AI Article Synopsis

  • A study focused on creating disubstituted carboxonium derivatives of the -decaborate anion [2,6-BHOCCH] was conducted, proposing a method involving the reaction of [BH] with benzoic acid.
  • The synthesis occurs through a two-step process, starting with a mono-substituted product, but a quicker one-step method is also suggested.
  • The structure of the resulting tetrabutylammonium salts was confirmed using X-ray analysis, and the reaction mechanism was explored with DFT calculations, revealing the importance of intermediate anionic species and the regioselectivity for the 2,6-isomer.

Article Abstract

A comprehensive study focused on the preparation of disubstituted carboxonium derivatives of -decaborate anion [2,6-BHOCCH] was carried out. The proposed synthesis of the target product was based on the interaction between the anion [BH] and benzoic acid CHCOOH. It was shown that the formation of this product proceeds stepwise through the formation of a mono-substituted product [BHOC(OH)CH]. In addition, an alternative one-step approach for obtaining the target derivative is postulated. The structure of tetrabutylammonium salts of carboxonium derivative ((CH)N)[2,6-BHOCCH] was established with the help of X-ray structure analysis. The reaction pathway for the formation of [2,6-BHOCCH] was investigated with the help of density functional theory (DFT) calculations. This process has an electrophile induced nucleophilic substitution (EINS) mechanism, and intermediate anionic species play a key role. Such intermediates have a structure in which one boron atom coordinates two hydrogen atoms. The regioselectivity for the process of formation for the 2,6-isomer was also proved by theoretical calculations. Generally, in the experimental part, the simple and available approach for producing disubstituted carboxonium derivative was introduced, and the mechanism of this process was investigated with the help of theoretical calculations. The proposed approach can be applicable for the preparation of a wide range of disubstituted derivatives of -borate anions.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9966448PMC
http://dx.doi.org/10.3390/molecules28041757DOI Listing

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Article Synopsis
  • A study focused on creating disubstituted carboxonium derivatives of the -decaborate anion [2,6-BHOCCH] was conducted, proposing a method involving the reaction of [BH] with benzoic acid.
  • The synthesis occurs through a two-step process, starting with a mono-substituted product, but a quicker one-step method is also suggested.
  • The structure of the resulting tetrabutylammonium salts was confirmed using X-ray analysis, and the reaction mechanism was explored with DFT calculations, revealing the importance of intermediate anionic species and the regioselectivity for the 2,6-isomer.
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The first series of persistent carbocations derived from mono- and disubstituted chrysenes Ch (5- methyl- 3, 2-methoxy- 19, 2-methoxy-11-methyl- 20, 2-methoxy-5-methyl- 21, and 9-methyl-4H-cyclopenta[def]chrysene 22), monosubstituted benzo[c]phenanthrenes BcPh (3-methoxy- 23, 3-hydroxy- 24), and monosubstituted benzo[g]chrysenes BgCh (12-methoxy- 25; 12-hydroxy- 26) were generated in FSO3H/SO2ClF or FSO3H-SbF5 (4:1)/SO2ClF and studied by low-temperature NMR at 500 MHz. The methoxy and methyl substituents direct the protonation to their respective ortho positions. Whereas parent Ch 1 is protonated at C-6/C-12, 3 is protonated at C-6 (3aH+) and at C-12 (3bH+) with the latter being the thermodynamic cation.

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