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://www.ncbi.nlm.nih.gov/pmc/articles/PMC9093173PMC
http://dx.doi.org/10.1039/d1sc05988bDOI Listing

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Article Synopsis
  • Computational studies using Density Functional Theory suggest that stable borylenes, which are mono Lewis base-stabilized, can effectively bind to transition metal complexes like iron (Fe) and nickel (Ni).* -
  • This binding enhances the Lewis basicity of the metal centers, leading to the creation of distinct metal-only Lewis pairs (MOLPs) involving complexes like [L(CO)Fe → GaCl] and [L(CO)Ni → GaCl], where L represents electron donating ligands.* -
  • The research further explores the interactions between different ligands and the metals, utilizing advanced analytical methods such as QTAIM and EDA-NOCV.*
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Metalized Borylene in Boron-Gold Carbonyl Complexes: Infrared Spectra and Theoretical Calculations.

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.

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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.

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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)] ().

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Herein, 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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