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| For an n-type oxide semiconductor, intrinsic oxygen vacancies are responsible for its electronic conductivity. The adsorption of oxidative gas species will creates extrinsic surface acceptor states that repel conduction band electrons, which results in lower conductivity, while reductive gas will cause reverse result. Therefore, the gases can be detected through monitoring the change of electronic conduction. Most of the present effort is being contributed to the improvement of sensitivity, selectivity, and long term stability of gas sensors. For a high sensitivity (i.e. great change in conductivity) and a fast response rate, the sensing material should exhibit large surface areas, and allow for good accessibility of the sensing material surface. To fulfill these requirements for gas sensors, one method is to decrease the size of sensor material, or to prepare porous structure for increasing the surface-to-volume ratio. Another route is to design and synthesize the nanostructure of sensing material exposing unique lattice planes [4], which would have stronger or selective absorption ability for detecting gases. |
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