Boron chemistry has experienced tremendous progress in the last few decades, resulting in the isolation of a variety of compounds with remarkable electronic structures and properties. Some examples are the singly Lewis-base-stabilised borylenes, wherein boron has a formal oxidation state of +I, and their dimers featuring a boron-boron double bond, namely diborenes. However, no evidence of a Wanzlick-type equilibrium between borylenes and diborenes, which would open a valuable route to the latter compounds, has been found. In this work, we combine DFT, coupled-cluster, multireference methods, and natural bond orbital/natural resonance theory analyses to investigate the electronic, structural, and kinetic factors controlling the reactivity of the transient CAAC-stabilised cyanoborylene, which spontaneously cyclotetramerises into a butterfly-type, twelve-membered (BCN) ring, and the reasons why its dimerisation through the boron atoms is hampered. The computations are also extended to the NHC-stabilised borylene counterparts. We reveal that the borylene ground state multiplicity dictates the preference for self-stabilising cyclooligomerisation over boron-boron dimerisation. Our comparison between NHC- CAAC-stabilised borylenes provides a convincing rationale for why the reduction of the former always gives diborenes while a range of other products is found for the latter. Our findings provide a theoretical background for the rational design of base-stabilised borylenes, which could pave the way for novel synthetic routes to diborenes or alternatively non-dimerising systems for small-molecule activation.
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http://dx.doi.org/10.1039/d1sc05988b | DOI Listing |
Dalton Trans
January 2025
Department of Chemical Sciences, Tezpur University, Napaam 784028, Assam, India.
Chemistry
November 2024
School of Chemical Science and Engineering, Tongji University, 1239 Siping Road, Shanghai, 200092, P. R. China.
Borylenes (:B-R) that are built on a single B-R bond between boron and another nonmetallic atom or group are a heated subject of special interest due to their intriguing transition-metal-mimicking reactivity, but the relative lack of understanding for the electronic structure and chemical bonding of transition metal borides leads to lingering neglect of metalized borylenes (:B-M) based on covalent B-M bonding. Here we use infrared photodissociation spectroscopy in combination with density functional calculations to study the geometric structure and chemical bonding of boron-gold carbonyl complex cations. The structure and bonding analyses demonstrated that the BAu(CO) and BAu(CO) complexes can be described as bis-carbonyl-trapped borylene adducts.
View Article and Find Full Text PDFDalton Trans
December 2024
Institute of Chemistry, Faculty of Natural Sciences II, Martin-Luther-Universität Halle-Wittenberg, Kurt-Mothes-Str. 2, D-06120 Halle (Saale), Germany.
The formation of a rhodium pincer-type complex with a boron-based donor ligand and its reactivity are reported. The starting complex contains a formal borylene moiety, stabilised by two pyridine substituents. Quantum chemical investigations indicate the possibility of deprotonation of the central donor group of the type pyBH in this complex.
View Article and Find Full Text PDFInorg Chem
November 2024
School of Chemistry, Dalian University of Technology, Dalian 116024, P. R. China.
Thermal or photoinduced isomerization of diruthenium bridging bisborylene complexes [{Cp*(H)Ru}(μ-BAr)] (, Ar = Ph; , Ar = 3,4,5-FCH) led to -ruthenacarboranes and with newly formed B-C and B-H bonds. The reaction mechanism was analyzed by deuterium-labeling experiments and density functional theory calculations. Additionally, 2-fold B-H coupling between borylene and two hydrido ligands of can be achieved, assisted by Lewis base IPrMe to generate a dinuclear bridging borylene complex [(Cp*Ru)(μ-H)(μ-BPh)] ().
View Article and Find Full Text PDFHerein, we report boron-centered arene extrusion reactions to afford putative cyclic(alkyl)(amino) carbene (CAAC)-ligated chloroborylene and bromoborylene intermediates. The borylene precursors, chloro-boranorbornadiene (ClB(CMe), 2) and bromo-boranorbornadiene (BrB(CMe), 2) were synthesized through the reaction of the corresponding 1-halo-2,3,4,5-tetramethylborole dimer (XBCMe) (X = Cl, 1; X = Br, 1) with 2-butyne. Treatment of 2 with CAACs resulted in the release of di-coordinate chloro-borylene (CAAC)BCl from hexamethylbenzene (CMe) at room temperature.
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