Jiang Yuncai, Lei Shuangying, Wang Mingyuan
Key Laboratory of MEMS of Ministry of Education, School of Integrated Circuits, Southeast University, 210096 Nanjing, China.
ACS Appl Mater Interfaces. 2024 Jun 12;16(23):30521-30533. doi: 10.1021/acsami.4c03567. Epub 2024 May 29.
Monolayer molybdenum disulfide (MoS) with a suitable direct band gap and strong optical absorption is very attractive for utilization in solar cells and photocatalytic water splitting. Nevertheless, the broader utilization of MoS is impeded by its low carrier mobility and limited responsiveness to infrared light. To overcome these challenges, we constructed a variety of stackings for the boron phosphide (BP)/MoS van der Waals heterostructure (vdWH), all of which display S-scheme band alignments except for the AC' stacking. The constituent BP monolayer has superior carrier mobility and strong infrared and visible light response, which makes up for the shortcomings of MoS. The study revealed that the AB stacking exhibits a remarkable power conversion efficiency of 22.27%, indicating its significant application prospect in solar cells. Additionally, the AB stacking also exhibits a promising application prospect in photocatalytic water splitting due to its suitable band structure, S-scheme band alignment, strong optical adsorption characteristic, high solar-to-hydrogen efficiency, and robust built-in electric field. Meanwhile, applying uniaxial tensile strains along the -axis direction is more beneficial for photocatalytic water splitting. Hence, the AB-stacked BP/MoS vdWH shows significant potential for use in both solar cells and photocatalytic water splitting. This work paves the way for exploring the application of S-scheme heterostructures in solar energy conversion systems.
具有合适直接带隙和强光吸收特性的单层二硫化钼(MoS)在太阳能电池和光催化水分解领域具有很大吸引力。然而,MoS的低载流子迁移率和对红外光的有限响应阻碍了其更广泛的应用。为克服这些挑战,我们构建了多种磷化硼(BP)/MoS范德华异质结构(vdWH)的堆叠结构,除AC'堆叠外,所有结构均呈现S型能带排列。组成部分BP单层具有优异的载流子迁移率以及对红外光和可见光的强烈响应,弥补了MoS的不足。研究表明,AB堆叠结构展现出22.27%的显著功率转换效率,表明其在太阳能电池领域具有重要应用前景。此外,AB堆叠结构因其合适的能带结构、S型能带排列、强光吸附特性、高太阳能制氢效率和强大的内建电场,在光催化水分解方面也展现出广阔的应用前景。同时,沿 -轴方向施加单轴拉伸应变对光催化水分解更有利。因此,AB堆叠的BP/MoS vdWH在太阳能电池和光催化水分解领域均显示出巨大的应用潜力。这项工作为探索S型异质结构在太阳能转换系统中的应用铺平了道路。