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Enhanced flexoelectricity at reduced dimensions revealed by mechanically tunable quantum tunnelling.


ABSTRACT: Flexoelectricity is a universal electromechanical coupling effect whereby all dielectric materials polarise in response to strain gradients. In particular, nanoscale flexoelectricity promises exotic phenomena and functions, but reliable characterisation methods are required to unlock its potential. Here, we report anomalous mechanical control of quantum tunnelling that allows for characterising nanoscale flexoelectricity. By applying strain gradients with an atomic force microscope tip, we systematically polarise an ultrathin film of otherwise nonpolar SrTiO3, and simultaneously measure tunnel current across it. The measured tunnel current exhibits critical behaviour as a function of strain gradients, which manifests large modification of tunnel barrier profiles via flexoelectricity. Further analysis of this critical behaviour reveals significantly enhanced flexocoupling strength in ultrathin SrTiO3, compared to that in bulk, rendering flexoelectricity more potent at the nanoscale. Our study not only suggests possible applications exploiting dynamic mechanical control of quantum effect, but also paves the way to characterise nanoscale flexoelectricity.

SUBMITTER: Das S 

PROVIDER: S-EPMC6358620 | biostudies-literature | 2019 Feb

REPOSITORIES: biostudies-literature

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Enhanced flexoelectricity at reduced dimensions revealed by mechanically tunable quantum tunnelling.

Das Saikat S   Wang Bo B   Paudel Tula R TR   Park Sung Min SM   Tsymbal Evgeny Y EY   Chen Long-Qing LQ   Lee Daesu D   Noh Tae Won TW  

Nature communications 20190201 1


Flexoelectricity is a universal electromechanical coupling effect whereby all dielectric materials polarise in response to strain gradients. In particular, nanoscale flexoelectricity promises exotic phenomena and functions, but reliable characterisation methods are required to unlock its potential. Here, we report anomalous mechanical control of quantum tunnelling that allows for characterising nanoscale flexoelectricity. By applying strain gradients with an atomic force microscope tip, we syste  ...[more]

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