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From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding
Published on: March 24, 2018
Cl©K4I4-: A Star-Like Planar Tetracoordinate Chlorine Superhalogen Anion
Li-Xia Bai1, Yong-Pan Wang2, Fernando Martínez-Villarino3
1Institute of Molecular Science, Shanxi University, Taiyuan 030006, China.
None:
A planar tetracoordinate chlorine anion, Cl©K4I4-, is identified as a global minimum, in which a central chlorine atom is embedded within a square K4 framework bridged by four peripheral iodine atoms. This assignment is supported by unbiased isomer searches at the density functional theory level combined with high-level single-point CCSD(T) calculations. Born-Oppenheimer molecular dynamics simulations confirm its dynamical stability. Bonding analyses indicate that stabilization of the planar tetracoordinate chlorine center is dominated by electrostatic interactions. The anion exhibited a large first vertical detachment energy of 6.09 eV at the single-point CCSD(T)/def2-TZVPPD level, describing it as a superhalogen anion. The coexistence of planar tetracoordinate chlorine coordination and superhalogen character identifies Cl©K4I4- as a viable target for future gas-phase experimental characterization.
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