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Halide-free synthesis of metastable graphitic BC3.
McGlamery, Devin; McDaniel, Charles; Ladd, Dylan M; Ha, Yang; Mosquera, Martín A; Mock, Michael T; Stadie, Nicholas P.
Affiliation
  • McGlamery D; Department of Chemistry & Biochemistry, Montana State University Bozeman Montana 59717 USA nstadie@montana.edu.
  • McDaniel C; Department of Chemistry & Biochemistry, Montana State University Bozeman Montana 59717 USA nstadie@montana.edu.
  • Ladd DM; Department of Chemistry & Biochemistry, Montana State University Bozeman Montana 59717 USA nstadie@montana.edu.
  • Ha Y; Advanced Light Source, Lawrence Berkeley National Laboratory Berkeley California 94720 USA.
  • Mosquera MA; Department of Chemistry & Biochemistry, Montana State University Bozeman Montana 59717 USA nstadie@montana.edu.
  • Mock MT; Department of Chemistry & Biochemistry, Montana State University Bozeman Montana 59717 USA nstadie@montana.edu.
  • Stadie NP; Department of Chemistry & Biochemistry, Montana State University Bozeman Montana 59717 USA nstadie@montana.edu.
Chem Sci ; 15(12): 4358-4363, 2024 Mar 20.
Article in En | MEDLINE | ID: mdl-38516090
ABSTRACT
Layered BC3, a metastable phase within the binary boron-carbon system that is composed of graphite-like sheets with hexagonally symmetric C6B6 units, has never been successfully crystallized. Instead, poorly-crystalline BC3-like materials with significant stacking disorder have been isolated, based on the co-pyrolysis of a boron trihalide precursor with benzene at around 800 °C. The halide leaving group (-X) is a significant driving force of these reactions, but the subsequent evolution of gaseous HX species at such high temperatures hampers their scaling up and also prohibits their further use in the presence of hard-casting templates such as ordered silicates. Herein, we report a novel halide-free synthesis route to turbostratic BC3 with long-range in-plane ordering, as evidenced by multi-wavelength Raman spectroscopy. Judicious pairing of the two molecular precursors is crucial to achieving B-C bond formation and preventing phase-segregation into the thermodynamically favored products. A simple computational method used herein to evaluate the compatibility of bottom-up molecular precursors can be generalized to guide the future synthesis of other metastable materials beyond the boron-carbon system.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2024 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2024 Document type: Article