| Literature DB >> 29019925 |
Van Hoang Luan1, Huynh Ngoc Tien2, Seung Hyun Hur3, Jong Hun Han4, Wonoh Lee5.
Abstract
Nickel oxide has been widely used in chemical sensing applications, because it has an excellent p-type semiconducting property with high chemical stability. Here, we present a novel technique of fabricating three-dimensional porous nitrogen-doped nickel oxide nanosheets as a highly sensitive NO₂ sensor. The elaborate nanostructure was prepared by a simple and effective hydrothermal synthesis method. Subsequently, nitrogen doping was achieved by thermal treatment with ammonia gas. When the p-type dopant, i.e., nitrogen atoms, was introduced in the three-dimensional nanostructures, the nickel-oxide-nanosheet-based sensor showed considerable NO₂ sensing ability with two-fold higher responsivity and sensitivity compared to non-doped nickel-oxide-based sensors.Entities:
Keywords: NO2 gas sensor; nickel oxide; nitrogen doping; porous nanostructure; sensor
Year: 2017 PMID: 29019925 PMCID: PMC5666478 DOI: 10.3390/nano7100313
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1A schematic illustration and a top-view image of a three-dimensional porous N-doped NO2 gas sensor based on NiO nanosheets (NSs).
Figure 2SEM images of (a) the three-dimensional nanostructure of N-doped NiO NSs and (b) its magnified image.
Figure 3EDS mapping images of N-doped NiO NSs (scale bar = 4 μm).
Figure 4XRD results of N-doped and non-doped NiO NSs.
Structural crystal parameters of N-doped and non-doped NiO NSs.
| Sample | ||
|---|---|---|
| N-doped NiO | 0.65 ± 0.02 | 26.3 ± 0.8 |
| Non-doped NiO | 1.42 ± 0.05 | 12.0 ± 0.5 |
Figure 5XPS spectra of N-doped and non-doped NiO NSs: (a) wide scan spectra and (b) N 1s spectra of N-doped NiO with deconvoluted peaks.
Figure 6NO2 sensing performance of N-doped and non-doped NiO NSs: (a) responsivity to various gas concentrations and (b) sensitivity plots.
Figure 7(a) Repetitive and (b) saturate responses of the N-doped NiO-NS-based NO2 sensors.