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Reaction Dynamics of Nin (N=19 and 20) With D2: Dependence on Cluster Size, Temperature and Initial Rovibrational States of the Molecule

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Date

2005

Journal Title

Journal ISSN

Volume Title

Publisher

World Scientific Publ Co Pte Ltd

Open Access Color

Green Open Access

No

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Top 10%
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Average
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Average

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Abstract

The Ni(n)(n = 19, 20) + D2(v, j) collision systems have been studied to investigate the dependence of cluster reactivity on the cluster temperature and the initial rovibrational states of the molecule using quasiclassical molecular dynamics simulations. The clusters are described by an embedded atom potential, whereas the interaction between the molecule and the cluster is modeled by a LEPS (London-Eyring-Polani-Sato) potential energy function. Reaction (dissociative adsorption) cross-sections are computed as functions of the collision energy for different initial rovibrational states of the molecule and for different temperatures of the clusters. Rovibrational, temperature and size-dependent rate constants are also presented, and the results are compared with earlier studies. Initial vibrational excitation of the molecule increases the reaction cross-section more efficiently than the initial rotational excitation. The reaction cross-sections strongly depend on the collision energies below 0.1 eV.

Description

Ozcelik, Suleyman/0000-0002-3761-3711

Keywords

Nickel Clusters, Structure, Reactivity, Molecule, Md Simulations, Deuterium Molecule, Chemisorption, Dissociation

Fields of Science

0103 physical sciences, 02 engineering and technology, 0210 nano-technology, 01 natural sciences

Citation

Boyukata, M...et.al., "Reaction dynamics of Ni(n) (n=19 and 20) with D(2): Dependence on cluster size, temperature and initial rovibrational states of the molecule", International Journal Of Modern Physics C, Vol.16, No.2, pp.295-308, (2005).

WoS Q

Q2

Scopus Q

Q2
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OpenCitations Citation Count
13

Source

International Journal of Modern Physics C

Volume

16

Issue

2

Start Page

295

End Page

308
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Scopus : 17

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19

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Web of Science™ Citations

18

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6

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