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Dynamics and mechanistic features in the photocatalyzed oxidation of disulfonated anionic surfactants on the surface of UV-irradiated titania nanoparticles

机译:紫外线辐照的二氧化钛纳米粒子表面光催化氧化二磺化阴离子表面活性剂的动力学和机理

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摘要

The photocatalyzed transformation of the anionic 4-dodecyl-1,1'-oxybisbenzenedisulfonate (DOBS) surfactant and its derivatives was carried out in aqueous TiO2 dispersions under UV and aerated illumination conditions to examine the dynamics and the mechanistic features of the degradative processes. Spectroscopic and other methodologies were used to probe the break-up of the aromatic ring, the mineralization of the surfactant(s) to carbon dioxide, decay of total organic carbon (TOC) remaining in solution, formation of sulfate ions, and identification of oxidation intermediates (e.g., acetic acid, formic acid and acetaldehyde) by NMR spectroscopy. Adsorption of DOBS, in particular, and the other anionic surfactant derivatives in general, on the TiO2 particle surface was inferred from the calculated point charges. Frontier electron densities of all atoms ascertained the positions of (OH)-O-. radical attack on the DOBS molecular skeleton. A model for the initial adsorption behavior of DOBS through electrostatic forces between the anionic surfactant(s) and the cationic TiO2 particle surface is proposed, aided by evidence from zeta-potential measurements. It is deduced that (OH)-O-. radicals attack preferentially the carbon atoms bonded to the sulfonate groups on the DOBS aromatic rings, followed by further attack on the remaining carbon atoms of the aromatic rings first and then more slowly on the carbon atoms of the hydrophobic alkyl chain.
机译:在紫外光和曝气条件下,在水性TiO2分散液中进行阴离子型4-十二烷基-1,1'-氧代双苯二磺酸盐(DOBS)表面活性剂及其衍生物的光催化转化,以考察降解过程的动力学和机理。光谱法和其他方法用于探测芳环的断裂,表面活性剂矿化成二氧化碳,溶液中剩余的总有机碳(TOC)衰减,硫酸根离子的形成以及氧化的鉴定NMR光谱分析中间体(例如,乙酸,甲酸和乙醛)。从计算的点电荷推断出尤其是DOBS,特别是一般而言其他阴离子表面活性剂衍生物在TiO 2颗粒表面上的吸附。所有原子的前沿电子密度确定了(OH)-O-的位置。对DOBS分子骨架的根本攻击。借助Zeta电位测量的证据,提出了一种通过阴离子表面活性剂与阳离子TiO2颗粒表面之间的静电力进行DOBS初始吸附行为的模型。推导出(OH)-O-。自由基优先攻击与DOBS芳环上磺酸盐基团键合的碳原子,然后进一步首先攻击芳环的剩余碳原子,然后再更慢地攻击疏水性烷基链的碳原子。

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