H10K10/464

Fused polycyclic heteroaromatic compound and organic thin film and electronic device

A fused polycyclic heteroaromatic compound represented by Chemical Formula 1, and an organic thin film, an organic thin film transistor, and an electronic device including the fused polycyclic heteroaromatic compound are provided. The fused polycyclic heteroaromatic compound may have a conjugation structure but reinforce planarity among adjacent rings and have further dense packing and thus much increase charge mobility.

Method for Manufacturing an Electronic Device, Particularly a Device Made of Carbon Nanotubes

The invention relates to a method for manufacturing an electronic device, particularly a device including a flexible and/or low-cost substrate and/or carbon nanotubes, and also relates to electronic devices produced using said method. The method for manufacturing an electronic device, including a substrate mad of a material M and an active semiconductor material layer (3), includes the following steps: a) providing a carrier (10) made of an alkali metal salt or alkaline earth metal salt, preferably sodium chloride (NaCl) or potassium chloride (KCl); optionally, b) depositing a dielectric material layer (2) onto one surface of the carrier; c) forming an active semiconductor material layer (3) on one surface of the carrier when Step b) is not implemented or on the free surface of the layer when Step b) is implemented; d) forming different components of the electronic device on and/or under the layer; e) depositing a protective layer onto the layer stack, obtained in Step d), of the different components of the electronic device, said protective layer being made of the material M required for the substrate (1); and f) removing the carrier (10) by dissolving one or more of the components of said electronic device on a substrate different from the substrate (1). In said removal of the carrier, the method does not include any step for manufacturing one or more of the components of said electronic device on a substrate different from the substrate (1). The invention is of use in the field of electronics in particular.

FABRICATION OF NANOMATERIAL T-GATE TRANSISTORS WITH CHARGE TRANSFER DOPING LAYER
20170244055 · 2017-08-24 ·

A field effect transistor including a dielectric layer on a substrate, a nano-structure material (NSM) layer on the dielectric layer, a source electrode and a drain electrode formed on the NSM layer, a gate dielectric formed on at least a portion of the NSM layer between the source electrode and the drain electrode, a T-shaped gate electrode formed between the source electrode and the drain electrode, where the NSM layer forms a channel of the FET, and a doping layer on the NSM layer extending at least from the sidewall of the source electrode to a first sidewall of the gate dielectric, and from a sidewall of the drain electrode to a second sidewall of the gate dielectric.

Organic field-effect transistor

An organic transistor including at least one lower substrate made of plastic material, two electrodes, respectively a source electrode and a drain electrode, deposited on the plastic substrate, a semiconductor layer made of an organic semiconductor material and deposited on the electrodes and the plastic substrate, a dielectric layer deposited on the semiconductor layer, and a gate electrode formed on said dielectric layer. It further includes a porous layer extending between the plastic substrate and the semiconductor layer, said porous layer extending at least between the source and drain electrodes, to decrease the dielectric constant of the surface of said plastic substrate.

ORGANIC THIN FILM TRANSISTOR AND A MANUFACTURING METHOD OF THE SAME
20170237028 · 2017-08-17 ·

An organic thin film transistor (OTFT) is disclosed herein. The OTFT has a substrate, a data line, a transfer pad, a source electrode, a drain electrode, an active pattern, a first insulating layer, a gate electrode, a second insulating layer, and a transparent electrode. The data line and the transfer pad are disposed on the substrate. The source electrode and the drain electrode are disposed on the substrate, the data line, and the transfer pad. The active pattern is disposed on the data line, the transfer pad, the substrate, the source electrode, and the drain electrode. With the disposition of the active pattern on the source electrode and the drain electrode, the source electrode and the drain electrode are free from the bombardment of the plasma.

Bonding P-Type and N-Type Sheets to Form Complementary Circuits
20170236874 · 2017-08-17 ·

A method for fabricating at least a portion of a complementary circuit, such as a complementary inverter circuit, includes fabricating a first sheet and a second sheet. Each of the sheets includes metal layers, a dielectric layer, and a semiconductor channel layer, configured so as to form a plurality of transistors of a respective polarity (i.e., P-type for one sheet, N-type for the other). The method also includes placing a layer of conductive material, such as anisotropic conducting glue (ACG) or anisotropic conducting foil (ACF), on the first sheet, and bonding at least a portion of the second sheet to the first sheet such that the conductive material is disposed between and in contact with the top-most metal layers of the first and second sheets. Separately fabricating the two sheets of different polarity may improve yields and/or decrease costs as compared to fabricating both polarities on a single substrate.

Transistor manufacturing method and transistor

A transistor manufacturing method includes: forming a first insulator layer of which formation material is a fluorine-containing resin, on a substrate having a source electrode, a drain electrode, and a semiconductor layer so as to cover the semiconductor layer; forming a second insulator layer so as to cover the first insulator layer; forming a base film on at least part of a surface of the second insulator layer; and after depositing a metal which is an electroless plating catalyst on a surface of the base film, forming a gate electrode on the surface of the base film by electroless plating, wherein the forming of the base film is performed by applying a liquid substance which is a formation material of the base film to the surface of the second insulator layer, and the second insulator layer has a higher lyophilic property with respect to the liquid substance than the first insulator layer.

ORGANIC TFT ARRAY INSPECTION DEVICE AND METHOD

To provide an inspection device and an inspection method which are capable of detecting a disconnection defect in an organic TFT array and/or evaluating a variation in the output properties and response speed of each organic TFT element. There are provided a device and a method of optically measuring the presence or absence of the accumulation of carriers in an organic semiconductor thin film which provides a channel layer of an organic TFT element. A source and a drain in each organic TFT are short-circuited to each other, a voltage is turned on and turned off in a predetermined period between this and a gate, and images before and after application of the voltage are captured in synchronization with the predetermined period while radiating monochromatic light, to obtain a differential image.

ORGANIC SEMICONDUCTOR ELEMENT, MANUFACTURING METHOD THEREOF, COMPOUND, COMPOSITION FOR FORMING ORGANIC SEMICONDUCTOR FILM, AND ORGANIC SEMICONDUCTOR FILM
20170229655 · 2017-08-10 ·

An object of the invention is to provide an organic semiconductor element having high mobility and excellent temporal stability under high humidity, and a manufacturing method thereof. Another object is to provide a novel compound suitable for an organic semiconductor. Still another object is to provide an organic semiconductor film having high mobility and excellent temporal stability under high humidity and a composition for forming an organic semiconductor film that can suitably form the organic semiconductor film.

The organic semiconductor element according to the invention includes an organic semiconductor layer containing an organic semiconductor having a repeating unit represented by Formula 1.

##STR00001##

ORGANIC SEMICONDUCTOR ELEMENT, MANUFACTURING METHOD THEREOF, COMPOSITION FOR FORMING ORGANIC SEMICONDUCTOR FILM, COMPOUND, AND ORGANIC SEMICONDUCTOR FILM
20170229662 · 2017-08-10 ·

An object to be achieved by the present invention is to provide an organic semiconductor element and an organic semiconductor film having high mobility and excellent heat resistance, and a manufacturing method thereof, to provide a novel compound that is suitable as an organic semiconductor, and to provide a composition for forming an organic semiconductor film in which coating film formability is excellent, with which an organic semiconductor element that has high mobility can be obtained, and in which heat resistance is excellent, an organic semiconductor element in which the composition for forming an organic semiconductor film is used, and a manufacturing method thereof.

The organic semiconductor element according to the present invention includes a compound represented by Formula 1 below included in an organic semiconductor layer.

##STR00001##