2005Unpublished venueRequires access

A Density Functional Theory Study of the Isomerization Reaction HNC→HCN

Huiqin Zhang

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Abstract

The reaction mechanism of the isomerization:HNC→HCN has been studied by means of density functional theory (DFT) at the level of B3LYP/6-31G*.There may exist two types: one is that the HNC molecule itself proceeds via a three-centred transition states to transform by its interior hydrogen-bonded; the other is that two HNC molecules associate at first and then proceed via a six-centred transition states to transform by its exterior hydrogen-bonded.The results show that: the mechanism of the six-centred construction makes the activation energy of the isomerizing reaction reduce dramatically.

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What this paper is about

The reaction mechanism of the isomerization:HNC→HCN has been studied by means of density functional theory (DFT) at the level of B3LYP/6-31G*.There may exist two types: one is that the HNC molecule itself proceeds via a three-centred transition states to transform by its interior hydrogen-bonded; the other is that two HNC molecules associate at first and then proceed via a six-centred transition states to transform by its exterior hydrogen-bonded.The results show that: the mechanism of the six-centred construction makes the activation energy of the isomerizing reaction reduce dramatically.

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Available abstract

The reaction mechanism of the isomerization:HNC→HCN has been studied by means of density functional theory (DFT) at the level of B3LYP/6-31G*.There may exist two types: one is that the HNC molecule itself proceeds via a three-centred transition states to transform by its interior hydrogen-bonded; the other is that two HNC molecules associate at first and then proceed via a six-centred transition states to transform by its exterior hydrogen-bonded.The results show that: the mechanism of the six-centred construction makes the activation energy of the isomerizing reaction reduce dramatically.

Key concepts: Isomerization, Density functional theory, Transition state, Molecule, Chemistry, Reaction mechanism, Transition state theory, Computational chemistry

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