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Identification of adsorbed species during steady-state photocatalytic oxidation of ethanol on TiO2

机译:TiO2上乙醇稳态光催化氧化过程中吸附物质的鉴定

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The identification and concentrations of species on a TiO2 surface during photocatalytic oxidation (PCO) of ethanol were determined by combining transient and steady-state PCO with temperature-programmed desorption (TPD) and oxidation (TPO). Ethanol and its partial oxidation intermediates (acetaldehyde, acetic acid, formaldehyde, and formic acid) are on the catalyst surface, and their concentrations depend on the ethanol, O-2, and water feed concentrations. The rate of PCO was greater initially than at steady state for all experimental conditions, and this initial deactivation may be due in part to the accumulation of acetaldehyde on the surface. Weakly bound ethanol preferentially forms acetaldehyde whereas the more strongly bound ethoxide species preferentially produces CO2. Increasing the gas-phase ethanol concentration produces more of the weakly bound ethanol and therefore a greater rate of acetaldehyde production. Increasing the O-2 concentration from 0.2 to 20% only increased the steady-state rate of reaction by 50% and did not change the selectivity. Although ethanol and water compete for sites, adding 0.5% water (13% relative humidity) to the feed stream did not change either the rate or selectivity and only marginally increased the amount of adsorbed water. (C) 1998 Academic Press. [References: 30]
机译:乙醇的光催化氧化(PCO)过程中,通过将瞬态和稳态PCO与程序升温脱附(TPD)和氧化(TPO)相结合,确定了TiO2表面物种的识别和浓度。乙醇及其部分氧化中间体(乙醛,乙酸,甲醛和甲酸)在催化剂表面,其浓度取决于乙醇,O-2和水的进料浓度。在所有实验条件下,PCO的初始速率都比稳态高,并且这种初始失活可能部分是由于乙醛在表面上的积累。弱结合的乙醇优先形成乙醛,而结合更强的乙醇优先产生CO2。气相乙醇浓度的增加会产生更多的弱结合乙醇,因此乙醛的产生速率会更高。将O-2的浓度从0.2%增加到20%只会使稳态反应速率提高50%,并且不会改变选择性。尽管乙醇和水争夺位点,但将0.5%的水(相对湿度为13%)添加到进料流中不会改变速率或选择性,只会稍微增加吸附水的量。 (C)1998年学术出版社。 [参考:30]

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