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DFT Study on Reaction Mechanism of Nitric Oxide to Ammonia and Water on a Hydroxylated Rutile TiO2(110) Surface

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Nitric oxide (NO) is an important air pollutant. Its chemical conversion to ammonia (NH3) and water (H2O) molecules has recently attracted a lot of experimental attention. In this work, we… Click to show full abstract

Nitric oxide (NO) is an important air pollutant. Its chemical conversion to ammonia (NH3) and water (H2O) molecules has recently attracted a lot of experimental attention. In this work, we have employed a periodic density functional theory method combined with a slab model to study the catalytic reaction of NO adsorbed on a hydroxylated rutile TiO2(110) surface. We have obtained two favorable NO adsorption structures: in the first one, the terminal N atom is bonded with a Ti5c surface atom (NadO); in the second one, both the N and O atoms are bonded with two nearby Ti5c surface atoms (NadOad). Interestingly, NadOad becomes more stable than NadO with the increasing coverage of hydroxyl groups, i.e., more than three hydroxyl groups in our slab model, which demonstrates that hydroxyls can seriously influence surface electronic structures and, thus, surface catalysis. Mechanistically, we have found that the N–O bond should be weakened prior to its dissociation. In the NadO adsorption structure, this weakening...

Keywords: tio2 110; 110 surface; surface; rutile tio2; nitric oxide; hydroxylated rutile

Journal Title: Journal of Physical Chemistry C
Year Published: 2017

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