Wang Haidi, Li Xingxing, Liu Zhao, Yang Jinlong
Hefei National Laboratory for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui 230026, China.
Phys Chem Chem Phys. 2017 Jan 18;19(3):2402-2408. doi: 10.1039/c6cp07944j.
Based on the crystal structure prediction, we propose a new allotrope of phosphorene, ψ-phosphorene (ψ-P), with a porous structure, which is both thermally and dynamically stable in comparison with the previously reported allotropes. Due to its unique atom configuration, ψ-P has highly orientation-dependent mechanical properties and excellent flexibility. Calculations using the HSE functional predict that ψ-P is semiconducting with an indirect band gap of 1.57 eV and possesses anisotropic transport properties. Particularly, the electron mobility along the x-direction is up to 1.3 × 10 cm V s, which is comparable with that of black phosphorene. Considering its intrinsic porous structure, the performance of monolayer ψ-P as a gas purification membrane was investigated. The calculation demonstrates that ψ-P could be used for hydrogen purification from the mixture of CH, CO, N, CO, and H with high selectivity. Furthermore, combining a suitable band gap with high carrier mobility, a MoSe/ψ-P van der Waals heterojunction is predicted to be a good solar cell material, whose power conversion efficiency is estimated up to 20.26%. Finally, we demonstrated that the Au(110) surface could be a suitable substrate for the synthesis of ψ-P.
基于晶体结构预测,我们提出了一种具有多孔结构的新型磷烯同素异形体——ψ-磷烯(ψ-P),与先前报道的同素异形体相比,它在热稳定性和动力学稳定性方面都表现出色。由于其独特的原子构型,ψ-P具有高度依赖取向的机械性能和出色的柔韧性。使用HSE泛函进行的计算预测,ψ-P是一种半导体,间接带隙为1.57 eV,并且具有各向异性的输运性质。特别地,沿x方向的电子迁移率高达1.3×10 cm²V⁻¹s⁻¹,与黑磷烯相当。考虑到其固有的多孔结构,我们研究了单层ψ-P作为气体净化膜的性能。计算表明,ψ-P可用于从CH₄、CO₂、N₂、CO和H₂的混合物中高选择性地净化氢气。此外,结合合适的带隙和高载流子迁移率,预测MoSe₂/ψ-P范德华异质结是一种良好的太阳能电池材料,其功率转换效率估计高达20.26%。最后,我们证明了Au(110)表面可能是合成ψ-P的合适衬底。