THERMOCHEMISTRY OF CHN, SIHN (N = 0-4), AND THE CATIONS SIH+, SIH2+, AND SIH3+ - A CONVERGED QUANTUM-MECHANICAL APPROACH

被引:98
作者
GREV, RS
SCHAEFER, HF
机构
[1] Center for Computational Quantum Chemistry, University of Georgia, Athens
关键词
D O I
10.1063/1.463409
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
We have determined 0 K heats of formation of CH(n) and SiH(n) (n=0-4) as well as the cations SiH+, SiH2+, and SiH3+ using large atomic natural orbital basis sets and coupled cluster methods including all single, double, and (perturbatively) triple excitations [CCSD(T)]. Core-correlation effects on the bond dissociation energies have been explicitly evaluated. For the intermediate hydrides CH(n) and SiH(n) (n=1-3), heats of formation are determined from theoretical bond dissociation energies in two ways: using experimental heats of formation of the H and C (or Si) atoms; and using experimental heats of formation of the H atom and the parent hydrides CH4 (or SiH4). In principle, this procedure allows us to place rigorous upper and lower bounds on the heats of formation of the intermediate hydrides. Because our theoretically predicted atomization energies are already of high quality, estimation of remaining deficiencies in the one-particle basis sets can be obtained from extrapolation of observed trends in atomization energies upon basis set expansion. These extrapolated results are in outstanding agreement with experimental values where they are known to high accuracy. For the SiH(n) compounds, a serious problem occurs: our predicted atomization energy of SiH4 is larger than that obtained from experimental heats of formation for the silicon atom and silane. Thus either relativistic effects on the atomization energy of SiH4 are large, or the experimental heats of formation of Si and SiH4 are incompatible. Excepting the atomization energy of SiH4, and thus the heats of formation of Si and SiH4, none of our other SiH(n) thermochemical predictions (properly interpreted) are clearly incompatible with experiment. Furthermore, our theoretical predictions are again in outstanding agreement with experimental determinations that are most certain.
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页码:8389 / 8406
页数:18
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共 112 条
[21]   ION-BEAM STUDIES OF THE REACTION OF SI+(2P) WITH METHANE - REACTION-MECHANISMS AND THERMOCHEMISTRY OF SICH1-3+ [J].
BOO, BH ;
ELKIND, JL ;
ARMENTROUT, PB .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1990, 112 (06) :2083-2088
[22]   C-H AND C-C BOND ACTIVATIONS BY SILICON - THERMOCHEMISTRY AND MECHANISM OF THE REACTION OF SI+(2P) WITH ETHANE [J].
BOO, BH ;
ARMENTROUT, PB .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1991, 113 (17) :6401-6408
[23]   PREDISSOCIATION EFFECTS IN A-STATE, B, AND C STATES OF CH AND INTERSTELLAR FORMATION RATE OF CH VIA INVERSE PREDISSOCIATION [J].
BRZOZOWSKI, J ;
BUNKER, P ;
ELANDER, N ;
ERMAN, P .
ASTROPHYSICAL JOURNAL, 1976, 207 (02) :414-424
[24]   THE POTENTIAL SURFACE OF X3B1 METHYLENE (CH2) AND THE SINGLET-TRIPLET SPLITTING [J].
BUNKER, PR ;
JENSEN, P ;
KRAEMER, WP ;
BEARDSWORTH, R .
JOURNAL OF CHEMICAL PHYSICS, 1986, 85 (07) :3724-3731
[25]  
CARLSON TA, 1980, ASTRON ASTROPHYS, V83, P238
[26]   NEW PRE-DISSOCIATIONS OF A-STATE IN SIH AND THEIR USE IN DERIVING AN IMPROVED VALUE OF DISSOCIATION-ENERGY [J].
CARLSON, TA ;
DURIC, N ;
ERMAN, P ;
LARSSON, M .
JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 1978, 11 (21) :3667-3675
[27]  
CHASE MW, 1985, J PHYS CHEM REF DATA, V14, P1
[28]   PHOTOIONIZATION OF ETHYLENE WITH MASS ANALYSIS [J].
CHUPKA, WA ;
BERKOWITZ, J ;
REFAEY, KMA .
JOURNAL OF CHEMICAL PHYSICS, 1969, 50 (05) :1938-+
[29]   PHOTOIONIZATION OF CH3 - HEAT OF FORMATION OF CH2 [J].
CHUPKA, WA ;
LIFSHITZ, C .
JOURNAL OF CHEMICAL PHYSICS, 1968, 48 (03) :1109-&
[30]   MASS-SPECTROMETRIC STUDY OF PHOTOIONIZATION OF METHANE [J].
CHUPKA, WA .
JOURNAL OF CHEMICAL PHYSICS, 1968, 48 (05) :2337-&