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Structures and Aromaticity of Three-membered BeXP (X = C, Si, Ge) and CYP (Y = O, S, Se) Rings

Structures and Aromaticity of Three-membered BeXP (X = C, Si, Ge) and CYP (Y = O, S, Se) Rings
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摘要 Three-membered BeXP (X = C, Si, Ge) and CYP (Y = O, S, Se) rings are theoretically investigated using density functional theory (DFT) methods at the B3LYP/6-311+G^* and B3PW91/6-311+G^* levels of theory. The research results show that the size of atoms has a great influence on the structural stability of these species. The wiberg bond indexs (WBIs) suggest the existence of delocalization in these structures. Negative nucleus-independent chemical shift (NICS) values for these species indicate that a strong ring current exists in these three-membered structures (Cs symmetry). A detailed molecular orbital (MO) analysis further reveals that a delocalized π MO strengthens the structural stability and makes these species show strong aromatic characters. Three-membered BeXP (X = C, Si, Ge) and CYP (Y = O, S, Se) rings are theoretically investigated using density functional theory (DFT) methods at the B3LYP/6-311+G^* and B3PW91/6-311+G^* levels of theory. The research results show that the size of atoms has a great influence on the structural stability of these species. The wiberg bond indexs (WBIs) suggest the existence of delocalization in these structures. Negative nucleus-independent chemical shift (NICS) values for these species indicate that a strong ring current exists in these three-membered structures (Cs symmetry). A detailed molecular orbital (MO) analysis further reveals that a delocalized π MO strengthens the structural stability and makes these species show strong aromatic characters.
出处 《Chinese Journal of Structural Chemistry》 SCIE CAS CSCD 2009年第4期427-433,共7页 结构化学(英文)
基金 supported by the 111 Project B07012 of China and the National Natural Science Foundation of China (No. 20773014)
关键词 dusters structure aromatidty DFT calculation nucleus-independent chemical shift (NICS) dusters, structure, aromatidty, DFT calculation, nucleus-independent chemical shift (NICS)
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