Structural Evolution and Electronic Properties of Two Sulfur Atom-Doped Boron Clusters.

ACS Omega

School of Physics and Electronic Science, Guizhou Education University, Guiyang 550018, China.

Published: August 2023

We present a theoretical study of structural evolution, electronic properties, and photoelectron spectra of two sulfur atom-doped boron clusters SB ( = 2-13), which reveal that the global minima of the SB ( = 2-13) clusters show an evolution from a linear-chain structure to a planar or quasi-planar structure. Some S-doped boron clusters have the skeleton of corresponding pure boron clusters; however, the addition of two sulfur atoms modified and improved some of the pure boron cluster structures. Boron is electron-deficient and boron clusters do not form linear chains. Here, two sulfur atom doping can adjust the pure boron clusters to a linear-chain structure (SB, SB, and SB), a quasi-linear-chain structure (SB), single- and double-chain structures (SB and SB), and double-chain structures (SB, and SB). In particular, the smallest linear-chain boron clusters SB are shown with an S atom attached to each end of B. The SB cluster possesses the largest highest occupied molecular orbital (HOMO)-lowest unoccupied molecular orbital (LUMO) gap of 5.57 eV and the SB cluster possesses the largest average binding energy of 5.63 eV, which shows the superior chemical stability and relative stability, respectively. Interestingly, two S-atom doping can adjust the quasi-planar pure boron clusters (B, B, and B) to a perfect planar structure. AdNDP bonding analyses reveal that linear SB and planar SeB have π aromaticity and σ antiaromaticity; however, SB, planar SB, and planar SB clusters have π antiaromaticity and σ aromaticity. Furthermore, AdNDP bonding analyses reveal that planar SB, SB, and SB clusters are doubly (π and σ) aromatic, whereas SB, SB, SB, and SB clusters are doubly (π and σ) antiaromatic. The electron localization function (ELF) analysis shows that SB ( = 2-13) clusters have different electron delocalization characteristics, and the spin density analysis shows that the open-shell clusters have different characteristics of electron spin distribution. The calculated photoelectron spectra indicate that SB ( = 2-13) have different characteristic peaks that can be compared with future experimental values and provide a theoretical basis for the identification and confirmation of these doped boron clusters. Our work enriches the new database of geometrical structures of doped boron clusters, provides new examples of aromaticity for doped boron clusters, and is promising to offer new ideas for nanomaterials and nanodevices.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10448743PMC
http://dx.doi.org/10.1021/acsomega.3c04967DOI Listing

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