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Aryl-Aryl Interactions in (Aryl-Perhalogenated) 1,2-Diaryldisilanes
Marvin Linnemannstöns1, Jan Schwabedissen2, Beate Neumann1
1Lehrstuhl für Anorganische Chemie und Strukturchemie, Fakultät für Chemie, Universität Bielefeld, Universitätsstraße 25, 33615, Bielefeld, Germany.
London dispersion forces significantly influence the structure of diaryltetramethyldisilanes. Highly halogenated derivatives exhibit unique conformational preferences driven by intramolecular interactions.
Area of Science:
- Organosilicon Chemistry
- Supramolecular Chemistry
- Computational Chemistry
Background:
- 1,2-diaryltetramethyldisilanes are compounds with potential applications in materials science.
- Understanding non-covalent interactions, such as London dispersion forces, is crucial for predicting molecular behavior and designing new materials.
- Aryl-aryl interactions play a significant role in the solid-state and gas-phase structures of organic and organometallic compounds.
Purpose of the Study:
- To investigate the impact of aryl group substitution on the structure and conformation of 1,2-diaryltetramethyldisilanes.
- To elucidate the role of London dispersion forces in mediating aryl-aryl interactions within these molecules.
- To compare the solid-state and gas-phase structures and analyze the intramolecular interactions.
Main Methods:
- Synthesis of 1,2-diaryltetramethyldisilanes via salt elimination from 1,2-dichlorotetramethyldisilane.
- Solid-state structure determination using X-ray diffraction.
- Gas-phase structure determination using gas electron diffraction.
- Computational analysis of interaction energies using SAPT (Symmetry-Adapted Perturbation Theory) calculations.
Main Results:
- The solid-state structures of fluorinated and chlorinated derivatives are dominated by aryl-aryl interactions.
- The perchlorinated derivative (Cl5C6-(SiMe2)2-C6Cl5) exclusively adopts an eclipsed syn-conformer in the gas phase, featuring distorted Si-C6Cl5 units due to strong intramolecular interactions.
- The perfluorinated derivative (F5C6-(SiMe2)2-C6F5) exhibits weaker intramolecular interactions compared to its chlorinated counterpart.
Conclusions:
- London dispersion forces are a key factor governing the conformational preferences of diaryltetramethyldisilanes, particularly in highly halogenated systems.
- Significant intramolecular interactions can lead to unexpected conformational behavior in the gas phase, deviating from typical packing in the solid state.
- The interplay between intermolecular and intramolecular forces dictates the overall molecular architecture and properties of these organosilicon compounds.
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