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.
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CITATION STYLE
Das, S., Wang, B., Cao, Y., Rae Cho, M., Jae Shin, Y., Yang, S. M., … Noh, T. W. (2017). Controlled manipulation of oxygen vacancies using nanoscale flexoelectricity. Nature Communications , 8(1). https://doi.org/10.1038/s41467-017-00710-5
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