Patent classifications
C09D11/52
Conductive ink and method for preparing the same, and flexible display device
A conductive ink is provided, which includes an ink solvent and a conductive composition dispersed in the ink solvent. The conductive composition includes a silver nanoparticle and a molecular chain of polyaniline formed on a surface of the silver nanoparticle. A method for preparing a conductive ink and a flexible display device are further provided. The conductive ink has good film forming property and good conductivity.
Conductive ink and method for preparing the same, and flexible display device
A conductive ink is provided, which includes an ink solvent and a conductive composition dispersed in the ink solvent. The conductive composition includes a silver nanoparticle and a molecular chain of polyaniline formed on a surface of the silver nanoparticle. A method for preparing a conductive ink and a flexible display device are further provided. The conductive ink has good film forming property and good conductivity.
SYSTEM AND PROCESS FOR USING A CONDUCTIVE, NON-STICK COATING FOR AUTOMATING TOOL TOUCH-OFF
Systems and methods for using a non-stick conductive material to automate tool touch-off in an additive manufacturing process are provided. A substrate comprises a first conductive layer, an intermediate binder layer, and a second non-stick conductive layer. The non-stick conductive layer may comprise perfluoroalkoxy alkanes and carbon nanotubes. An electrical connection may be made between the first conductive layer and the second non-stick conductive layer. When used with an additive manufacturing device, when the nozzle of the device contacts the substrate, a circuit may close resulting in a detectable voltage drop. When the voltage drop is detected, a reference point for the additive manufacturing device may be set.
SYSTEM AND PROCESS FOR USING A CONDUCTIVE, NON-STICK COATING FOR AUTOMATING TOOL TOUCH-OFF
Systems and methods for using a non-stick conductive material to automate tool touch-off in an additive manufacturing process are provided. A substrate comprises a first conductive layer, an intermediate binder layer, and a second non-stick conductive layer. The non-stick conductive layer may comprise perfluoroalkoxy alkanes and carbon nanotubes. An electrical connection may be made between the first conductive layer and the second non-stick conductive layer. When used with an additive manufacturing device, when the nozzle of the device contacts the substrate, a circuit may close resulting in a detectable voltage drop. When the voltage drop is detected, a reference point for the additive manufacturing device may be set.
ELECTRODE CATALYST INK, ELECTRODE CATALYST, WATER ELECTROLYSIS CELL, AND WATER ELECTROLYZER
The electrode catalyst ink includes a catalyst including a layered double hydroxide, an organic polymer, and a solvent. The solvent includes a first solvent, a second solvent, and a third solvent. The third solvent has a boiling point higher than a boiling point of the first solvent and higher than a boiling point of the second solvent. The Hansen solubility parameter distance R.sub.a1 [MPa.sup.1/2] between the third solvent and the catalyst and the Hansen solubility parameter distance R.sub.a2 [MPa.sup.1/2] between the third solvent and the organic polymer satisfy a relationship of 2.08R.sub.a1−16.0≤R.sub.a2≤2.08R.sub.a1−13.5.
ELECTRODE CATALYST INK, ELECTRODE CATALYST, WATER ELECTROLYSIS CELL, AND WATER ELECTROLYZER
The electrode catalyst ink includes a catalyst including a layered double hydroxide, an organic polymer, and a solvent. The solvent includes a first solvent, a second solvent, and a third solvent. The third solvent has a boiling point higher than a boiling point of the first solvent and higher than a boiling point of the second solvent. The Hansen solubility parameter distance R.sub.a1 [MPa.sup.1/2] between the third solvent and the catalyst and the Hansen solubility parameter distance R.sub.a2 [MPa.sup.1/2] between the third solvent and the organic polymer satisfy a relationship of 2.08R.sub.a1−16.0≤R.sub.a2≤2.08R.sub.a1−13.5.
LIQUID METAL PARTICLE-ASSEMBLED NETWORK SYNTHESIZED IN VARIOUS POLYMERS, AND MANUFACTURING METHOD OF THE SAME
Various embodiments relate to a liquid metal particle-assembled network synthesized in various polymers and a method of manufacturing the same. The liquid metal particle- assembled network is configured to include a polymer matrix, first liquid metal particles spaced apart from each other and disposed within the polymer matrix, and second liquid metal particles that connect the first liquid metal particles between the first liquid metal particles within the polymer matrix. In this case, the size of each of the second liquid metal particles may be smaller than the size of each of the first liquid metal particles.
LIQUID METAL PARTICLE-ASSEMBLED NETWORK SYNTHESIZED IN VARIOUS POLYMERS, AND MANUFACTURING METHOD OF THE SAME
Various embodiments relate to a liquid metal particle-assembled network synthesized in various polymers and a method of manufacturing the same. The liquid metal particle- assembled network is configured to include a polymer matrix, first liquid metal particles spaced apart from each other and disposed within the polymer matrix, and second liquid metal particles that connect the first liquid metal particles between the first liquid metal particles within the polymer matrix. In this case, the size of each of the second liquid metal particles may be smaller than the size of each of the first liquid metal particles.
Aluminum-based amorphous metal particles, conductive inks and OLED cathode comprising the same, and manufacturing method thereof
This application relates to an aluminum-based amorphous metal particles, a conductive Ink and OLED cathode including the aluminum-based amorphous metal particles, and a method of manufacturing the aluminum-based amorphous metal particles. In one aspect, the amorphous metal particles are represented by a formula Al.sub.xLi.sub.yNi.sub.zY.sub.wCo.sub.v. Here, x, y, z, w, and v denote an atomic ratio, and satisfy the following relationships: 75.0≤x≤90.0, 3.0<y≤7.0, 1.0≤z≤7.0, 2.0≤w≤10.0, 0.0≤v≤5.5, and x+y+z+w+v=100.
Aluminum-based amorphous metal particles, conductive inks and OLED cathode comprising the same, and manufacturing method thereof
This application relates to an aluminum-based amorphous metal particles, a conductive Ink and OLED cathode including the aluminum-based amorphous metal particles, and a method of manufacturing the aluminum-based amorphous metal particles. In one aspect, the amorphous metal particles are represented by a formula Al.sub.xLi.sub.yNi.sub.zY.sub.wCo.sub.v. Here, x, y, z, w, and v denote an atomic ratio, and satisfy the following relationships: 75.0≤x≤90.0, 3.0<y≤7.0, 1.0≤z≤7.0, 2.0≤w≤10.0, 0.0≤v≤5.5, and x+y+z+w+v=100.