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Exploring Cation-π Interaction in the Complexes with B≡B Triple Bond: A DFT Study
1Department of Chemistry, Arya Vidyapeeth College , Guwahati, Assam 781016, India.
Metal ion-π interactions were studied in diboryne complexes. Larger metal ions form complexes, with interaction strength depending on ion size and charge, and sandwich complexes are more stable.
Area of Science:
- Computational chemistry
- Quantum chemistry
- Materials science
Background:
- Metal ion-π interactions are crucial in various chemical systems.
- Diboryne (B≡B) presents a unique electronic structure for such interactions.
Purpose of the Study:
- To investigate metal ion-π interactions with diboryne.
- To compare the stability of cation-π complexes and sandwich structures.
Main Methods:
- Density functional theory (DFT) calculations were employed.
- Interaction energies and global hardness were computed.
- Koopmans' theorem and the ΔSCF method were utilized.
Main Results:
- Larger metal ions (Na+, Mg2+, Ca2+, Al3+) form cation-π complexes with diboryne.
- Interaction strength decreases with increasing metal ion size (for same charge).
- Higher cation charge leads to stronger B≡B triple bond interactions.
- Sandwich complexes are more stable than cation-π complexes.
- Global hardness values corroborate interaction energy trends.
- Most complexes show stability in polar solvents.
Conclusions:
- Metal ion-π interactions with diboryne are influenced by ion size and charge.
- Diboryne-based sandwich structures offer enhanced stability.
- The findings provide insights into the behavior of diboryne in different chemical environments.
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