You Bingying, Xu Zheyuan, Yang Junqiang, Jiang Xingxing, Li Yanfang, Shao Gonglei, Jin Yuanyuan, Xiang Haiyan, Jiang Huili, Liu Xiaochi, Sun Jian, Feng Yexing, Jiang Ying, Pan Anlian, Liu Song
State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha, 410082, P. R. China.
Photonics Research Group, Ghent University-imec, Ghent, 9000, Belgium.
Small. 2024 Jan;20(3):e2304010. doi: 10.1002/smll.202304010. Epub 2023 Sep 19.
Van der Waals (vdW) heterostructures are composed of atomically thin layers assembled through weak (vdW) force, which have opened a new era for integrating materials with distinct properties and specific applications. However, few studies have focused on whether and how anisotropic materials affect heterostructure system. The study introduces anisotropic and isotropic materials in a heterojunction system to change the in-plane symmetry, offering a new degree of freedom for modulating its properties. The sample is fabricated by manually stacking ReS and WS flakes prepared by mechanical exfoliation. Raman spectra and photoluminescence measurements confirm the formation of an effective heterojunction, indicating interlayer coupling of the system. The anisotropy and asymmetry of the WS -ReS heterostructure system can be adjusted by the introduction of isotropic WS and anisotropic ReS , which can be proved by the change of the polarized Raman pattern. In the transient absorption measurement, the transient absorption spectra of WS -ReS heterostructure are red-shifted compared to those of WS monolayer, and the charge transfer is observed in the heterostructure. These results show the potential of anisotropic 2D materials in anisotropy modulation of heterostructures, which may promote future electronic or photonic application.
范德华(vdW)异质结构由通过弱(范德华)力组装的原子级薄层组成,这为集成具有不同特性和特定应用的材料开启了一个新时代。然而,很少有研究关注各向异性材料是否以及如何影响异质结构系统。该研究在异质结系统中引入各向异性和各向同性材料以改变面内对称性,为调制其特性提供了新的自由度。样品通过手动堆叠由机械剥离制备的ReS和WS薄片制成。拉曼光谱和光致发光测量证实了有效异质结的形成,表明系统的层间耦合。WS - ReS异质结构系统的各向异性和不对称性可以通过引入各向同性的WS和各向异性的ReS来调节,这可以通过偏振拉曼图案的变化得到证明。在瞬态吸收测量中,WS - ReS异质结构的瞬态吸收光谱相对于WS单层的瞬态吸收光谱发生红移,并且在异质结构中观察到电荷转移。这些结果表明各向异性二维材料在异质结构各向异性调制中的潜力,这可能会促进未来的电子或光子应用。