All-body concept and quantified limits of cooperativity and related effects in homodromic cyclic water clusters from a molecular-wide and electron density-based approach

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dc.contributor.author Cukrowski, Ignacy
dc.contributor.author Zaaiman, Stefan
dc.contributor.author Hussain, Shahnawaz
dc.contributor.author De Lange, Jurgens Hendrik
dc.date.accessioned 2025-03-28T10:32:45Z
dc.date.available 2025-03-28T10:32:45Z
dc.date.issued 2024-12
dc.description DATA AVAILABILITY STATEMENT : All data are available in Supporting Information. en_US
dc.description.abstract We strongly advocate distinguishing cooperativity from cooperativity-induced effects. From the MOWeD-based approach, the origin of all-body cooperativity is synonymous with physics- and quantum-based processes of electron (e) delocalization throughout water clusters. To this effect, over 10 atom-pairs contribute to the total e-density at a BCP(H,O) between water molecules in a tetramer. Intermolecular all-body e-delocalization, that is, cooperativity, is an energy-minimizing process that fully explains non-additive increase in stability of a water molecule in clusters with an increase in their size. A non-linear change in cooperativity and cooperativity-induced effects, such as (i) structural (e.g., a change in d(O,O)) or topological intra- and intermolecular properties in water clusters (e.g., electron density or potential energy density at bond critical points) is theoretically reproduced by the proposed expression. It predicted the limiting value of delocalized electrons by a H2O molecule in homodromic cyclic clusters to be 1.58e. O-atoms provide the vast majority of electrons that “travel throughout a cluster predominantly on a privileged exchange quantum density highway” ( O–H O–H O–H ) using Bader's classical bond paths as density bridges linking water molecules. There are, however, additional electron exchange channels that are not seen on molecular graphs as bond paths. A 3D visual representation of the “privileged” and “additional” exchange channels as well as detailed intra- and inter-molecular patterns of e-sharing and (de)localizing is presented. The energy stabilizing contribution made by three O-atoms of neighboring water molecules was found to be large ( 597 kcal/mol in cyclic hexamer) and 5 times more significant than that of a classical O–H O intermolecular H-bond. en_US
dc.description.department Chemistry en_US
dc.description.librarian am2024 en_US
dc.description.sdg None en_US
dc.description.uri http://wileyonlinelibrary.com/journal/jcc en_US
dc.identifier.citation Cukrowski, I., Zaaiman, S., Hussain, S. & De Lange, J.H. 2025, 'All-body concept and quantified limits of cooperativity and related effects in homodromic cyclic water clusters from a molecular-wide and electron density-based approach', Journal of Computational Chemistry, vol. 45, no. 32, pp. 2812-2824, doi : 10.1002/jcc.27489. en_US
dc.identifier.issn 0192-8651 (print)
dc.identifier.issn 1096-987X (online)
dc.identifier.other 10.1002/jcc.27489
dc.identifier.uri http://hdl.handle.net/2263/101794
dc.language.iso en en_US
dc.publisher Wiley en_US
dc.rights © 2024 The Author(s). This is an open access article under the terms of the Creative Commons Attribution License. en_US
dc.subject Cooperativity en_US
dc.subject Cyclic water clusters en_US
dc.subject Atomic en_US
dc.subject Localized en_US
dc.subject Fragment attributed molecular system energy change (FAMSEC) en_US
dc.subject Molecular-wide and electron density (MOWeD) en_US
dc.subject Fragment, atomic, localized, delocalized and interatomic (FALDI) en_US
dc.title All-body concept and quantified limits of cooperativity and related effects in homodromic cyclic water clusters from a molecular-wide and electron density-based approach en_US
dc.type Article en_US


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