state with the diamagnetic t(2g)(6)e(g)(0) states, which can translate to a magnetic t(2g)(5)e(g)(1) configuration upon excitation by a relatively low energy of 0.64 eV. We propose that the unique nature of YCoO3 activates oxygen in the gas phase, thereby enabling the smooth oxidation of CO. This study demonstrates that the bulk properties originating from the crystal structure contribute to the catalytic activity and reaction mechanism.
机构:
Russian Acad Sci, IV Grebenshchikov Silicate Chem Inst, St Petersburg 199034, RussiaRussian Acad Sci, IV Grebenshchikov Silicate Chem Inst, St Petersburg 199034, Russia
Mezentseva, L. P.
Gasumyants, V. E.
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St Petersburg State Polytech Univ, St Petersburg 195251, RussiaRussian Acad Sci, IV Grebenshchikov Silicate Chem Inst, St Petersburg 199034, Russia
Gasumyants, V. E.
Martynova, O. A.
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St Petersburg State Polytech Univ, St Petersburg 195251, RussiaRussian Acad Sci, IV Grebenshchikov Silicate Chem Inst, St Petersburg 199034, Russia
Martynova, O. A.
Babichev, A. V.
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St Petersburg State Polytech Univ, St Petersburg 195251, RussiaRussian Acad Sci, IV Grebenshchikov Silicate Chem Inst, St Petersburg 199034, Russia
Babichev, A. V.
Osipov, A. V.
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Russian Acad Sci, IV Grebenshchikov Silicate Chem Inst, St Petersburg 199034, RussiaRussian Acad Sci, IV Grebenshchikov Silicate Chem Inst, St Petersburg 199034, Russia