AI Article Synopsis

  • Japanese chemists discovered a highly stable triplet diphenylcarbene called bis[3-bromo-5-(trifluoromethyl)[1,1'-biphenyl]-4-yl]methylidene (B3B) and analyzed its quantum chemical properties using Density Functional Theory (DFT) and Time Dependent-DFT (TD-DFT).
  • The study revealed that as nucleophilicity increases, both the singlet-triplet energy gap (ES-T) and energy bandgap (E) decrease, with detailed assessments conducted on molecular properties and electronic spectra across various solvents.
  • B3B exhibited characteristic absorption and fluorescence peaks in the UV-visible range, with shifts in

Article Abstract

A triplet diphenylcarbene, bis[3-bromo-5-(trifluoromethyl)[1,1'-biphenyl]-4-yl]methylidene (B3B), with exceptional stability was discovered by chemists from Japan's Mie University. To investigate its different quantum chemical features, a theoretical analysis was predicated on Density Functional Theory (DFT) and Time Dependent-DFT (TD-DFT) based technique. According to the findings, the singlet-triplet energy gap (ES-T), as well as HOMO-LUMO energy bandgap (E), was found to be diminished when nucleophilicity (N) rose. We looked at the geometrical dimensions, molecular orbitals (MOs), electronic spectra, electrostatic potential, molecular surfaces, reactivity characteristics, and thermodynamics features of the title carbene (B3B). Its electronic spectra in different solvents were calculated using TD-DFT and Polarizable Continuum Model (PCM) framework. The estimated absorption maxima of B3B were seen between 327 and 340 nm, relying on the solvents, and were attributed to the S → S transition. Estimated fluorescence spectral peaks were found around 389 and 407 nm with the S and S transitions being identified. Its fluorescence/absorption intensities revealed a blue shift change when the solvent polarity was increased. The least exciting state has been discovered to be the π → π charge-transfer (CT) phase. According to the Natural Bonding Orbital (NBO) exploration, ICT offers a significant role in chemical system destabilization. Furthermore, several hybrid features were used to determine the NLO (nonlinear optical) features (polarizability, first-order hyperpolarizability, and dipole moment). The calculated values suggest that B3B is a promising candidate for further research into nonlinear optical properties.

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http://dx.doi.org/10.1007/s10895-022-02969-4DOI Listing

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Article Synopsis
  • Japanese chemists discovered a highly stable triplet diphenylcarbene called bis[3-bromo-5-(trifluoromethyl)[1,1'-biphenyl]-4-yl]methylidene (B3B) and analyzed its quantum chemical properties using Density Functional Theory (DFT) and Time Dependent-DFT (TD-DFT).
  • The study revealed that as nucleophilicity increases, both the singlet-triplet energy gap (ES-T) and energy bandgap (E) decrease, with detailed assessments conducted on molecular properties and electronic spectra across various solvents.
  • B3B exhibited characteristic absorption and fluorescence peaks in the UV-visible range, with shifts in
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Theoretical study on the noncovalent interactions involving triplet diphenylcarbene.

J Mol Model

July 2021

College of Chemistry and Materials Science, Hebei Key Laboratory of Inorganic Nano-materials, Hebei Normal University, Shijiazhuang, 050024, People's Republic of China.

The properties of some types of noncovalent interactions formed by triplet diphenylcarbene (DPC) have been investigated by means of density functional theory (DFT) calculations and quantum theory of atoms in molecule (QTAIM) studies. The DPC···LA (LA = AlF, SiF, PF, SF, ClF) complexes have been analyzed from their equilibrium geometries, binding energies, and properties of electron density. The triel bond in the DPC···AlF complex exhibits a partially covalent nature, with the binding energy - 65.

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The variation in the singlet-triplet energy gap of diphenylcarbene (DPC) upon interaction with hydrogen (water and methanol) or halogen bond (XCF, X = Cl, Br, I) donors to form van der Waals (vdW) complexes is investigated in relation to the electrostatic and dispersion components of such intermolecular interactions. The domain-based local pair natural orbital coupled cluster method, DLPNO-CCSD(T), is used for calculating accurate single-triplet energy gaps and interaction energies for both spin states. The local energy decomposition scheme is used to provide an accurate quantification to the various interaction energy components at the DLPNO-CCSD(T) level.

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Reactions of Arylcarbenes with Lewis Acids.

Chemistry

December 2018

Lehrstuhl für Organische Chemie II, Ruhr-Universität Bochum, 44781, Bochum, Germany.

The reactions of the three triplet ground state arylcarbenes diphenylcarbene 1, fluorenylidene 2, and dibenzocycloheptadienylidene 3 with the Lewis acids H O, ICF , and BF were studied under the conditions of matrix isolation. H O was selected as typical hydrogen bond donor, ICF as halogen bond donor, and BF as strong Lewis acid. H O forms hydrogen-bonded complexes of the singlet carbenes with 1 and 2, but not with 3.

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Experiments in low-temperature matrices reveal that triplet diphenylcarbene inserts into the very strong B-F bond of BF in a two-step reaction. The first step is the formation of a strongly bound Lewis acid-base complex between the singlet state of diphenylcarbene and BF . This step involves an inversion of the spin state of the carbene from triplet to singlet.

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