Halogen Bond Structure and Dynamics from Molecular Simulations

Структура и динамика галогенных связей по данным молекулярного моделирования
Michael L. Klein, Richard C. Remsing
2019-07-03

condensed phasesfirst-principles simulationshalogen bondingmolecular chlorinespatial correlations
Halogen bonding has emerged as an important noncovalent interaction in a myriad of applications, including drug design, supramolecular assembly, and catalysis. The current understanding of the halogen bond is informed by electronic structure calculations on isolated molecules and/or crystal structures that are not readily transferable to liquids and disordered phases. To address this issue, we present a first-principles simulation-based approach for quantifying halogen bonds in molecular systems rooted in an understanding of nuclei-nuclei and electron-nuclei spatial correlations. We then demonstrate how this approach can be used to quantify the structure and dynamics of halogen bonds in condensed phases, using solid and liquid molecular chlorine as prototypical examples with high concentrations of halogen bonds. We close with a discussion of how the knowledge generated by our first-principles approach may inform the development of classical empirical models, with a consistent representation of halogen bonding.
1
Introduces a first-principles simulation approach to quantify halogen bonds using nuclei–nuclei and electron–nuclei spatial correlations.
2
Solid and liquid molecular chlorine serve as prototypical high-halogen-bond-concentration systems for demonstrating the approach.
3
The method characterizes halogen-bond structure and dynamics in condensed phases, addressing limitations of isolated-molecule calculations and crystal-structure analyses.
4
The resulting first-principles understanding can guide classical empirical models with a consistent representation of halogen bonding.

Halogen bonds in condensed-phase molecular chlorine, including solid and liquid phases

The structure, spatial correlations, and dynamics of halogen bonds quantified through nuclei–nuclei and electron–nuclei correlations

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2019-07-03
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Michael L. Klein
Richard C. Remsing
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