Chinese Journal of Catalysis ›› 2026, Vol. 83: 388-399.DOI: 10.1016/S1872-2067(26)64979-0
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Jian-Rong Lia,c,1, Wan-Peng Zhanga,c,1, Hang Xiaoa,c, Mingjiao Tianb,*(
), Chi Heb,d,*(
)
Received:2025-08-14
Accepted:2025-11-12
Online:2026-04-05
Published:2026-03-04
Contact:
Mingjiao Tian, Chi He
About author:First author contact:1Contributed equally to this work.
Supported by:Jian-Rong Li, Wan-Peng Zhang, Hang Xiao, Mingjiao Tian, Chi He. Boosting ethyl acetate low-temperature deep oxidation by tuning the initial status of Ag over MnO2: Intrinsic role of Ag nanoparticles and ions[J]. Chinese Journal of Catalysis, 2026, 83: 388-399.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)64979-0
Fig. 1. Fig. 1. (a) XRD patterns. (b) Raman spectra. (a) 310MnO2. (b) Ag-NP/310MnO2. (c) Ag-IS/310MnO2. (c) EPR spectra. (f) O 1s XPS spectra. (g) Fourier transforms for k2-weighted Ag K-edge EXAFS and fitting results. The wavelet transforms for k2-weighted Ag K-edge EXAFS of Ag-IS/310MnO2 (h) and Ag-NP/310MnO2 (i).
Fig. 2. HRTEM images of Ag-IS/310MnO2 (a) and Ag-NP/310MnO2 (b). Schematic diagram of Ag formation processes for Ag-IS/310MnO2 (c) and Ag-NP/310MnO2 (d). The optimized structure of Ag in Ag-IS/310MnO2 (e) and Ag-NP/310MnO2 (f).
| Sample | T50 a (°C) | T90 a (°C) | Ag b (wt%) | Ag dispersion c (%) | ABET d (m2·g-1) | Vpore e (cm3·g-1) | Dpore f (nm) | Ea g (kJ·mol-1) | K h (N/m) |
|---|---|---|---|---|---|---|---|---|---|
| 310MnO2 | 165 | 171 | — | — | 124.1 | 0.48 | 15.0 | 44.3 | 307 |
| Ag-IS/310MnO2 | 167 | 178 | 0.57 | 58.6 | 121.8 | 0.50 | 15.7 | 54.7 | 302 |
| Ag-NP/310MnO2 | 157 | 163 | 0.61 | 58.2 | 120.2 | 0.47 | 14.7 | 31.0 | 303 |
Table 1 Catalytic activity and textural properties of prepared catalysts.
| Sample | T50 a (°C) | T90 a (°C) | Ag b (wt%) | Ag dispersion c (%) | ABET d (m2·g-1) | Vpore e (cm3·g-1) | Dpore f (nm) | Ea g (kJ·mol-1) | K h (N/m) |
|---|---|---|---|---|---|---|---|---|---|
| 310MnO2 | 165 | 171 | — | — | 124.1 | 0.48 | 15.0 | 44.3 | 307 |
| Ag-IS/310MnO2 | 167 | 178 | 0.57 | 58.6 | 121.8 | 0.50 | 15.7 | 54.7 | 302 |
| Ag-NP/310MnO2 | 157 | 163 | 0.61 | 58.2 | 120.2 | 0.47 | 14.7 | 31.0 | 303 |
Fig. 3. (a) EA conversion of 310MnO2, 110MnO2 and 100MnO2. (b) EA conversion of 310MnO2, Ag-IS/310MnO2, and Ag-NP/310MnO2. (c) CO2 selectivity. The change of relative contents of acetaldehyde/ethanol/formic acid (d) and acetic acid (e) from PTR-MS at different temperatures. (f) Reaction rates and TOFAg values.
Fig. 5. In-situ DRIFTS spectra of Ag-IS/310MnO2 (a), Ag-NP/310MnO2 (b) and 310MnO2 (c) catalysts for EA adsorption/oxidation as a function of reaction time in flowing EA+N2 at 50 °C. (d) The optimized structure of O2 absorbed at Ag and oxygen vacancy sites. (e) The optimized structure of EA absorbed at Ag and oxygen vacancy sites. (f) Energy profiles for the reaction paths of O2 adsorption and dissociation at Ag sites of Ag-IS/310MnO2 and Ag-NP/310MnO2. (g) Energy profiles for the reaction paths of O2 adsorption and dissociation at oxygen vacancy sites of 310MnO2 and Ag-NP/310MnO2.
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