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Controlled manipulation of oxygen vacancies using nanoscale flexoelectricity.


ABSTRACT: Oxygen vacancies, especially their distribution, are directly coupled to the electromagnetic properties of oxides and related emergent functionalities that have implications for device applications. Here using a homoepitaxial strontium titanate thin film, we demonstrate a controlled manipulation of the oxygen vacancy distribution using the mechanical force from a scanning probe microscope tip. By combining Kelvin probe force microscopy imaging and phase-field simulations, we show that oxygen vacancies can move under a stress-gradient-induced depolarisation field. When tailored, this nanoscale flexoelectric effect enables a controlled spatial modulation. In motion, the scanning probe tip thereby deterministically reconfigures the spatial distribution of vacancies. The ability to locally manipulate oxygen vacancies on-demand provides a tool for the exploration of mesoscale quantum phenomena and engineering multifunctional oxide devices.The properties of complex oxides such as strontium titanate are strongly affected by the presence and distribution of oxygen vacancies. Here, the authors demonstrate that a scanning probe microscope tip can be used to manipulate vacancies by the flexoelectric effect.

SUBMITTER: Das S 

PROVIDER: S-EPMC5607007 | biostudies-other | 2017 Sep

REPOSITORIES: biostudies-other

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Controlled manipulation of oxygen vacancies using nanoscale flexoelectricity.

Das Saikat S   Wang Bo B   Cao Ye Y   Rae Cho Myung M   Jae Shin Yeong Y   Mo Yang Sang S   Wang Lingfei L   Kim Minu M   Kalinin Sergei V SV   Chen Long-Qing LQ   Noh Tae Won TW  

Nature communications 20170920 1


Oxygen vacancies, especially their distribution, are directly coupled to the electromagnetic properties of oxides and related emergent functionalities that have implications for device applications. Here using a homoepitaxial strontium titanate thin film, we demonstrate a controlled manipulation of the oxygen vacancy distribution using the mechanical force from a scanning probe microscope tip. By combining Kelvin probe force microscopy imaging and phase-field simulations, we show that oxygen vac  ...[more]

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