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Understanding the conductive channel evolution in Na:WO(3-x)-based planar devices. | LitMetric

AI Article Synopsis

  • The study focuses on ion migration in solid electrolytes, which is crucial for devices like batteries and fuel cells.
  • A planar sandwich structure is created by depositing tungsten oxide films on a substrate, allowing sodium ions (Na+) to diffuse into the films during the process.
  • The research visualizes Na+ migration, revealing changes in the film's geometry and resistance, and explains these changes through mechanical deformation and varying ion mobility, potentially enhancing ion control in functional devices.

Article Abstract

An ion migration process in a solid electrolyte is important for ion-based functional devices, such as fuel cells, batteries, electrochromics, gas sensors, and resistive switching systems. In this study, a planar sandwich structure is prepared by depositing tungsten oxide (WO(3-x)) films on a soda-lime glass substrate, from which Na(+) diffuses into the WO(3-x) films during the deposition. The entire process of Na(+) migration driven by an alternating electric field is visualized in the Na-doped WO(3-x) films in the form of conductive channel by in situ optical imaging combined with infrared spectroscopy and near-field imaging techniques. A reversible change of geometry between a parabolic and a bar channel is observed with the resistance change of the devices. The peculiar channel evolution is interpreted by a thermal-stress-induced mechanical deformation of the films and an asymmetric Na(+) mobility between the parabolic and the bar channels. These results exemplify a typical ion migration process driven by an alternating electric field in a solid electrolyte with a low ion mobility and are expected to be beneficial to improve the controllability of the ion migration in ion-based functional devices, such as resistive switching devices.

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Source
http://dx.doi.org/10.1039/c4nr07545eDOI Listing

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