Li Shuzhen, Gong Huabin, Liu Xiaobiao, Yang Bo
School of Science, Shandong Jianzhu University Jinan Shandong 250101 China
School of Science, Henan Agricultural University Zhengzhou Henan 450002 China.
RSC Adv. 2025 Aug 26;15(37):30387-30393. doi: 10.1039/d5ra04655f. eCollection 2025 Aug 22.
Two-dimensional (2D) materials with novel mechanical behaviors and electronic characteristics have attracted extensive attention in multiple cutting-edge fields in recent years. Based on first-principles calculations, we systematically investigate the mechanical properties and electronic characteristics of transition metal oxyhalide TiOBr in this work. Results demonstrate that the TiOBr monolayer exhibits metallic characteristics with Dirac points located above the Fermi level. The calculated Fermi velocity of 0.32 × 10 m s indicates its superior electron mobility. Furthermore, the TiOBr monolayer displays a negative Poisson's ratio (NPR) effect, establishing it as a promising candidate for auxetic materials. These distinctive properties endow the TiOBr monolayer with significant research value and application prospects in future nanoelectronics and mechanical functional materials.
近年来,具有新颖力学行为和电子特性的二维(2D)材料在多个前沿领域引起了广泛关注。基于第一性原理计算,我们在这项工作中系统地研究了过渡金属卤氧化物TiOBr的力学性能和电子特性。结果表明,TiOBr单层具有金属特性,狄拉克点位于费米能级之上。计算得到的费米速度为0.32×10 m/s,表明其具有优异的电子迁移率。此外,TiOBr单层表现出负泊松比(NPR)效应,使其成为一种有前途的超材料候选物。这些独特的特性赋予了TiOBr单层在未来纳米电子学和机械功能材料方面具有重要的研究价值和应用前景。