Issue 110, 2016

NiO/ZnO p–n heterostructures and their gas sensing properties for reduced operating temperature

Abstract

NiO/ZnO p–n heterostructures were successfully synthesized by using a hydrothermal method followed by calcination. The morphology of the NiO/ZnO p–n heterostructures could be controlled by the amount of Ni concentration, with 10% Ni the optimum content. The structural features of the NiO/ZnO p–n heterostructures were characterized in detail by X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM) and X-ray photoelectron spectroscopy (XPS). Additionally, direct current (DC) IV curves of the NiO/ZnO p–n heterostructures showed diode-like behavior, which is indirect evidence demonstrating that p–n heterojunctions were formed between NiO and ZnO. The 10% NiO/ZnO heterostructures gas sensor exhibited a good gas response, fast response/recovery times and long-term stability to ethanol vapor even at 200 °C, the reduced operating temperature was much lower than for pure ZnO. The decline of the operating temperature was attributed to the formation of p–n heterojunctions. Meanwhile, a possible gas sensing mechanism is illustrated by the calculated energy band positions of the NiO/ZnO p–n heterostructures and alternating current (AC) impedance spectra.

Graphical abstract: NiO/ZnO p–n heterostructures and their gas sensing properties for reduced operating temperature

Supplementary files

Article information

Article type
Paper
Submitted
02 Aug 2016
Accepted
28 Oct 2016
First published
31 Oct 2016

RSC Adv., 2016,6, 109091-109098

NiO/ZnO p–n heterostructures and their gas sensing properties for reduced operating temperature

H. Tian, H. Fan, G. Dong, L. Ma and J. Ma, RSC Adv., 2016, 6, 109091 DOI: 10.1039/C6RA19520B

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