We demonstrate the design of a multifunctional organic layer by the rational combination of nanosized regions of two functional polymers. Instead of relying on a spontaneous and random phase separation process or on the tedious synthesis of block copolymers, the method involves the nanomolding of a first component, followed by the filling of the resulting open spaces by a second component. We apply this methodology to fabricate organic nonvolatile memory diodes of high density. These are built by first creating a regular array of ferroelectric nanodots by nanoimprint lithography, followed by the filling of the trenches separating the ferroelectric nanodots with a semiconducting polymer. The modulation of the current in the semiconductor by ...
Organic ferroelectric memory diodes are promising data storage devices for flexible electronics. The...
Ferroelectric poly(vinylidene fluoride-co-trifluoroethylene), P(VDF-TrFE), is increasingly used in o...
Today’s lithographic techniques for carving silicon into circuit patterns are unable to achieve the ...
We demonstrate the design of a multifunctional organic layer by the rational combination of nanosize...
\u3cp\u3eWe demonstrate the design of a multifunctional organic layer by the rational combination of...
Memory functionality is essential for many high-end electronic applications (e.g., smart phones, per...
This thesis addresses the possibility of using organic materials to make a nonvolatile memory device...
Ferroelectric polymer memory diodes are interface devices where charge injection into the organic se...
Organic ferroelectric resistive switches function by grace of nanoscale phase separation in a blend ...
\u3cp\u3eFerroelectric materials are important components of sensors, actuators and non-volatile mem...
Ferroelectric poly(vinylidene fluoride-co-trifluoroethylene), P(VDF-TrFE), is attracting renewed int...
Ferroelectric materials are important components of sensors, actuators and non-volatile memories. Ho...
Organic ferroelectric memory diodes are promising data storage devices for flexible electronics. The...
Ferroelectric poly(vinylidene fluoride-co-trifluoroethylene), P(VDF-TrFE), is increasingly used in o...
Today’s lithographic techniques for carving silicon into circuit patterns are unable to achieve the ...
We demonstrate the design of a multifunctional organic layer by the rational combination of nanosize...
\u3cp\u3eWe demonstrate the design of a multifunctional organic layer by the rational combination of...
Memory functionality is essential for many high-end electronic applications (e.g., smart phones, per...
This thesis addresses the possibility of using organic materials to make a nonvolatile memory device...
Ferroelectric polymer memory diodes are interface devices where charge injection into the organic se...
Organic ferroelectric resistive switches function by grace of nanoscale phase separation in a blend ...
\u3cp\u3eFerroelectric materials are important components of sensors, actuators and non-volatile mem...
Ferroelectric poly(vinylidene fluoride-co-trifluoroethylene), P(VDF-TrFE), is attracting renewed int...
Ferroelectric materials are important components of sensors, actuators and non-volatile memories. Ho...
Organic ferroelectric memory diodes are promising data storage devices for flexible electronics. The...
Ferroelectric poly(vinylidene fluoride-co-trifluoroethylene), P(VDF-TrFE), is increasingly used in o...
Today’s lithographic techniques for carving silicon into circuit patterns are unable to achieve the ...