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From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding
Published on: March 24, 2018
Halogen Bonding in Brominated BODIPY Crystals: a Crystallographic and Computational Study
Mónica Farfán-Paredes1, Pablo Labra-Vázquez2, Oscar González-Antonio3
1Departamento de Química, Centro de Investigación y de Estudios Avanzados del IPN, Av. Instituto Politécnico Nacional 2508, Col. San Pedro Zacatenco, Gustavo A. Madero, C.P. 07360, Ciudad de México, México.
This study investigates halogen bonds (XBs) in BODIPY molecules with varying bromine content. Computational analysis reveals how these interactions influence crystal packing and form unique cyclic motifs for self-assembly.
Area of Science:
- Supramolecular Chemistry
- Crystal Engineering
- Organic Chemistry
Background:
- Halogen bonds (XBs) are crucial non-covalent interactions with applications in catalysis, liquid crystals, and crystal engineering.
- BODIPY dyes are versatile molecules with potential for functional material development.
Purpose of the Study:
- To analyze intermolecular interactions, specifically halogen bonds, in BODIPY derivatives with increasing bromination.
- To understand the role of halogen bonds in directing crystal packing and molecular assembly.
Main Methods:
- Computational analysis using Mercury for close contacts.
- Hirshfeld surface analysis for electron density partitioning.
- Quantum Theory of Atoms in Molecules (QT-AIM) for characterizing non-covalent interactions.
Main Results:
- Identified monocoordinated and bifurcated halogen bonds involving halide/halide interactions.
- Observed four-center cyclic nodes linked by halogen bonds in penta-brominated BODIPY.
- Demonstrated how increasing bromine atoms influences crystal packing and intermolecular interactions.
Conclusions:
- Halogen bonding plays a significant role in the crystal engineering of brominated BODIPYs.
- The identified cyclic motifs offer potential for designing novel supramolecular structures and self-assembled materials.
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