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  4. A mechanochemical model for the simulation of molecules and molecular crystals under hydrostatic pressure
 
Zitierlink DOI
10.26092/elib/3672
Verlagslink DOI
10.1063/5.0024671

A mechanochemical model for the simulation of molecules and molecular crystals under hydrostatic pressure

Veröffentlichungsdatum
2020-10-01
Autoren
Stauch, Tim  
Zusammenfassung
A novel mechanochemical method for the simulation of molecules and molecular crystals under hydrostatic pressure, the eXtended Hydrostatic Compression Force Field (X-HCFF) approach, is introduced. In contrast to comparable methods, the desired pressure can be adjusted non-iteratively and molecules of general shape retain chemically reasonable geometries even at high pressure. The implementation of the X-HCFF approach is straightforward, and the computational cost is practically the same as for regular geometry optimization. Pressure can be applied by using any desired electronic structure method for which a nuclear gradient is available. The results of the X-HCFF for pressure-dependent intramolecular structural changes in the investigated molecules and molecular crystals as well as a simple pressure-induced dimerization reaction are chemically intuitive and fall within the range of other established computational methods. Experimental spectroscopic data of a molecular crystal under pressure are reproduced accurately.
Schlagwörter
Density Functional Theory

; 

Electronic structure methods

; 

Molecular geometry

; 

Computational methods

; 

Dimerization

; 

Hydrostatics
Institution
Universität Bremen  
Fachbereich
Fachbereich 02: Biologie/Chemie (FB 02)  
Institute
Institut für Physikalische und Theoretische Chemie
Dokumenttyp
Artikel/Aufsatz
Zeitschrift/Sammelwerk
The Journal of Chemical Physics  
Band
153
Heft
13
Zweitveröffentlichung
Ja
Dokumentversion
Published Version
Lizenz
Alle Rechte vorbehalten
Sprache
Englisch
Dateien
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Vorschaubild
Name

Stauch_A mechanochemical model for the simulation of molecules and molecular crystals under hydrostatic pressure_2020_published-version.pdf

Size

1.31 MB

Format

Adobe PDF

Checksum

(MD5):69211a3140a9523e85b576deaca1bf29

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