Abstract:
A transparent conductor including a conductive layer coated on a substrate is described. More specifically, the conductive layer comprises a network of nanowires which may be embedded in a matrix. The conductive layer is optically transparent and flexible. It can be coated or laminated onto a variety of substrates, including flexible and rigid substrates.
Abstract:
The circuit connecting material of the invention is situated between mutually opposing circuit electrodes, and provides electrical connection between the electrodes in the pressing direction when the mutually opposing circuit electrodes are pressed, the circuit connecting material comprising anisotropic conductive particles wherein conductive fine particles are dispersed in an organic insulating material.
Abstract:
A transparent conductor including a conductive layer coated on a substrate is described. More specifically, the conductive layer comprises a network of nanowires which may be embedded in a matrix. The conductive layer is optically transparent and flexible. It can be coated or laminated onto a variety of substrates, including flexible and rigid substrates.
Abstract:
The invention relates to a composite material consisting of at least one ceramic layer or at least one ceramic substrate and at least one metallisation formed by a metallic layer on a surface side of the at least one ceramic substrate.
Abstract:
A conductive nanowire film based on a high aspect-ratio metal is disclosed. The nanowire film is produced by inducing metal reduction in a concentrated surfactant solution containing metal precursor ions, a surfactant and a reducing agent. The metal nanostructures demonstrate utility in a great variety of applications.
Abstract:
An improved method of fabricating an electronic interconnect device using direct imaging of dielectric composite material by the inclusion of a conducting material in the composite material that becomes non-conducting through exposure to electromagnetic radiation. The conducting material generally comprises single-wall carbon nanotubes.
Abstract:
The present inventive concept relates to a high conductive paste composite which can minimally undergo effects of a negative temperature resistance coefficient (e.g., heat radiation effect 5 to 10 times larger than that of copper or aluminum, high field emission effect, black body radiation, etc.) that the carbon nano tube has in the case of products using the carbon nano tube (MWNT or SWNT), which can solve problems (negative temperature resistance coefficient and high resistance) of a heating part (conductive carbon paste) that converts electric energy of a heating body into thermal energy.
Abstract:
A Transparent conductor including a conductive layer coated on a substrate is described. More specifically, the conductive layer comprises a network of nanowires which may be embedded in a matrix and one more corrosion inhibitors. The conductive layer is optically transparent and flexible. It can be coated or laminated onto a variety of substrates, including flexible and rigid substrates.
Abstract:
Die vorliegende Erfindung betrifft ein Verfahren zur Erzeugung leitfähiger Strukturen auf der Oberfläche von nicht oder nur gering leitfähigen Polymerformkörpern, umfassend die folgenden Schritte: a) Bereitstellen eines Polymerformkörpers aus mindestens einer Polymerphase, die Carbon Nanotubes (CNT) enthält; b) thermische Behandlung mindestens einer Oberfläche des Polymerformkörpers zur Erzeugung der leitfähigen Strukturen auf der Oberfläche, wobei die thermische Behandlung ein Erhitzen auf eine Temperatur umfasst, die mindestens der Schmelztemperatur der mindestens einen Polymerphase entspricht. Des Weiteren betrifft die Erfindung einen Polymerformkörper, umfassend mindestens eine Polymerphase und zwischen 0,01 und 10 Gew.-% Carbon Nanotubes (CNT), bezogen auf die Polymerphase/n, wobei der Polymerformkörper auf der Oberfläche elektrisch leitfähige Strukturen aufweist, wobei die Konzentration der CNT in den Bereichen der elektrisch leitfähigen Oberflächenstrukturen höher ist als in den nicht elektrisch leitfähigen Oberflächenbereichen.