IIA Institutional Repository

Application of improved virtual orbital based multireference methods to N2, LiF, and C4H6 systems

Show simple item record

dc.contributor.author Chattopadhyay, S
dc.contributor.author Chaudhuri, R. K
dc.contributor.author Mahapatra, U. S
dc.date.accessioned 2009-02-03T16:57:02Z
dc.date.available 2009-02-03T16:57:02Z
dc.date.issued 2008-12
dc.identifier.citation Journal of Chemical Physics, Vol. 129, No. 24, pp. 244108-1 - 244108-9 en
dc.identifier.issn 1089-7690
dc.identifier.uri http://hdl.handle.net/2248/4319
dc.description.abstract The improved virtual orbital (IVO) complete active space configuration interaction (CASCI) based multiconfigurational quasidegenerate perturbation theory (MCQDPT) and its single-root version (termed as MRMPPT) are applied to assess the efficacy and the reliability of these two methods. Applications involve the ground and/or excited state potential energy curves (PECs) of N2, LiF, and C4H6 (butadiene) molecules, systems that are sufficiently complex to assess the applicability of these methods. The ionic-neutral curve crossing involving the lowest two 1Σ+ states of LiF molecule is studied using the IVO-MCQDPT method, while its single-root version (IVO-MRMPPT) is employed to study the ground state PEC for isomerization of butadiene and to model the bond dissociation of N2 molecule. Comparisons with the standard methods (full CI, coupled cluster with singles and doubles, etc.) demonstrate that the IVO-based MRMPPT and MCQDPT approaches provide smooth and reliable PECs for all the systems studied. The IVO-CASCI method is explored to enable geometry optimization for ground state of C4H6 using numerical energy gradients. The ground spectroscopic constants of N2 and LiF determined using the numerical gradient based IVO-CASCI method are in accord with experiment and with other correlated calculations. As an illustration, we may point out that the maximum deviation from the experiment in our estimated normal mode frequency of LiF is 34 cm-1, whereas for the bond length, the maximum error is just 0.012 A˚. en
dc.language.iso en en
dc.publisher American Institute of Physics en
dc.relation.uri http://dx.doi.org/10.1063/1.3046454 en
dc.rights © American Institute of Physics en
dc.subject Bond Lengths en
dc.subject Configuration Interactions en
dc.subject Dissociation en
dc.subject Excited States en
dc.subject Ground States en
dc.subject Isomerisation en
dc.subject Lithium Compounds en
dc.subject Nitrogen en
dc.subject Organic Compounds en
dc.subject Perturbation Theory en
dc.subject Potential Energy Surfaces en
dc.subject Reaction Kinetics Theory en
dc.title Application of improved virtual orbital based multireference methods to N2, LiF, and C4H6 systems en
dc.type Article en


Files in this item

This item appears in the following Collection(s)

Show simple item record

Search DSpace


Browse

My Account