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Pressure-Induced Formation of Molecular B2X4(μ-X)2 (X = Cl, Br, I) Species
Author(s) -
Serguei Patchkovskii,
D. D. Klug,
Yansun Yao
Publication year - 2011
Publication title -
inorganic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.348
H-Index - 233
eISSN - 1520-510X
pISSN - 0020-1669
DOI - 10.1021/ic2016512
Subject(s) - chemistry , dimer , diborane , crystallography , dissociation (chemistry) , isostructural , molecule , monomer , halide , molecular solid , ab initio , ab initio quantum chemistry methods , density functional theory , boron , computational chemistry , crystal structure , inorganic chemistry , organic chemistry , polymer
Boron(III) halides (BX(3), where X = F, Cl, Br, I) at ambient pressure conditions exist as strictly monomeric, trigonal-planar molecules. Using correlated ab initio calculations, the three heavier halides (X = Cl, Br, I) are shown to possess B(2)X(4)(μ-X)(2) local minima, isostructural with the diborane molecule. The calculated dissociation barrier of the B(2)I(4)(μ-I)(2) species [≈14 kJ/mol with CCSD(T)/cc-pVTZ] may be high enough to allow cryogenic isolation. The remaining dimer structures are more labile, with dissociation barriers of less than 6 kJ/mol. All three dimer species may be stabilized by application of external pressure. Periodic density functional theory calculations predict a new dimer-based P1 solid, which becomes more stable than the P6(3)/m monomer-derived solids at 5 (X = I) to 15 (X = Cl) GPa. Metadynamics simulations suggest that B(2)X(4)(μ-X)(2)-based solids are the kinetically preferred product of pressurization of the P6(3)/m solid.

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