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<dc:title xml:lang="fr">Dispositifs électroniques multifonctionnels à base organique : utilisation d'un mélange organique bi-composant pour des mémoires non volatiles</dc:title>
<dcterms:alternative xml:lang="en">Multifunctional organic based electronic devices : use of a two-component organic blend for non-volatile memories</dcterms:alternative>
<dc:subject xml:lang="fr">OFET</dc:subject>
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<dc:subject xml:lang="fr">Ferroélectricité</dc:subject>
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<dc:subject xml:lang="en">Photochromism</dc:subject>
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<dcterms:abstract xml:lang="en">N this thesis, the functionality of solution-processed OFETs has been enhanced with the development of a multi-component blend incorporating photochromic molecules in a semiconducting polymer. The correlation between morphology and opto-electronic performances is investigated by varying molecular weight and regioregularity of the conjugated polymer as well as the temperature of thermal annealing in thin films. The best compromise between field-effect mobility (µ) and switching capabilities was observed in blends containing RR- P3HT with Mw=50 kDa. Leveraging these results, we demonstrate that fast and robust optical, multi-level, non-volatile memory operations can be achieved in a multifunctional optically switchable ferroelectric organic FET (OSFeFET) based on P(VDF-TrFE). In such device, information writing into the memory cell can be done independently by either using UV light irradiation or gate voltage sweeps, while the readout of the stored information is carried out by measuring the output drain current. Such a proof-of-concept paves the way towards enhanced functional complexity in opto-electronics via the interfacing of multiple components in a single device, in fully integrated low-cost technology compatible with flexible substrates.</dcterms:abstract>
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