Reduction of Nitroaromatic Compounds on the Surface of Metallic Iron: Quantum Chemical Study

Abstract: The initial reduction steps of nitroaromatic compounds on the surface of metallic iron have been studied theoretically using nitrobenzene (NB) as a representative of nitroaromatic compounds. The quantum chemical cluster approximation within the semiempirical Neglect of Diatomic Differentia...

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Main Authors: Jerzy Leszczynski, Danuta Leszczynska, William Davis, Christian J. Mcgrath, Alexander Pelmenschikov, Igor Zilberberg
Format: Article
Language:English
Published: MDPI AG 2002-07-01
Series:International Journal of Molecular Sciences
Subjects:
Online Access:http://www.mdpi.com/1422-0067/3/7/801/
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spelling doaj-48ae7ff5776040949fd8594a36ff87f22020-11-25T00:43:33ZengMDPI AGInternational Journal of Molecular Sciences1422-00672002-07-013780181310.3390/i3070801Reduction of Nitroaromatic Compounds on the Surface of Metallic Iron: Quantum Chemical StudyJerzy LeszczynskiDanuta LeszczynskaWilliam DavisChristian J. McgrathAlexander PelmenschikovIgor ZilberbergAbstract: The initial reduction steps of nitroaromatic compounds on the surface of metallic iron have been studied theoretically using nitrobenzene (NB) as a representative of nitroaromatic compounds. The quantum chemical cluster approximation within the semiempirical Neglect of Diatomic Differential Overlap for Metal Compounds method was applied to model the Fe(110) crystallographic surface, taken as a representative reactive surface for granular iron. This surface was modeled as a 39-atom two-layer metal cluster with rigid geometry. The associative and dissociative adsorption of nitrobenzene was considered. Based on our quantum chemical analysis, we suggest that the direct electron donation from the metal surface into the À* orbital of NB is a decisive factor responsible for subsequent transformation of the nitro group. Molecularly adsorbed NB interacts with metal iron exclusively through nitro moiety oxygens which occupy tri-coordinated positions on surface The charge transfer from metal to NB of approximately 2 atomic units destablizes the nitro group. As a result, the first dissociation of the N-O bond goes through a relatively low activation barrier. The adsorbed nitrosobenzene is predicted to be a stable surface species, though still quiet labile.http://www.mdpi.com/1422-0067/3/7/801/Nitroaromatic compoundsSemiempirical method NDDO/MCNitrobenzene reductionMetallic ironNitrosobenzene
collection DOAJ
language English
format Article
sources DOAJ
author Jerzy Leszczynski
Danuta Leszczynska
William Davis
Christian J. Mcgrath
Alexander Pelmenschikov
Igor Zilberberg
spellingShingle Jerzy Leszczynski
Danuta Leszczynska
William Davis
Christian J. Mcgrath
Alexander Pelmenschikov
Igor Zilberberg
Reduction of Nitroaromatic Compounds on the Surface of Metallic Iron: Quantum Chemical Study
International Journal of Molecular Sciences
Nitroaromatic compounds
Semiempirical method NDDO/MC
Nitrobenzene reduction
Metallic iron
Nitrosobenzene
author_facet Jerzy Leszczynski
Danuta Leszczynska
William Davis
Christian J. Mcgrath
Alexander Pelmenschikov
Igor Zilberberg
author_sort Jerzy Leszczynski
title Reduction of Nitroaromatic Compounds on the Surface of Metallic Iron: Quantum Chemical Study
title_short Reduction of Nitroaromatic Compounds on the Surface of Metallic Iron: Quantum Chemical Study
title_full Reduction of Nitroaromatic Compounds on the Surface of Metallic Iron: Quantum Chemical Study
title_fullStr Reduction of Nitroaromatic Compounds on the Surface of Metallic Iron: Quantum Chemical Study
title_full_unstemmed Reduction of Nitroaromatic Compounds on the Surface of Metallic Iron: Quantum Chemical Study
title_sort reduction of nitroaromatic compounds on the surface of metallic iron: quantum chemical study
publisher MDPI AG
series International Journal of Molecular Sciences
issn 1422-0067
publishDate 2002-07-01
description Abstract: The initial reduction steps of nitroaromatic compounds on the surface of metallic iron have been studied theoretically using nitrobenzene (NB) as a representative of nitroaromatic compounds. The quantum chemical cluster approximation within the semiempirical Neglect of Diatomic Differential Overlap for Metal Compounds method was applied to model the Fe(110) crystallographic surface, taken as a representative reactive surface for granular iron. This surface was modeled as a 39-atom two-layer metal cluster with rigid geometry. The associative and dissociative adsorption of nitrobenzene was considered. Based on our quantum chemical analysis, we suggest that the direct electron donation from the metal surface into the À* orbital of NB is a decisive factor responsible for subsequent transformation of the nitro group. Molecularly adsorbed NB interacts with metal iron exclusively through nitro moiety oxygens which occupy tri-coordinated positions on surface The charge transfer from metal to NB of approximately 2 atomic units destablizes the nitro group. As a result, the first dissociation of the N-O bond goes through a relatively low activation barrier. The adsorbed nitrosobenzene is predicted to be a stable surface species, though still quiet labile.
topic Nitroaromatic compounds
Semiempirical method NDDO/MC
Nitrobenzene reduction
Metallic iron
Nitrosobenzene
url http://www.mdpi.com/1422-0067/3/7/801/
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AT christianjmcgrath reductionofnitroaromaticcompoundsonthesurfaceofmetallicironquantumchemicalstudy
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