Literature DB >> 18980311

Chemistry of boryllithium: synthesis, structure, and reactivity.

Yasutomo Segawa1, Yuta Suzuki, Makoto Yamashita, Kyoko Nozaki.   

Abstract

A series of lithium salts of boryl anion, boryllithiums, were synthesized and characterized by NMR spectroscopy and crystallographic analysis. In addition to the parent boryllithium compound 35a, structural modification of boryllithium, using saturated C-C and benzannulated C=C backbones in the five-membered ring and mesityl groups on the nitrogen atoms, also allowed generation of the corresponding boryllithium. The solid state structures of boryllithium showed that the boron-lithium bond is polarized where the boron atom is anionic in all (35a x DME)(2), 35a x (THF)(2), 35b x (THF)(2), and 35c x (THF)(2) when compared to the structures of hydroborane 38a-c and optimized free boryl anion opt-46a-c. Dissolution of the isolated single crystals of (35a x DME)(2) and 35a x (THF)(2) in THF-d(8) showed that the boron-lithium bond remained in solution and free DME or THF molecules were observed. Temperature-dependent (11)B NMR chemical shift changes of 35a were observed in THF-d(8) or methylcyclohexane-d(14), suggesting a change of chemical shift anisotropy around the boron center. The HOMO of opt-35a x (THF)(2) had a lone pair character on the boron atom, as observed for phenyllithium, whereas the HOMO of hydroborane 38a corresponds to the pi-orbital of the boron-containing five-membered heterocycle. The polarity of the B-Li bond, estimated by AIM analysis, was similar to that of alkyllithium. Boryllithiums 35a and 35b behave as a base or a boron nucleophile in reaction with organic electrophiles via deprotonation, S(N)2-type substitution, halogen-metal exchange or electron-transfer, 1,2-addition to a carbonyl group, and S(N)Ar reaction. In the case of the reaction with CO(2), intramolecular cyclization followed by CO elimination from borylcarboxylate anion and subsequent protonation gave hydroxyboranes 64a and 64b. The characters of the carbonyl groups in the borylcarbonyl compounds 60a, 60b, 61, 62, and 63a, which were obtained from the reaction of boryllithiums 35a and 35b, were investigated by X-ray crystallography, IR, and (13)C NMR spectroscopy to show that the boryl substituent weakened the C=O bond when compared to carbon substituted analogues.

Entities:  

Year:  2008        PMID: 18980311     DOI: 10.1021/ja8057919

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  16 in total

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Journal:  Acta Crystallogr Sect E Struct Rep Online       Date:  2009-12-04

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6.  Boryl substitution of functionalized aryl-, heteroaryl- and alkenyl halides with silylborane and an alkoxy base: expanded scope and mechanistic studies.

Authors:  Eiji Yamamoto; Satoshi Ukigai; Hajime Ito
Journal:  Chem Sci       Date:  2015-03-02       Impact factor: 9.825

7.  Facile scission of isonitrile carbon-nitrogen triple bond using a diborane(4) reagent.

Authors:  Hiroki Asakawa; Ka-Ho Lee; Zhenyang Lin; Makoto Yamashita
Journal:  Nat Commun       Date:  2014-06-26       Impact factor: 14.919

8.  UV-photoelectron spectroscopy of BN indoles: experimental and computational electronic structure analysis.

Authors:  Anna Chrostowska; Senmiao Xu; Audrey Mazière; Katherine Boknevitz; Bo Li; Eric R Abbey; Alain Dargelos; Alain Graciaa; Shih-Yuan Liu
Journal:  J Am Chem Soc       Date:  2014-08-11       Impact factor: 15.419

9.  Borylation of fluorinated arenes using the boron-centred nucleophile B(CN)32- - a unique entry to aryltricyanoborates.

Authors:  Johannes Landmann; Philipp T Hennig; Nikolai V Ignat'ev; Maik Finze
Journal:  Chem Sci       Date:  2017-06-26       Impact factor: 9.825

10.  Magnesium Boryl Reactivity with 9-BBN and Ph3 B: Rational B-B' Bond Formation and Diborane Isomerization.

Authors:  Anne-Frédérique Pécharman; Michael S Hill; Claire L McMullin; Mary F Mahon
Journal:  Angew Chem Int Ed Engl       Date:  2017-11-27       Impact factor: 15.336

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