Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/40341
Title: Hydration sphere structure of architectural molecules: Polyethylene glycol and polyoxymethylene oligomers
Authors: Rozza, Ahmed M.
VANPOUCKE, Danny E.P. 
Krammer, Eva-Maria
Bouckaert, Julie
Blossey, Ralf
Lensink, Marc F.
Ondrechen, Mary Jo
Bakó, Imre
Oláh, Julianna
Roos, Goedele
Issue Date: 2023
Publisher: 
Source: JOURNAL OF MOLECULAR LIQUIDS, 384 (Art N° 122172)
Status: Early view
Abstract: Non-toxic, chemically inert, organic polymers as polyethylene glycol (PEG) and polyoxymethylene (POM) have versatile applications in basic research, industry and pharmacy. In this work, we aim to characterize the hydration structure of PEG and POM oligomers by exploring how the solute disturbs the water structure compared to the bulk solvent and how the solute chain interacts with the solvent. We explore the effect of (i) the C–C–O (PEG) versus C-O (POM) constitution of the chain and (ii) chain length. To this end, MD simulations followed by clustering and topological analysis of the hydration network, as well as quantum mechanical calculations of atomic charges are used. We show that the hydration varies with chain conformation and length. The degree of folding of the chain impacts its degree of solvation, which is measurable by different parameters as for example the number of water molecules in the first solvation shell and the solvent accessible surface. Atomic charges calculated on the oligomers in gas phase are stable throughout conformation and chain length and seem not to determine solvation. Hydration however induces charge transfer from the solute molecule to the solvent, which depends on the degree of hydration.
Other: The author name Danny Vanpoucke needs to be corrected to include the middle names (Danny E.P. Vanpoucke) and then correctly linked to the instance in the uhasselt database, missing the middle name initials.
Keywords: Solvation;Atomic charge;Hydrogen bond;Topological analysis;Molecular dynamics simulation;Quantum chemical calculation
Document URI: http://hdl.handle.net/1942/40341
ISSN: 0167-7322
e-ISSN: 1873-3166
DOI: 10.1016/j.molliq.2023.122172
ISI #: 001018930600001
Rights: 2023PublishedbyElsevierB.V.
Category: A1
Type: Journal Contribution
Appears in Collections:Research publications

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