Nanoscale organic ferroelectric resistive switches

Organic ferroelectric resistive switches function by grace of nanoscale phase separation in a blend of a semiconducting and a ferroelectric polymer that is sandwiched between metallic electrodes. In this work, various scanning probe techniques are combined with numerical modeling to unravel their op...

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Hauptverfasser: Khikhlovskyi, Vsevolod (VerfasserIn) , Wang, Rui (VerfasserIn) , Breemen, Albert J. J. M. van (VerfasserIn) , Gelinck, Gerwin (VerfasserIn) , Janssen, René A. J. (VerfasserIn) , Kemerink, Martijn (VerfasserIn)
Dokumenttyp: Article (Journal)
Sprache:Englisch
Veröffentlicht: January 23, 2014
In: The journal of physical chemistry. C, Energy, materials, and catalysis
Year: 2014, Jahrgang: 118, Heft: 6, Pages: 3305-3312
ISSN:1932-7455
DOI:10.1021/jp409757m
Online-Zugang:Verlag, Volltext: https://doi.org/10.1021/jp409757m
Volltext
Verfasserangaben:Vsevolod Khikhlovskyi, Rui Wang, Albert J.J.M. van Breemen, Gerwin H. Gelinck, René A.J. Janssen, and Martijn Kemerink

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520 |a Organic ferroelectric resistive switches function by grace of nanoscale phase separation in a blend of a semiconducting and a ferroelectric polymer that is sandwiched between metallic electrodes. In this work, various scanning probe techniques are combined with numerical modeling to unravel their operational mechanism. Resistive switching is shown to result from modulation of the charge injection barrier at the semiconductor-electrode interfaces. The modulation is driven by the stray field of the polarization charges in the ferroelectric phase and consequently is restricted to regions where semiconductor and ferroelectric phases exist in close vicinity. Since each semiconductor domain can individually be switched and read out, a novel, nanoscale memory element is demonstrated. An ultimate information density of ∼30 Mb/cm2 is estimated for this bottom-up defined memory device. 
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