The aromaticity of pyracylene: An experimental and computational study of the energetics of the hydrogenation of acenaphthylene and pyracylene

被引:48
作者
Diogo, HP
Kiyobayashi, T
da Piedade, MEM
Burlak, N
Rogers, DW
McMasters, D
Persy, G
Wirz, J
Liebman, JF
机构
[1] Inst Super Tecn, Ctr Quim Estrutural, P-1049001 Lisbon, Portugal
[2] Long Isl Univ, Brooklyn Ctr, Dept Chem, Brooklyn, NY 11201 USA
[3] Univ Basel, Inst Phys Chem, CH-4056 Basel, Switzerland
[4] Univ Maryland Baltimore Cty, Dept Chem & Biochem, Baltimore, MD 21250 USA
关键词
D O I
10.1021/ja012541+
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this work, the aromaticity of pyracylene (2) was investigated from an energetic point of view. The standard enthalpy of hydrogenation of acenaphthylene (1) to acenaphthene (3) at 298.15 K was determined to be -(114.5+/-4.2) kJ mol(-1) in toluene solution and -(107.9+/-4.2) kJ mol-l in the gas phase, by combining results of combustion and reaction-solution calorimetry. A direct calorimetric measurement of the standard enthalpy of hydrogenation of pyracylene (2) to pyracene (4) in toluene at 298.15 K gave -(249.9+/-4.6) kJ mol-1. The corresponding enthalpy of hydrogenation in the gas phase, computed from the Delta(f)H(m)(o)(cr) and Delta(sub)H(m)(o) values obtained in this work for 2 and 4, was -(236.0+/-7.0) kJ mol-1. Molecular mechanics calculations (MM3) led to Delta(hyd)H(m)(o)(1,g) = -110.9 kJ mol(-1) and Delta(hyd)H(m)(o)(2,g) = -249.3 kJ mol(-1) at 298.15 K. Density functional theory calculations [B3LYP/6-311+G(3d,2p)//B3LYP/6-31G(d)] provided Delta(hyd)H(m)(o)(2,g) = -(244.6+/-8.9) kJ mol(-1) at 298.15 K. The results are put in perspective with discussions concerning the "aromaticity" of pyracylene. It is concluded that, on energetic grounds, pyracylene is a borderline case in terms of aromaticity/antiaromaticity character.
引用
收藏
页码:2065 / 2072
页数:8
相关论文
共 81 条
[61]   VAPOR-PRESSURES AND DERIVED ENTHALPIES OF VAPORIZATION FOR SOME CONDENSED-RING HYDROCARBONS [J].
OSBORN, AG ;
DOUSLIN, DR .
JOURNAL OF CHEMICAL AND ENGINEERING DATA, 1975, 20 (03) :229-231
[62]  
Pedley J.B., 1994, THERMOCHEMICAL DATA, V1, P1, DOI DOI 10.1021/I160019A011
[63]   ENTHALPIES OF HYDROGENATION OF THE HEXENES [J].
ROGERS, DW ;
CROOKS, E ;
DEJROONGRUANG, K .
JOURNAL OF CHEMICAL THERMODYNAMICS, 1987, 19 (11) :1209-1215
[64]  
ROGERS DW, 1980, AM LAB, V12, P18
[65]   HEATS OF HYDROGENATION AND FORMATION OF LINEAR ALKYNES AND A MOLECULAR MECHANICS INTERPRETATION [J].
ROGERS, DW ;
DAGDAGAN, OA ;
ALLINGER, NL .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1979, 101 (03) :671-676
[66]   Enthalpies of hydrogenation and formation of enones. Resonance energies of 2-cyclopentenone and 2-cyclohexenone [J].
Rogers, DW ;
Zhao, YP ;
Traetteberg, M ;
Hulce, M ;
Liebman, J .
JOURNAL OF CHEMICAL THERMODYNAMICS, 1998, 30 (11) :1393-1400
[67]  
SADOWSKA KW, 1966, PRZEM CHEM, V45, P66
[68]   The determination of the standard molar enthalpy of formation of 4-chlorobenzoic acid by micro rotating-bomb combustion calorimetry [J].
Santos, RC ;
Diogo, HP ;
da Piedade, MEM .
JOURNAL OF CHEMICAL THERMODYNAMICS, 1999, 31 (11) :1417-1427
[70]   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