Sun Dan, Liu Han, Liang Hui, Song Xianqi, Chen Hao, Li Xin, Almaghbash Zeyad, Zhou Dan, Li Quan
State Key Laboratory of Superhard Materials, Key Laboratory of Material Simulation Methods & Software of Ministry of Education, and Jilin Provincial International Cooperation Key Laboratory of High-Efficiency Clean Energy Materials, Jilin University, Changchun 130012, China.
School of Physics, Changchun University of Science and Technology, Changchun 130022, China.
J Phys Chem Lett. 2025 Jan 16;16(2):494-502. doi: 10.1021/acs.jpclett.4c03294. Epub 2025 Jan 3.
The multicentered bonds present in planar borophene lead to a more complex structure and richer chemical properties. Herein, we use first-principles calculations to investigate the electronic, mechanical, and superconducting properties of various borophene polymorphs, focusing on the newly synthesized β and β phases. Notably, in order to balance and optimize the electron filling of the valence bond orbitals, the planar borophene structure is composed of a mixture of triangular lattices and hexagonal holes with multicentered bonding, which further enhances the stability of the structure and possesses a rare polymorphic property. The calculations reveal that the independent phases of borophenes, namely, χ, β, β, and β exhibit significantly enhanced dynamic stability. Compared with χ and β, β and β exhibit a higher ideal shear strength, which is attributed in part to the presence of trimer-like motifs and hexagonal motifs within their lattice. Meanwhile, all of these borophene phases exhibit distinct superconductivity, with the superconducting critical temperature of the later synthesized β and β phases reaching 7 K. The significant mechanical and superconducting properties exhibited by these independent borophene structures confer them broader application prospects in electrode materials and energy storage materials.
平面硼烯中存在的多中心键导致其结构更复杂,化学性质更丰富。在此,我们使用第一性原理计算来研究各种硼烯多晶型物的电子、力学和超导性质,重点关注新合成的β相和β相。值得注意的是,为了平衡和优化价键轨道的电子填充,平面硼烯结构由具有多中心键的三角形晶格和六边形孔的混合物组成,这进一步增强了结构的稳定性,并具有罕见的多晶型性质。计算结果表明,硼烯的独立相,即χ相、β相、β相和β相表现出显著增强的动态稳定性。与χ相和β相相比,β相和β相表现出更高的理想剪切强度,这部分归因于其晶格中存在三聚体状 motif 和六边形 motif。同时,所有这些硼烯相都表现出明显的超导性,后期合成的β相和β相的超导临界温度达到7 K。这些独立的硼烯结构所表现出的显著力学和超导性质赋予它们在电极材料和储能材料方面更广阔的应用前景。