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The structure and energetics of Cr(CO)6 and Cr(CO)5The geometric structure of Cr(CO)6 is optimized at the modified coupled pair functional (MCPF), single and double excitation coupled-cluster (CCSD) and CCSD(T) levels of theory (including a perturbational estimate for connected triple excitations), and the force constants for the totally symmetric representation are determined. The geometry of Cr(CO)5 is partially optimized at the MCPF, CCSD, and CCSD(T) levels of theory. Comparison with experimental data shows that the CCSD(T) method gives the best results for the structures and force constants, and that remaining errors are probably due to deficiencies in the one-particle basis sets used for CO. The total binding energies of Cr(CO)6 and Cr(CO)5 are also determined at the MCPF, CCSD, and CCSD(T) levels of theory. The CCSD(T) method gives a much larger total binding energy than either the MCPF or CCSD methods. An analysis of the basis set superposition error (BSSE) at the MCPF level of treatment points out limitations in the one-particle basis used. Calculations using larger basis sets reduce the BSSE, but the total binding energy of Cr(CO)6 is still significantly smaller than the experimental value, although the first CO bond dissociation energy of Cr(CO)6 is well described. An investigation of 3s3p correlation reveals only a small effect. In the largest basis set, the total CO binding energy of Cr(CO)6 is estimated to be 140 kcal/mol at the CCSD(T) level of theory, or about 86 percent of the experimental value. The remaining discrepancy between the experimental and theoretical value is probably due to limitations in the one-particle basis, rather than limitations in the correlation treatment. In particular an additional d function and an f function on each C and O are needed to obtain quantitative results. This is underscored by the fact that even using a very large primitive set (1042 primitive functions contracted to 300 basis functions), the superposition error for the total binding energy of Cr(CO)6 is 22 kcal/mol at the MCPF level of treatment.
Document ID
19930016261
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Barnes, Leslie A.
(Eloret Corp. Palo Alto, CA, United States)
Liu, Bowen
(International Business Machines Corp. San Jose, CA., United States)
Lindh, Roland
(Lund Univ. Sweden)
Date Acquired
September 6, 2013
Publication Date
January 1, 1992
Subject Category
Atomic And Molecular Physics
Report/Patent Number
NASA-CR-192889
NAS 1.26:192889
Report Number: NASA-CR-192889
Report Number: NAS 1.26:192889
Accession Number
93N25450
Funding Number(s)
CONTRACT_GRANT: NCC2-741
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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