Colossal flexoresistance in dielectrics
In: Nature Communications Nature Communications, Jg. 11 (2020), Heft 1, S. 1-8
Online
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Zugriff:
Dielectrics have long been considered as unsuitable for pure electrical switches; under weak electric fields, they show extremely low conductivity, whereas under strong fields, they suffer from irreversible damage. Here, we show that flexoelectricity enables damage-free exposure of dielectrics to strong electric fields, leading to reversible switching between electrical states—insulating and conducting. Applying strain gradients with an atomic force microscope tip polarizes an ultrathin film of an archetypal dielectric SrTiO3 via flexoelectricity, which in turn generates non-destructive, strong electrostatic fields. When the applied strain gradient exceeds a certain value, SrTiO3 suddenly becomes highly conductive, yielding at least around a 108-fold decrease in room-temperature resistivity. We explain this phenomenon, which we call the colossal flexoresistance, based on the abrupt increase in the tunneling conductance of ultrathin SrTiO3 under strain gradients. Our work extends the scope of electrical control in solids, and inspires further exploration of dielectric responses to strong electromechanical fields.
Manipulating the electric state of large band gap dielectrics without any damage is quite challenging. Here, the authors demonstrate by mechanically introducing strain gradients that large electric fields are generated via flexoelectric interactions, resulting in a reversible Zener breakdown in SrTiO3, changing the resistivity by 108.
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Colossal flexoresistance in dielectrics
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Autor/in / Beteiligte Person: | Han Gyeol Lee ; Long Qing Chen ; Wang, Bo ; Suh, Dongseok ; Tae Won Noh ; Park, Sungmin ; Park, Nahee ; Tsymbal, Evgeny Y. ; Das, Saikat ; Tao, Lingling ; Se Young Park ; Lee, Daesu ; Paudel, Tula R. ; Jeong Rae Kim ; Eun Kyo Ko |
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Zeitschrift: | Nature Communications Nature Communications, Jg. 11 (2020), Heft 1, S. 1-8 |
Veröffentlichung: | Nature Publishing Group UK, 2020 |
Medientyp: | unknown |
ISSN: | 2041-1723 (print) |
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