GAS-PHASE HETEROAROMATIC SUBSTITUTION .8. ELECTROPHILIC ATTACK OF ETHYL CATION ON PYRROLE, N-METHYLPYRROLE, FURAN, AND THIOPHENE

被引:14
作者
LAGUZZI, G
BUCCI, R
GRANDINETTI, F
SPERANZA, M
机构
[1] UNIV TUSCIA,DIPARTIMENTO AGROBIOL & AGROCHIM,VITERBO,ITALY
[2] CNR,AREA RIC ROMA,IST CHIM NUCL,ROME,ITALY
关键词
D O I
10.1021/ja00164a029
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Ethyl cation, obtained in the dilute gas state, together with CH5 +, from the γ-radiolysis of methane, has been allowed to react with pyrrole, N-methylpyrrole, furan, and thiophene, in the pressure range 50-760 Torr and in the presence of variable concentrations of a gaseous base (NMe3). The mechanism of the substitution and of the subsequent isomerization of the relevant ionic intermediates is discussed, and the intrinsic positional selectivity of the C2H5 +ions is evaluated. Gas-phase C2H5 +ion attack on pyrroles is characterized by a significant positional selectivity toward those substrate positions with the highest net negative charge (N:α:β = 13%:10%:77% for pyrrole; α:β = 19%:81% for N-methylpyrrole). Interaction of C2H5 +with the furan center having the maximum value of the negative charge, i.e. the O atom, favors occurrence of α-substitution (α:β = 57%:43%). Thiophene displays no significant positional discrimination (α:β = 54%:46%). Gas-phase attack of C2H5+ on simple five-membered heteroaromatics is mainly governed by electrostatic interactions established within the encounter pair. This characterizes gaseous C2H5 +as a very “hard” electrophile, rather than a borderline acid, as expected on the grounds of the alkyl cation “hardness” scale. This deviation is explained in terms of the bridged geometry for C2H5 +and its effect on the LUMO energy level of the ion. © 1990, American Chemical Society. All rights reserved.
引用
收藏
页码:3064 / 3068
页数:5
相关论文
共 39 条
[31]   ABSOLUTE ELECTRONEGATIVITY AND HARDNESS - APPLICATIONS TO ORGANIC-CHEMISTRY [J].
PEARSON, RG .
JOURNAL OF ORGANIC CHEMISTRY, 1989, 54 (06) :1423-1430
[32]   CHEMICAL HARDNESS AND BOND-DISSOCIATION ENERGIES [J].
PEARSON, RG .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1988, 110 (23) :7684-7690
[33]   REACTION OF THIOPHENE WITH OLEFINIC COMPOUNDS [J].
PINES, H ;
KVETINSKAS, B ;
VESELY, JA .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1950, 72 (04) :1568-1571
[34]   MOLECULAR-ORBITAL THEORY OF THE ELECTRONIC-STRUCTURE OF ORGANIC-MOLECULES .40. STRUCTURES AND ENERGIES OF C-1-C-3 CARBOCATIONS, INCLUDING EFFECTS OF ELECTRON CORRELATION [J].
RAGHAVACHARI, K ;
WHITESIDE, RA ;
POPLE, JA ;
SCHLEYER, PV .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1981, 103 (19) :5649-5657
[35]  
SPERANZA M, 1986, ADV HETEROCYCL CHEM, V0040, P00025
[36]   THE ETHYL DICATION (CH3CH2(.2+)) - CLASSICAL (OPEN) OR NONCLASSICAL (BRIDGED) [J].
WONG, MW ;
BAKER, J ;
NOBES, RH ;
RADOM, L .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1987, 109 (08) :2245-2250
[37]  
ZURAWSKI B, 1973, CHEM PHYS LETT, V21, P5297
[38]  
[No title captured]
[39]  
[No title captured]