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Formation of environmentally-persistent free radicals (EPFR) on α-Al2O3 clusters

机译:在α-Al2O3团簇上形成环境持久性自由基(EPFR)

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摘要

Alumina oxides assume prominent catalytic applications in a wide range of industrial processes. However, alumina surfaces also serve as potent promoters in the heterogeneous formation of the notorious environmentally-persistent free radicals (EPFR). Herein, we theoretically examine dissociative adsorption mechanisms of phenol molecules over Al2O3 and hydrated Al2O3·nH2O clusters that mimic dehydrated and hydrated alumina structures, respectively. We show that fission of the phenol's hydroxyl bond over dehydrated alumina systematically incurs lower energy barriers in reference to the hydrated structures. A 1,2-water elimination step marks the most feasible channel in the interaction of phenol with hydrated clusters. The relevance of the acidity sites to the catalytic activity of alumina is clearly supported by the finding that the catalytic activity of the alumina surface in producing the phenoxy/phenolate species reversibly correlates with the degree of hydroxyl coverage. Desorption of adsorbed phenolates requires sizable desorption energies, and thus is expected to facilitate surface-mediated condensation into dioxin-like moieties.
机译:氧化铝在广泛的工业过程中具有重要的催化应用。但是,氧化铝表面在臭名昭著的环境持久性自由基(EPFR)的异质形成中也充当了有效的促进剂。在本文中,我们从理论上考察了酚分子在分别模拟脱水和水合氧化铝结构的Al2O3和水合Al2O3·nH2O团簇上的解离吸附机理。我们表明,相对于水合结构,在脱水氧化铝上酚的羟基键裂变会系统地引起较低的能垒。 1,2-水消除步骤是苯酚与水合簇相互作用中最可行的途径。酸性位点与氧化铝催化活性的相关性得到以下发现的明确支持:在生产苯氧基/酚盐类物质中,氧化铝表面的催化活性与羟基覆盖度可逆地相关。吸附的酚盐的解吸需要相当大的解吸能量,因此有望促进表面介导的缩合成二恶英样部分。

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