Quantum hessian fitting for quick determination of force constant parameters in molecular mechanics

We present three new methods called Full, Partial, and Internal Hessian Fitting (FHF, PHF, and IHF) for deriving force constant parameters that are used in molecular mechanics (MM) force fields to describe the bond-stretching, angle-bending, dihedral-torsion, and improper-torsion terms. The MM-calcu...

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Main Author: Wang, Ruixing
Other Authors: Lee Soo Ying
Format: Theses and Dissertations
Language:English
Published: 2017
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Online Access:http://hdl.handle.net/10356/70252
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-702522023-02-28T23:33:14Z Quantum hessian fitting for quick determination of force constant parameters in molecular mechanics Wang, Ruixing Lee Soo Ying School of Physical and Mathematical Sciences DRNTU::Science::Chemistry::Physical chemistry We present three new methods called Full, Partial, and Internal Hessian Fitting (FHF, PHF, and IHF) for deriving force constant parameters that are used in molecular mechanics (MM) force fields to describe the bond-stretching, angle-bending, dihedral-torsion, and improper-torsion terms. The MM-calculated Hessian matrices are made as close as possible to the QM-calculated ones. The Hessian fitting processes are done analytically and thus rapidly, yielding force constant parameters as the output. We herein apply our methods to derive force constant parameters for the AMBER-type energy expression. Test calculations on several different molecules show good performance of the parameter sets produced by our methods in terms of how well they can reproduce QM-calculated frequencies. We also notice that the nonbonded interactions sometimes overwhelm the bonded ones, resulting in distorted geometries. This problem is significant when soft bonds are involved in the target molecule as in the case of secondary building units of metal-organic frameworks, where the MM-optimized geometry sometimes deviates significantly from the QM-optimized one. We show that this problem is rectified effectively by use of a simple procedure called Katachi that modifies the equilibrium bond distances and angles in bond-stretching and angle-bending term. Master of Science 2017-04-18T01:28:16Z 2017-04-18T01:28:16Z 2017 Thesis Wang, R. (2017). Quantum hessian fitting for quick determination of force constant parameters in molecular mechanics. Master's thesis, Nanyang Technological University, Singapore. http://hdl.handle.net/10356/70252 10.32657/10356/70252 en 34 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Science::Chemistry::Physical chemistry
spellingShingle DRNTU::Science::Chemistry::Physical chemistry
Wang, Ruixing
Quantum hessian fitting for quick determination of force constant parameters in molecular mechanics
description We present three new methods called Full, Partial, and Internal Hessian Fitting (FHF, PHF, and IHF) for deriving force constant parameters that are used in molecular mechanics (MM) force fields to describe the bond-stretching, angle-bending, dihedral-torsion, and improper-torsion terms. The MM-calculated Hessian matrices are made as close as possible to the QM-calculated ones. The Hessian fitting processes are done analytically and thus rapidly, yielding force constant parameters as the output. We herein apply our methods to derive force constant parameters for the AMBER-type energy expression. Test calculations on several different molecules show good performance of the parameter sets produced by our methods in terms of how well they can reproduce QM-calculated frequencies. We also notice that the nonbonded interactions sometimes overwhelm the bonded ones, resulting in distorted geometries. This problem is significant when soft bonds are involved in the target molecule as in the case of secondary building units of metal-organic frameworks, where the MM-optimized geometry sometimes deviates significantly from the QM-optimized one. We show that this problem is rectified effectively by use of a simple procedure called Katachi that modifies the equilibrium bond distances and angles in bond-stretching and angle-bending term.
author2 Lee Soo Ying
author_facet Lee Soo Ying
Wang, Ruixing
format Theses and Dissertations
author Wang, Ruixing
author_sort Wang, Ruixing
title Quantum hessian fitting for quick determination of force constant parameters in molecular mechanics
title_short Quantum hessian fitting for quick determination of force constant parameters in molecular mechanics
title_full Quantum hessian fitting for quick determination of force constant parameters in molecular mechanics
title_fullStr Quantum hessian fitting for quick determination of force constant parameters in molecular mechanics
title_full_unstemmed Quantum hessian fitting for quick determination of force constant parameters in molecular mechanics
title_sort quantum hessian fitting for quick determination of force constant parameters in molecular mechanics
publishDate 2017
url http://hdl.handle.net/10356/70252
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