Benzenoid hydrocarbon aromaticity in terms of charge density descriptors

被引:173
作者
Howard, ST [1 ]
Krygowski, TM [1 ]
机构
[1] UNIV WARSAW,DEPT CHEM,PL-02093 WARSAW,POLAND
来源
CANADIAN JOURNAL OF CHEMISTRY-REVUE CANADIENNE DE CHIMIE | 1997年 / 75卷 / 09期
关键词
quantum chemistry; electron density; aromaticity; aromaticity index; HOMA; NICS;
D O I
10.1139/v97-141
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Hartree-Fock/6-31G** calculations on the benzenoid hydrocarbons benzene, naphthalene, phenanthrene, anthracene, pyrene, tetracene, triphenylene, chrysene, perylene, and coronene are used to investigate the link between aromaticity and the electron distribution. Topological charge density analysis is used, concentrating on the electron distribution rho (and its Hessian) at bond and ring critical points. With regard to the bond critical point data, it is shown that rho(c), del(2) rho(c), and the bond ''ellipticity'' epsilon are closely correlated with the bond lengths so, as aromaticity indicators, they have little to add over and above existing indices based on structure. However, the same properties evaluated at the ring critical points in the total density, and also at the equivalent stationary points in the pi and sigma densities, correlate closely with two different aromaticity indices (one based on structure, the other on magnetic properties), the curvature of rho perpendicular to the ring plane giving (marginally) the best results. Hence a ring critical point (RCP) index is proposed as a way of quantifying aromaticity, based directly on the electron distribution.
引用
收藏
页码:1174 / 1181
页数:8
相关论文
共 42 条
[31]   ELECTRONIC-STRUCTURE OF CONJUGATED MOLECULES - NON-EMPIRICAL CALCULATIONS FOR BENZENIUM, PYRIDINIUM, PYRYLIUM, AND THIOPYRYLIUM CATIONS AND A COMPARISON OF LAST WITH PHOSPHORIN [J].
PALMER, MH ;
FINDLAY, RH ;
MOYES, W ;
GASKELL, AJ .
JOURNAL OF THE CHEMICAL SOCIETY-PERKIN TRANSACTIONS 2, 1975, (08) :841-850
[32]  
POHZARSKY AF, 1985, CHEM HETEROCYCL COMP, V21, P717
[33]   CONJUGATED CIRCUITS AND RESONANCE ENERGIES OF BENZENOID HYDROCARBONS [J].
RANDIC, M .
CHEMICAL PHYSICS LETTERS, 1976, 38 (01) :68-70
[34]   Nucleus-independent chemical shifts: A simple and efficient aromaticity probe [J].
Schleyer, PV ;
Maerker, C ;
Dransfeld, A ;
Jiao, HJ ;
Hommes, NJRV .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1996, 118 (26) :6317-6318
[35]   AROMATICITY AND ANTIAROMATICITY IN 5-MEMBERED C(4)H(4)X RING-SYSTEMS - CLASSICAL AND MAGNETIC CONCEPTS MAY NOT BE ORTHOGONAL [J].
SCHLEYER, PV ;
FREEMAN, PK ;
JIAO, HJ ;
GOLDFUSS, B .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 1995, 34 (03) :337-340
[36]   GENERAL ATOMIC AND MOLECULAR ELECTRONIC-STRUCTURE SYSTEM [J].
SCHMIDT, MW ;
BALDRIDGE, KK ;
BOATZ, JA ;
ELBERT, ST ;
GORDON, MS ;
JENSEN, JH ;
KOSEKI, S ;
MATSUNAGA, N ;
NGUYEN, KA ;
SU, SJ ;
WINDUS, TL ;
DUPUIS, M ;
MONTGOMERY, JA .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 1993, 14 (11) :1347-1363
[37]   IS DELOCALIZATION A DRIVING FORCE IN CHEMISTRY - BENZENE, ALLYL RADICAL, CYCLOBUTADIENE, AND THEIR ISOELECTRONIC SPECIES [J].
SHAIK, SS ;
HIBERTY, PC ;
LEFOUR, JM ;
OHANESSIAN, G .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1987, 109 (02) :363-374
[38]  
SLICHTER CP, 1978, PRINCIPLES MAGNETIC, P71
[39]  
Sondheimer F., 1963, PURE APPL CHEM, V7, P363, DOI DOI 10.1351/PAC196307020363
[40]  
Streitwieser A., 1961, MOL ORBITAL THEORY O