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      Comparison of the gas sensing performance of SnO2 thin film and SnO2 nanowire sensors

      , , , , , ,
      Sensors and Actuators B: Chemical
      Elsevier BV

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          Metal Oxide Gas Sensors: Sensitivity and Influencing Factors

          Conductometric semiconducting metal oxide gas sensors have been widely used and investigated in the detection of gases. Investigations have indicated that the gas sensing process is strongly related to surface reactions, so one of the important parameters of gas sensors, the sensitivity of the metal oxide based materials, will change with the factors influencing the surface reactions, such as chemical components, surface-modification and microstructures of sensing layers, temperature and humidity. In this brief review, attention will be focused on changes of sensitivity of conductometric semiconducting metal oxide gas sensors due to the five factors mentioned above.
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            Metal oxides for solid-state gas sensors: What determines our choice?

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              Enhanced gas sensing by individual SnO2 nanowires and nanobelts functionalized with Pd catalyst particles.

              The sensing ability of individual SnO(2) nanowires and nanobelts configured as gas sensors was measured before and after functionalization with Pd catalyst particles. In situ deposition of Pd in the same reaction chamber in which the sensing measurements were carried out ensured that the observed modification in behavior was due to the Pd functionalization rather than the variation in properties from one nanowire to another. Changes in the conductance in the early stages of metal deposition (i.e., before metal percolation) indicated that the Pd nanoparticles on the nanowire surface created Schottky barrier-type junctions resulting in the formation of electron depletion regions within the nanowire, constricting the effective conduction channel and reducing the conductance. Pd-functionalized nanostructures exhibited a dramatic improvement in sensitivity toward oxygen and hydrogen due to the enhanced catalytic dissociation of the molecular adsorbate on the Pd nanoparticle surfaces and the subsequent diffusion of the resultant atomic species to the oxide surface.
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                Author and article information

                Journal
                Sensors and Actuators B: Chemical
                Sensors and Actuators B: Chemical
                Elsevier BV
                09254005
                April 2012
                April 2012
                : 165
                : 1
                : 110-118
                Article
                10.1016/j.snb.2012.02.025
                f5620a78-e469-48e6-87cb-db3f6cbe87e0
                © 2012

                http://www.elsevier.com/tdm/userlicense/1.0/

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