Theoretical Design of Novel Boron-Based Nanowires via Inverse Sandwich Clusters

Jiang, Cailian and Lv, Zhiwei and Lv, Sudong and Sai, Linwei and Wang, Shukai and Li, Fengyu (2021) Theoretical Design of Novel Boron-Based Nanowires via Inverse Sandwich Clusters. Frontiers in Chemistry, 9. ISSN 2296-2646

[thumbnail of pubmed-zip/versions/1/package-entries/fchem-09-753617/fchem-09-753617.pdf] Text
pubmed-zip/versions/1/package-entries/fchem-09-753617/fchem-09-753617.pdf - Published Version

Download (2MB)

Abstract

Borophene has important application value, boron nanomaterials doped with transition metal have wondrous structures and chemical bonding. However, little attention was paid to the boron nanowires (NWs). Inspired by the novel metal boron clusters Ln2Bn− (Ln = La, Pr, Tb, n = 7–9) adopting inverse sandwich configuration, we examined Sc2B8 and Y2B8 clusters in such novel structure and found that they are the global minima and show good stability. Thus, based on the novel structural moiety and first-principles calculations, we connected the inverse sandwich clusters into one-dimensional (1D) nanowires by sharing B−B bridges between adjacent clusters, and the 1D-Sc4B24 and 1D-Y2B12 were reached after structural relaxation. The two nanowires were identified to be stable in thermodynamical, dynamical and thermal aspects. Both nanowires are nonmagnetic, the 1D-Sc4B24 NW is a direct-bandgap semiconductor, while the 1D-Y2B12 NW shows metallic feature. Our theoretical results revealed that the inverse sandwich structure is the most energy-favored configuration for transition metal borides Sc2B8 and Y2B8, and the inverse sandwich motif can be extended to 1D nanowires, providing useful guidance for designing novel boron-based nanowires with diverse electronic properties.

Item Type: Article
Subjects: Eurolib Press > Chemical Science
Depositing User: Managing Editor
Date Deposited: 23 Jan 2023 06:17
Last Modified: 02 Jul 2024 12:34
URI: http://info.submit4journal.com/id/eprint/808

Actions (login required)

View Item
View Item