PbI2-MoS2 Heterojunction: van der Waals Epitaxial Growth and Energy Band Alignment.
Junting XiaoJinxin LiuKuanglv SunYuan ZhaoZiyi ShaoXiaoliang LiuYongbo YuanYouzhen LiHaipeng XieFei SongYongli GaoHan HuangPublished in: The journal of physical chemistry letters (2019)
van der Waals (vdW) epitaxy offers a promising strategy without lattice and processing constraints to prepare atomically clean and electronically sharp interfaces for fundamental studies and electronic device demonstrations. Herein, PbI2 was thermally deposited at high-vacuum conditions onto CVD-grown monolayer MoS2 flakes in a vdW epitaxial manner to form 3D-2D heterojunctions, which are promising for vdW epitaxial growth of perovskite films. X-ray diffraction, X-ray photoemission spectroscopy, Raman, and atomic force microscopy measurements reveal the structural properties of the high-quality heterojunctions. Photoluminescence (PL) measurements reveal that the PL emissions from the bottom MoS2 flakes are greatly quenched compared to their as-grown counterparts, which can be ascribed to the band alignment-induced distinct interfacial charge-transfer behaviors. Strong interlayer excitons can be detected at the PbI2/MoS2 interface, indicating an effective type II band alignment, which can be further confirmed by ultraviolet photoemission spectroscopy measurements. The results provide a new material platform for the application of the vdW heterojunctions in electronic and optoelectronic devices.
Keyphrases
- room temperature
- quantum dots
- perovskite solar cells
- high resolution
- atomic force microscopy
- single molecule
- visible light
- ionic liquid
- reduced graphene oxide
- genome wide
- high speed
- solar cells
- single cell
- highly efficient
- transition metal
- electron microscopy
- energy transfer
- diabetic rats
- light emitting
- high glucose
- oxidative stress
- magnetic resonance
- mass spectrometry
- gene expression
- dna methylation
- raman spectroscopy
- gold nanoparticles
- crystal structure