Ab initio Calculations of Optical Rotation

Coupled cluster (CC) and density functional theory (DFT) are highly regarded as robust quantum chemical methods for accurately predicting a wide variety of properties, such as molecular structures, thermochemical data, vibrational spectra, etc., but there has been little focus on the theoretical pre...

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Main Author: Tam, Mary Christina
Other Authors: Chemistry
Format: Others
Published: Virginia Tech 2014
Subjects:
Online Access:http://hdl.handle.net/10919/27214
http://scholar.lib.vt.edu/theses/available/etd-04242006-152120/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-272142020-09-26T05:34:47Z Ab initio Calculations of Optical Rotation Tam, Mary Christina Chemistry Crawford, T. Daniel Tanko, James M. Morris, John R. Tissue, Brian M. Yee, Gordon T. coupled cluster theory density functional theory optical rotation Coupled cluster (CC) and density functional theory (DFT) are highly regarded as robust quantum chemical methods for accurately predicting a wide variety of properties, such as molecular structures, thermochemical data, vibrational spectra, etc., but there has been little focus on the theoretical prediction of optical rotation. This property, also referred to as circular birefringence, is inherent to all chiral molecules and occurs because such samples exhibit different refractive indices for left- and right- circularly polarized light. This thesis focuses on the theoretical prediction of this chiroptic property using CC and DFT quantum chemical models. Several small chiral systems have been studied, including (S)-methyloxirane, (R)-epichlorohydrin, (R)-methylthiirane, and the conformationally flexible molecules, (R)-3-chloro-1-butene and (R)-2-chlorobutane. All predicted results have been compared to recently published gas-phase cavity ringdown polarimetry data. When applicable, well-converged Gibbs free energy differences among confomers were determined using complete-basis-set extrapolations of CC energies in order to obtain Boltzmann-averaged specific rotations. The overall results indicate that the theoretical rotation is highly dependent on the choice of optimized geometry and basis set (diffuse functions are shown to be extremely important), and that there is a large difference between the CC and DFT predicted values, with DFT usually predicting magnitudes that are larger than those of coupled cluster theory. Ph. D. 2014-03-14T20:10:38Z 2014-03-14T20:10:38Z 2006-04-18 2006-04-24 2006-05-02 2006-05-02 Dissertation etd-04242006-152120 http://hdl.handle.net/10919/27214 http://scholar.lib.vt.edu/theses/available/etd-04242006-152120/ TAM_thesis.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic coupled cluster theory
density functional theory
optical rotation
spellingShingle coupled cluster theory
density functional theory
optical rotation
Tam, Mary Christina
Ab initio Calculations of Optical Rotation
description Coupled cluster (CC) and density functional theory (DFT) are highly regarded as robust quantum chemical methods for accurately predicting a wide variety of properties, such as molecular structures, thermochemical data, vibrational spectra, etc., but there has been little focus on the theoretical prediction of optical rotation. This property, also referred to as circular birefringence, is inherent to all chiral molecules and occurs because such samples exhibit different refractive indices for left- and right- circularly polarized light. This thesis focuses on the theoretical prediction of this chiroptic property using CC and DFT quantum chemical models. Several small chiral systems have been studied, including (S)-methyloxirane, (R)-epichlorohydrin, (R)-methylthiirane, and the conformationally flexible molecules, (R)-3-chloro-1-butene and (R)-2-chlorobutane. All predicted results have been compared to recently published gas-phase cavity ringdown polarimetry data. When applicable, well-converged Gibbs free energy differences among confomers were determined using complete-basis-set extrapolations of CC energies in order to obtain Boltzmann-averaged specific rotations. The overall results indicate that the theoretical rotation is highly dependent on the choice of optimized geometry and basis set (diffuse functions are shown to be extremely important), and that there is a large difference between the CC and DFT predicted values, with DFT usually predicting magnitudes that are larger than those of coupled cluster theory. === Ph. D.
author2 Chemistry
author_facet Chemistry
Tam, Mary Christina
author Tam, Mary Christina
author_sort Tam, Mary Christina
title Ab initio Calculations of Optical Rotation
title_short Ab initio Calculations of Optical Rotation
title_full Ab initio Calculations of Optical Rotation
title_fullStr Ab initio Calculations of Optical Rotation
title_full_unstemmed Ab initio Calculations of Optical Rotation
title_sort ab initio calculations of optical rotation
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/27214
http://scholar.lib.vt.edu/theses/available/etd-04242006-152120/
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