Department of Physics, Adnan Menderes University, Aydın 09010, Turkey.
Department of Chemistry, University of Puerto Rico at Cayey, P.O. Box 372230, Cayey, Puerto Rico 00737-2230, USA.
J Chem Phys. 2018 Jun 7;148(21):214706. doi: 10.1063/1.5026120.
We have studied the structural stability of monolayer and bilayer arsenene (As) in the buckled (b) and washboard (w) phases with diffusion quantum Monte Carlo (DMC) and density functional theory (DFT) calculations. DMC yields cohesive energies of 2.826(2) eV/atom for monolayer b-As and 2.792(3) eV/atom for w-As. In the case of bilayer As, DMC and DFT predict that AA-stacking is the more stable form of b-As, while AB is the most stable form of w-As. The DMC layer-layer binding energies for b-As-AA and w-As-AB are 30(1) and 53(1) meV/atom, respectively. The interlayer separations were estimated with DMC at 3.521(1) Å for b-As-AA and 3.145(1) Å for w-As-AB. A comparison of DMC and DFT results shows that the van der Waals density functional method yields energetic properties of arsenene close to DMC, while the DFT + D3 method closely reproduced the geometric properties from DMC. The electronic properties of monolayer and bilayer arsenene were explored with various DFT methods. The bandgap values vary significantly with the DFT method, but the results are generally qualitatively consistent. We expect the present work to be useful for future experiments attempting to prepare multilayer arsenene and for further development of DFT methods for weakly bonded systems.
我们使用扩散量子蒙特卡罗(DMC)和密度泛函理论(DFT)计算研究了单层和双层砷烯(As)在褶皱(b)和搓板(w)相中的结构稳定性。DMC 给出了单层 b-As 的内聚能为 2.826(2) eV/原子,w-As 的内聚能为 2.792(3) eV/原子。对于双层 As,DMC 和 DFT 预测 AA 堆叠是 b-As 更稳定的形式,而 AB 是 w-As 最稳定的形式。DMC 计算的 b-As-AA 和 w-As-AB 的层间结合能分别为 30(1)和 53(1) meV/原子。通过 DMC 估计的层间分离分别为 3.521(1)Å 的 b-As-AA 和 3.145(1)Å 的 w-As-AB。DMC 和 DFT 结果的比较表明,范德华密度泛函方法给出的砷烯能量性质接近 DMC,而 DFT + D3 方法则很好地再现了 DMC 的几何性质。我们使用各种 DFT 方法研究了单层和双层砷烯的电子性质。带隙值随 DFT 方法的变化显著,但结果通常在定性上是一致的。我们希望本工作对未来尝试制备多层砷烯的实验以及对弱键合体系的 DFT 方法的进一步发展有用。