Peng Qiong, Wang Zhenyu, Sa Baisheng, Wu Bo, Sun Zhimei
Multiscale Computational Materials Facility, College of Materials Science and Engineering, Fuzhou University, and Key Laboratory of Eco-materials Advanced Technology (Fuzhou University), Fujian Province University, Fuzhou 350100, P. R. China.
School of Materials Science and Engineering, and Center for Integrated Computational Materials Engineering, International Research Institute for Multidisciplinary Science, Beihang University, Beijing 100191, P. R. China.
Sci Rep. 2016 Aug 24;6:31994. doi: 10.1038/srep31994.
As a fast emerging topic, van der Waals (vdW) heterostructures have been proposed to modify two-dimensional layered materials with desired properties, thus greatly extending the applications of these materials. In this work, the stacking characteristics, electronic structures, band edge alignments, charge density distributions and optical properties of blue phosphorene/transition metal dichalcogenides (BlueP/TMDs) vdW heterostructures were systematically studied based on vdW corrected density functional theory. Interestingly, the valence band maximum and conduction band minimum are located in different parts of BlueP/MoSe2, BlueP/WS2 and BlueP/WSe2 heterostructures. The MoSe2, WS2 or WSe2 layer can be used as the electron donor and the BlueP layer can be used as the electron acceptor. We further found that the optical properties under visible-light irradiation of BlueP/TMDs vdW heterostructures are significantly improved. In particular, the predicted upper limit energy conversion efficiencies of BlueP/MoS2 and BlueP/MoSe2 heterostructures reach as large as 1.16% and 0.98%, respectively, suggesting their potential applications in efficient thin-film solar cells and optoelectronic devices.
作为一个快速兴起的研究课题,范德华(vdW)异质结构已被提出用于修饰具有所需特性的二维层状材料,从而极大地扩展了这些材料的应用。在这项工作中,基于范德华修正密度泛函理论,系统地研究了蓝色磷烯/过渡金属二硫属化物(BlueP/TMDs)范德华异质结构的堆叠特性、电子结构、带边对齐、电荷密度分布和光学性质。有趣的是,价带最大值和导带最小值位于BlueP/MoSe2、BlueP/WS2和BlueP/WSe2异质结构的不同部分。MoSe2、WS2或WSe2层可作为电子供体,而BlueP层可作为电子受体。我们进一步发现,BlueP/TMDs范德华异质结构在可见光照射下的光学性质得到了显著改善。特别是,预测的BlueP/MoS2和BlueP/MoSe2异质结构的上限能量转换效率分别高达1.16%和0.98%,表明它们在高效薄膜太阳能电池和光电器件中的潜在应用。