2019
DOI: 10.1016/s1872-2067(19)63415-7
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Low-temperature catalytic degradation of the odorous pollutant hexanal by γ-MnOOH: The effect of Mn vacancies

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Cited by 27 publications
(5 citation statements)
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References 54 publications
(50 reference statements)
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“…As for hexanal oxidation, it was preferentially oxidized to hexanoic acid (15), which was decarboxylated to produce CO 2 and aldehyde. After that, the aldehyde was further oxidized to pentanoic acid (14) until it was progressively oxidized to CO 2 and H 2 O . However, the detailed reaction pathways still remain to be further explored.…”
Section: Resultsmentioning
confidence: 99%
See 1 more Smart Citation
“…As for hexanal oxidation, it was preferentially oxidized to hexanoic acid (15), which was decarboxylated to produce CO 2 and aldehyde. After that, the aldehyde was further oxidized to pentanoic acid (14) until it was progressively oxidized to CO 2 and H 2 O . However, the detailed reaction pathways still remain to be further explored.…”
Section: Resultsmentioning
confidence: 99%
“…After that, the aldehyde was further oxidized to pentanoic acid (14) until it was progressively oxidized to CO 2 and H 2 O. 48 However, the detailed reaction pathways still remain to be further explored. In summary, the Pt/CeO 2 /TiO 2 catalyst with high activity, stability, and water resistance was prepared.…”
Section: Redox Property and Surfacementioning
confidence: 99%
“…The AOS of surface Mn could be calculated by using the equation of AOS = 8.956 − 1.126 × ΔE, in which ΔE represents the splitting width of Mn 3s. [43,44] The corresponding AOS of surface Mn are determined to be 3.77, 3.48, and 3.35 for Nanorod, Nanorod-OD, and Nanosheet-OD, respectively (Figure 2c). A lower AOS suggests the higher concentration of Mn 3+ .…”
Section: Physical and Chemical Characterization Of β-Mnomentioning
confidence: 99%
“…11,26 Furthermore, many research works demonstrated that structural defects commonly act as adsorption sites and that active sites of MnO x contributed to its first-rate oxidation activity. [12][13][14]43 For example, the promoting effect of Mn vacancies over MnOOH catalyst toward hexanal has been demonstrated by the Zhang group. 12 Besides, our last work found that amorphous MnO x presented higher catalytic combustion activity among a series of MnO x catalysts with different crystallinities due to their defect-rich structures; meanwhile, they can remain stable up to nearly 200 °C.…”
Section: Introductionmentioning
confidence: 99%
“…[12][13][14]43 For example, the promoting effect of Mn vacancies over MnOOH catalyst toward hexanal has been demonstrated by the Zhang group. 12 Besides, our last work found that amorphous MnO x presented higher catalytic combustion activity among a series of MnO x catalysts with different crystallinities due to their defect-rich structures; meanwhile, they can remain stable up to nearly 200 °C. 13 However, the catalytic combustion reaction is an exothermic process, and the catalyst bed temperature will increase to high temperature (≥400 °C) sometimes when the concentration of VOCs increases or the reaction temperature is adjusted in experiments, which requires a catalyst with good thermal tolerance.…”
Section: Introductionmentioning
confidence: 99%