School of Chemistry, Physics, and Mechanical Engineering, Science and Engineering Faculty, Queensland University of Technology , Gardens Point Campus, 4001 Brisbane, QLD, Australia.
Bremen Center for Computational Materials Science, University of Bremen , 28359 Bremen, Germany.
ACS Appl Mater Interfaces. 2016 Mar 2;8(8):5385-92. doi: 10.1021/acsami.5b12606. Epub 2016 Feb 18.
One of the least known compounds among transition metal dichalcogenides (TMDCs) is the layered triclinic technetium dichalcogenides (TcX2, X = S, Se). In this work, we systematically study the structural, mechanical, electronic, and optical properties of TcS2 and TcSe2 monolayers based on density functional theory (DFT). We find that TcS2 and TcSe2 can be easily exfoliated in a monolayer form because their formation and cleavage energy are analogous to those of other experimentally realized TMDCs monolayer. By using a hybrid DFT functional, the TcS2 and TcSe2 monolayers are calculated to be indirect semiconductors with band gaps of 1.91 and 1.69 eV, respectively. However, bilayer TcS2 exhibits direct-bandgap character, and both TcS2 and TcSe2 monolayers can be tuned from semiconductor to metal under effective tensile/compressive strains. Calculations of visible light absorption indicate that 2D TcS2 and TcSe2 generally possess better capability of harvesting sunlight compared to single-layer MoS2 and ReSe2, implying their potential as excellent light-absorbers. Most interestingly, we have discovered that the TcSe2 monolayer is an excellent photocatalyst for splitting water into hydrogen due to the perfect fit of band edge positions with respect to the water reduction and oxidation potentials. Our predictions expand the two-dimensional (2D) family of TMDCs, and the remarkable electronic/optical properties of monolayer TcS2 and TcSe2 will place them among the most promising 2D TMDCs for renewable energy application in the future.
在过渡金属二卤化物(TMDCs)中,有一种化合物的知名度较低,那就是层状的碲化钼(TcX2,X = S,Se)。在这项工作中,我们基于密度泛函理论(DFT)系统地研究了 TcS2 和 TcSe2 单层的结构、力学、电子和光学性质。我们发现 TcS2 和 TcSe2 可以很容易地剥离成单层形式,因为它们的形成能和劈开能与其他实验实现的 TMDCs 单层类似。通过使用混合 DFT 泛函,计算出 TcS2 和 TcSe2 单层分别为间接半导体,带隙为 1.91eV 和 1.69eV。然而,双层 TcS2 表现出直接带隙特征,在有效拉伸/压缩应变下,TcS2 和 TcSe2 单层可以从半导体调谐到金属。可见光吸收计算表明,与单层 MoS2 和 ReSe2 相比,二维 TcS2 和 TcSe2 通常具有更好的吸收太阳光的能力,这意味着它们有潜力成为优秀的光吸收剂。最有趣的是,我们发现由于带边位置与水还原和氧化势的完美匹配,单层 TcSe2 是一种优秀的光解水制氢催化剂。我们的预测扩展了二维(2D)TMDCs 家族,单层 TcS2 和 TcSe2 的显著电子/光学性质将使它们成为未来可再生能源应用中最有前途的 2D TMDCs 之一。