Theoretical studies on nanocrystalline diamond: Nucleation by dicarbon andelectronic structure of planar defects

Citation
Dm. Gruen et al., Theoretical studies on nanocrystalline diamond: Nucleation by dicarbon andelectronic structure of planar defects, J PHYS CH B, 103(26), 1999, pp. 5459-5467
Citations number
29
Categorie Soggetti
Physical Chemistry/Chemical Physics
Journal title
JOURNAL OF PHYSICAL CHEMISTRY B
ISSN journal
15206106 → ACNP
Volume
103
Issue
26
Year of publication
1999
Pages
5459 - 5467
Database
ISI
SICI code
1520-6106(19990701)103:26<5459:TSONDN>2.0.ZU;2-E
Abstract
Density functional theory and ab initio molecular orbital theory have been used to calculate the energetics of C-2 insertion into C9H12 and C9H14 clus ters that model unhydrided and monohydrided (100) diamond surfaces, respect ively. The reaction of C-2 with either the C9H12 Or C9H14 cluster is exothe rmic by more than 100 kcal/mol, but the lowest energy product is different for the two clusters. The reaction of singlet C-2 with the C=C double bond of the C9H12 cluster leads to either carbene structures or a cyclobutyne-li ke structure, with the former having the lower energy at both the HF/6-31G* and B3LYP/6-31G* levels of theory. No barrier for insertion into the C=C d ouble bond of the C9H12 cluster was found at the HF/6-31G* and B3LYP/6-31G* levels of theory. The reaction of singlet C-2 with the HC-CH single bond o r C-H bonds of the C9H14 cluster leads to a structure having a cyclobutene- like geometry. We propose that the disparate nucleation rates of diamond cr ystallites grown in hydrogen-rich vs hydrogen-poor C-60/Ar microwave plasma s are accounted for qualitatively by these results. The carbon dimer, C-2, is a possible growth or nucleation species produced by fragmentation of C-6 0 Periodic density functional calculations of the electronic structure of a simple model of an sp(2)-bonded diamond grain boundary show that pi-bonded planar defects introduce new electronic bands into the fundamental band ga p of diamond.