Solvothermal synthesis and formation mechanism of lithium dodecaborate
Abstract
Metal dodecaborates, particularly lithium dodecaborate (Li2B12H12), are promising ionic conductors but their broader application is hindered by complex synthesis. Here we report a facile solvothermal synthesis of Li2B12H12 via reaction of lithium borohydride (LiBH4) with borane dimethyl sulfide complex (DMS·BH3) in glyme solvents. This synthesis can be conveniently performed either in a Schlenk flask (with or without reflux) or in an autoclave, demonstrating high yields (up to 96%) and excellent purity. The enclosed system provided by an autoclave is shown to be more favorable for the synthesis of the B12H122- anion. A detailed mechanistic investigation utilizing 11B NMR spectroscopy reveals a stepwise formation of B2H7-, B3H8-, B9H14-, B11H14-, and B11H132- intermediates. This synthetic strategy was successfully extended to other alkali metal dodecaborates (Na, K), and their glyme coordination complexes were characterized by single-crystal X-ray diffraction. Furthermore, we introduce a solvent-exchange approach using weaker coordinating solvents such as DMSO or water, enabling simple and efficient desolvation, offering a practical new approach to obtain anhydrous metal dodecaborates.
Keywords
Metal dodecaborate, Li2B12H12, undecaborates, reaction mechanism, boron chemistry
Cite This Article
Wang J, Steenhaut T, Robeyns K, Li HW, Filinchuk Y. Solvothermal synthesis and formation mechanism of lithium dodecaborate. Chem Synth 2026;6:[Accept]. http://dx.doi.org/10.20517/cs.2026.01
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