Issue 69, 2015

C-doped boron nitride fullerene as a novel catalyst for acetylene hydrochlorination: a DFT study

Abstract

Density functional theory calculations were used to investigate the mechanism of acetylene hydrochlorination separately catalyzed by un-doped B12N12 and carbon-doped BN fullerene (B12−nN11+nC (n = 0, 1)). We have discovered that carbon-doped BN clusters displayed extraordinary catalyst performance for acetylene hydrochlorination compared with un-doped B12N12 clusters. C2H2 was adsorbed onto B12−nN11+nC (n = 0, 1) clusters prior to HCl and then formed three adsorption states. The first two states were in a trans configuration, in which the two H atoms of C2H2 were on opposite sides of the C[double bond, length as m-dash]C bond; the third state was a cis configuration, in which the two H atoms were on the same side of the C[double bond, length as m-dash]C bond. Afterwards, we illustrated three possible pathways with corresponding transition states. In particular, the minimum energy pathway R1 based on the B11N12C catalyst had an energy barrier as low as 36.08 kcal mol−1, with only one transition state.

Graphical abstract: C-doped boron nitride fullerene as a novel catalyst for acetylene hydrochlorination: a DFT study

Supplementary files

Article information

Article type
Paper
Submitted
05 May 2015
Accepted
19 Jun 2015
First published
19 Jun 2015

RSC Adv., 2015,5, 56348-56355

Author version available

C-doped boron nitride fullerene as a novel catalyst for acetylene hydrochlorination: a DFT study

F. Zhao, Y. Wang, M. Zhu and L. Kang, RSC Adv., 2015, 5, 56348 DOI: 10.1039/C5RA08266H

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