Ultrathin Single-Crystalline CdTe Nanosheets Realized via Van der Waals Epitaxy.
Ruiqing ChengYao WenLei YinFengmei WangFeng WangKaili LiuTofik Ahmed ShifaJie LiChao JiangZhenxing WangJun HePublished in: Advanced materials (Deerfield Beach, Fla.) (2017)
Due to the novel physical properties, high flexibility, and strong compatibility with Si-based electronic techniques, 2D nonlayered structures have become one of the hottest topics. However, the realization of 2D structures from nonlayered crystals is still a critical challenge, which requires breaking the bulk crystal symmetry and guaranteeing the highly anisotropic crystal growth. CdTe owns a typical wurtzite crystal structure, which hinders the 2D anisotropic growth of hexagonal-symmetry CdTe. Here, for the first time, the 2D anisotropic growth of ultrathin nonlayered CdTe as thin as 4.8 nm via an effective van der Waals epitaxy method is demonstrated. The anisotropic ratio exceeds 103 . Highly crystalline nanosheets with uniform thickness and large lateral dimensions are obtained. The in situ fabricated ultrathin 2D CdTe photodetector shows ultralow dark current (≈100 fA), as well as high detectivity, stable photoswitching, and fast photoresponse speed (τrising = 18.4 ms, τdecay = 14.7 ms). Besides, benefitting from its 2D planar geometry, CdTe nanosheet exhibits high compatibility with flexible substrates and traditional microfabrication techniques, indicating its significant potential in the applications of flexible electronic and optoelectronic devices.
Keyphrases
- quantum dots
- room temperature
- crystal structure
- molecularly imprinted
- multiple sclerosis
- mass spectrometry
- metal organic framework
- finite element
- high efficiency
- mental health
- solid state
- optical coherence tomography
- photodynamic therapy
- climate change
- liquid chromatography
- tandem mass spectrometry
- solid phase extraction