The Morphology and Optical Properties of ZnO Nanorods Grown on MoS2 Thin Films at Various Thicknesses Using a Chemical Bath Deposition Method

MoS 2 thin films and ZnO nanorods were prepared by chemical bath deposition on glass substrates to form ZnO nanorod/MoS 2 thin film heterostructures. The morphological, structural and optical properties of ZnO nanorods grown on MoS 2 thin films were investigated through scanning electron microscopy...

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Veröffentlicht in:Journal of electronic materials 2018-10, Vol.47 (10), p.6302-6310
Hauptverfasser: Thi, Kieu Loan Phan, Nguyen, Lam Thanh, Ke, Nguyen Huu, Tuan, Dao Anh, Le, Thi Quynh Anh, Hung, Le Vu Tuan
Format: Artikel
Sprache:eng
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Zusammenfassung:MoS 2 thin films and ZnO nanorods were prepared by chemical bath deposition on glass substrates to form ZnO nanorod/MoS 2 thin film heterostructures. The morphological, structural and optical properties of ZnO nanorods grown on MoS 2 thin films were investigated through scanning electron microscopy (SEM), x-ray diffraction (XRD), Raman spectroscopy, ultraviolet–visible (UV–Vis) and photoluminescence spectroscopy, respectively. The SEM images and XRD patterns revealed that ZnO nanorods exhibited a hexagonal wurtzite structure with preferred c -axis orientation, a good crystallinity and covered the entire surface of MoS 2 thin films. Furthermore, ZnO nanorods were successfully grown on MoS 2 thin films without affecting the crystal structure of 2H-MoS 2 which was demonstrated through two typical peaks of 380 cm −1 and 410 cm −1 in Raman spectra. Notably, the combination of ZnO nanorods and MoS 2 thin films (ZnO nanorod/MoS 2 thin film heterostructures) revealed a significant increase of absorption in the wavelength range of 350–800 nm characterized by UV–Vis spectroscopy. In addition, ZnO nanorod/MoS 2 thin film heterostructures also showed a significant decrease of the intensity of photoluminescence emission.
ISSN:0361-5235
1543-186X
DOI:10.1007/s11664-018-6536-7