PHOTO-DISSOCIATION OF FORMALDEHYDE - POTENTIAL-ENERGY SURFACE-FEATURES

被引:237
作者
GODDARD, JD [1 ]
SCHAEFER, HF [1 ]
机构
[1] UNIV CALIF BERKELEY LAWRENCE BERKELEY LAB, BERKELEY, CA 94720 USA
关键词
D O I
10.1063/1.437353
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Features of the S0 potential energy surface of formaldehyde relevant to its dissociation to molecular products, H2+CO, to radical formation, H+HCO, and to rearrangement to hydroxycarbene, HCOH, have been studied by means of ab initio calculations. A gradient procedure was used to locate and to characterize both equilibrium and transition state geometries. Basis sets of at least double zeta (DZ) quality were employed throughout and many calculations involved more flexible basis sets including polarization functions. Force constants, normal modes and vibrational frequencies were calculated at the SCF level for stationary points on the surface. Extensive configuration interaction (CI) calculations were also carried out. For the molecular dissociation the energy barrier including the effects of polarization functions and electron correlation was 4.06 eV (93.6 kcal mole-1, 32700cm-1). Correcting for changes in zero point vibrational energy gave an approximate activation energy of 3.76 eV (87 kcal mole-1, 30300cm-1) with an estimated error of ±0.2 eV (±5 kcal mole-1, ±1700cm-1). The energy required for the rearrangement of formaldehyde to trans-hydroxycarbene was calculated to be 3.85 eV (89 kcal mole-1, 31000cm-1) at the DZ + polarization + CI level with the inclusion of zero point corrections. The large imaginary frequencies associated with the reactive motion imply sharp and thin barriers through which tunneling is estimated to be of considerable importance. Based on the calculated features of the potential energy surface the mechanism of the photodissociation of formaldehyde is discussed. © 1979 American Institute of Physics.
引用
收藏
页码:5117 / 5134
页数:18
相关论文
共 50 条
[31]   OPTO-ACOUSTIC SPECTROSCOPY AND THE ENERGY OF PHOTO-DISSOCIATION OF URANIUM HEXAFLUORIDE [J].
LEWIS, WB ;
ZELTMANN, AH .
JOURNAL OF PHOTOCHEMISTRY, 1980, 12 (01) :51-58
[34]   Potential-energy surface for H-2 dissociation over Pd(100) [J].
Wilke, S ;
Scheffler, M .
PHYSICAL REVIEW B, 1996, 53 (08) :4926-4932
[35]   ENERGY PARTITIONING IN PHOTO-DISSOCIATION - STATE SELECTIVE STUDIES OF THE CYANOGEN HALIDES [J].
ASHFOLD, MNR ;
GEORGIOU, AS ;
QUINTON, AM ;
SIMONS, JP .
JOURNAL OF THE CHEMICAL SOCIETY-FARADAY TRANSACTIONS II, 1981, 77 :259-271
[36]   Calculations of the potential-energy surface for dissociation process of O-2 on the Al(111) surface [J].
Sasaki, T ;
Ohno, T .
PHYSICAL REVIEW B, 1999, 60 (11) :7824-7827
[37]   THE IDEA OF A POTENTIAL-ENERGY SURFACE [J].
SUTCLIFFE, BT .
JOURNAL OF MOLECULAR STRUCTURE-THEOCHEM, 1995, 341 :217-235
[38]   FEATURES OF THE THIOFORMALDEHYDE POTENTIAL-ENERGY SURFACES [J].
GODDARD, JD .
CANADIAN JOURNAL OF CHEMISTRY-REVUE CANADIENNE DE CHIMIE, 1985, 63 (07) :1910-1917
[39]   SCATTERED MICROWAVE-ENERGY AND BUILDING SURFACE-FEATURES [J].
NOERPEL, AR ;
RANADE, A .
DALLAS GLOBECOM 89, VOLS 1-3: COMMUNICATIONS TECHNOLOGY FOR THE 1990S AND BEYOND, 1989, :72-77
[40]   PHOTO-DISSOCIATION OF XYLENE IONS - TRANSLATIONAL ENERGY-RELEASE AS A FUNCTION OF PHOTON ENERGY [J].
MUKHTAR, ES ;
GRIFFITHS, IW ;
HARRIS, FM ;
BEYNON, JH .
ORGANIC MASS SPECTROMETRY, 1981, 16 (01) :51-51