We report an extensive density-functional theory and coupled-cluster CCSD(T) study on boron dihydride dianion clusters BnH2(2-) (n = 6-22) and their dilithiated Li2BnH2(0/-) salt complexes. Double-chain (DC) planar nanoribbon structures are confirmed as the global minima for the BnH2(2-) (n = 6-22) clusters. Charging proves to be an effective mechanism to stabilize and extend the DC planar nanostructures, capable of producing elongated boron nanoribbons with variable lengths between 4.3-17.0 Å. For the dilithiated salts, the DC planar nanoribbons are lowest in energy up to Li2B14H2 and represent true minima for all Li2BnH2(0/-) (n = 6-22) species. These boron nanostructures may be viewed as molecular zippers, in which two atomically-thin molecular wires are zipped together via delocalized bonds. Bonding analysis reveals the nature of π plus σ double conjugation in the lithiated DC nanoribbon Li2BnH2(0/-) (n up to 22) model clusters, which exhibit a 4n pattern in adiabatic detachment energies, ionization potentials, and second-order differences in total energies. Band structure analysis of the infinite DC boron nanoribbon structure also reveals that both π and σ electrons participate in electric conduction, much different from the monolayer boron α-sheet in which only π electrons act as carriers. A concept of "ribbon aromaticity" is proposed for this quasi-one-dimensional system, where regular π versus σ alternation of the delocalized electron clouds along the nanoribbons results in enhanced stability for a series of "magic" nanoribbon clusters. The total number of delocalized π and σ electrons for ribbon aromaticity collectively conforms to the (4n + 2) Hückel rule. Ribbon aromaticity appears to be a general concept in other nanoribbon systems as well.

Download full-text PDF

Source
http://dx.doi.org/10.1039/c3cp53761gDOI Listing

Publication Analysis

Top Keywords

ribbon aromaticity
12
double-chain planar
8
nanoribbon clusters
8
boron dihydride
8
bnh22- 6-22
8
nanoribbon
6
boron
6
clusters
5
aromaticity double-chain
4
planar
4

Similar Publications

Article Synopsis
  • - The study focuses on embedding fullerenes into a chiral environment to create unique materials with applications in chiroptical technology and enantioselective catalysts, as well as understanding chirality-induced spin selectivity (CISS).
  • - Researchers designed a chiral Pd2L4 capsule using a special 'ribbon-shaped' ligand derived from Tröger's base naphthalimide, which offers a compact structure with a significant inner cavity for hosting fullerenes.
  • - The binding of fullerenes like C60, C70, and corannulenes in acetonitrile results in measurable changes in their optical properties, demonstrating the induction of circular dichroism (CD) that was confirmed through X-ray
View Article and Find Full Text PDF

Ionic Bent-Core Pillar[]arenes: From Liquid Crystals to Nanoaggregates and Functional Applications.

Chem Mater

October 2024

Instituto de Nanociencia y Materiales de Aragón (INMA), CSIC-Universidad de Zaragoza, 50009 Zaragoza, Spain.

Herein, we report the first examples of supramolecular systems from bent-core-based pillar[]arenes through ionic bonds. These ionic materials have been prepared by the interaction of an amino-ended pillar[5]arene (P5N10) and three different carboxylic acids, including bent-core moieties. The bent-core units are based on ester, biphenyl, and azobenzene structures bearing two different flexible spacers between the carboxyl group and the central bent-core aromatic units.

View Article and Find Full Text PDF

The reaction between the (,)-fixolide 4-methyl-thio-semicarbazone and Pd chloride yielded the title compound, [Pd(CHNS)]·CHO {common name: -bis-[(,)-fixolide 4-methyl-thio-semicarbazonato-κ ]palladium(II) ethanol monosolvate}. The asymmetric unit of the title compound consists of one bis-thio-semicarbazonato Pd complex and one ethanol solvent mol-ecule. The thio-semicarbazononato ligands act as metal chelators with a configuration in a distorted square-planar geometry.

View Article and Find Full Text PDF

The reaction between a racemic mixture of (,)-fixolide and 4-methyl-thio-semicarbazide in ethanol with a 1:1 stoichiometric ratio and catalysed with HCl, yielded the title compound, CHNS [common name: (,)-fixolide 4-methyl-thio-semicarbazone]. There is one crystallographically independent mol-ecule in the asymmetric unit, which is disordered over the aliphatic ring [site-occupancy ratio = 0.667 (13):0.

View Article and Find Full Text PDF

Tunable Crystallinity and Electron Conduction in Wavy 2D Conjugated Metal-Organic Frameworks via Halogen Substitution.

Small

April 2024

Center for Advancing Electronics Dresden (CFAED) & Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, Mommsenstrasse 4, 01062, Dresden, Germany.

Currently, most reported 2D conjugated metal-organic frameworks (2D c-MOFs) are based on planar polycyclic aromatic hydrocarbons (PAHs) with symmetrical functional groups, limiting the possibility of introducing additional substituents to fine-tune the crystallinity and electrical properties. Herein, a novel class of wavy 2D c-MOFs with highly substituted, core-twisted hexahydroxy-hexa-cata-benzocoronenes (HH-cHBCs) as ligands is reported. By tailoring the substitution of the c-HBC ligands with electron-withdrawing groups (EWGs), such as fluorine, chlorine, and bromine, it is demonstrated that the crystallinity and electrical conductivity at the molecular level can be tuned.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!