| Literature DB >> 28347032 |
Ali Mirzaei1, Kamal Janghorban2, Babak Hashemi3, Anna Bonavita4, Maryam Bonyani5,6, Salvatore Gianluca Leonardi7, Giovanni Neri8.
Abstract
Ag@α-Fe₂O₃ nanoEntities:
Keywords: Ag@α-Fe2O3; core–shell; ethanol; gas sensor; nanocomposite; synthesis
Year: 2015 PMID: 28347032 PMCID: PMC5312912 DOI: 10.3390/nano5020737
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Scanning electron microscopy (SEM) micrograph showing the morphology of Ag@α-Fe2O3 composite. In the inset are shown one single agglomerate and the energy-dispersive X-ray spectrum (EDX) spectrum.
Figure 2EDX elemental mapping showing the spatial distribution of Ag, Fe and O elements on the surface of the Ag@α-Fe2O3 nanocomposite agglomerate showed in the SEM image.
Figure 3Transmission electron microscopy (TEM) images of: (a) and (b) Ag@α-Fe2O3 composite; (c) α-Fe2O3.
Figure 4UV-Vis spectra of Ag nanoparticles and Ag@α-Fe2O3 core–shell nanocomposites.
Figure 5Schematic mechanism for the formation of core@shell structured Ag@α-Fe2O3.
Figure 6Sensing response of Ag@α-Fe2O3 towards different concentrations of ethanol vapor at 250 °C.
Figure 7(a) Sensing response of Ag@α-Fe2O3 and α-Fe2O3 towards different concentrations of ethanol vapor at 250 °C; (b) Linear relationship of log S-log C for Ag@α-Fe2O3 and α-Fe2O3 sensors.
Figure 8(a) Response and recovery times for Ag@α-Fe2O3 sensor; (b) Response of Ag@α-Fe2O3 and α-Fe2O3 sensors towards 12.5 ppm ethanol at 250 °C.
Figure 9Normalized response of Ag@α-Fe2O3 and α-Fe2O3 sensors at 250 °C. In the inset, the response to some reducing gases is magnified.
Figure 10Possible ethanol sensing mechanism by Ag@α-Fe2O3 core–shell nanocomposites (according to [4,21]).
Figure 11Schematic representation of synthesis procedure of Ag@Fe2O3 core-shell nanoparticles.