Abstract:
The present disclosure discloses an encapsulation system and an encapsulation method, the encapsulation system comprising a thickness detection unit, an output control unit and an energy output unit, the thickness detection unit being connected with the output control unit, and the output control unit being connected with the energy output unit. The thickness detection unit is configured to detect a thickness of an encapsulant at a to-be-heated location in a component to be encapsulated and generate corresponding thickness information. The output control unit is configured to generate corresponding output control information depending on the thickness information. The energy output unit is configured to output, depending on the output control information, to the encapsulant at the to-be-heated location energy for heating the encapsulant. With the technical solution of the present disclosure, the encapsulant can be heated properly based on its actual state such that the encapsulant at the to-be-heated location can all sufficiently melt, which effectively improves the sealing of the product.
Abstract:
The present invention provides a functional material, its preparation method, a three-dimensional display raster and a display device, which belongs to the display technical field and can solve the pollution problem in current three-dimensional display devices. The functional material includes an inorganic mixed powder with a modified layer, the inorganic mixed powder comprising boron oxide, sodium oxide, lithium oxide, zirconium oxide, aluminum oxide, zinc oxide, titanium oxide, silicon dioxide, calcium oxide, silver complexes, silver phosphate, silver nitrate, tourmaline, silver thiosulfate, carbon nanotubes, aluminum sulfate, manganese, manganese oxide, iron, iron oxide, cobalt, cobalt oxide, nickel, nickel oxide, chromium, chromium oxide, copper, copper oxide, magnesium oxide, boron carbide, silicon carbide, titanium carbide, zirconium carbide, tantalum carbide, molybdenum carbide, boron nitride, chromium nitride, titanium nitride, zirconium nitride, aluminum nitride, chromium boride, Cr3B4, titanium boride, zirconium boride, tungsten disilicide, titanium disilicide and the like; the modified layer being generated by a reaction of a dianhydride and a diamine.
Abstract translation:本发明提供属于显示技术领域的功能材料,其制备方法,三维显示光栅和显示装置,可以解决当前三维显示装置中的污染问题。 功能材料包括具有改性层的无机混合粉末,无机混合粉末包含氧化硼,氧化钠,氧化锂,氧化锆,氧化铝,氧化锌,氧化钛,二氧化硅,氧化钙,银络合物,磷酸银 ,硝酸银,电气石,硫代硫酸银,碳纳米管,硫酸铝,锰,氧化锰,铁,氧化铁,钴,氧化钴,镍,氧化镍,铬,氧化铬,铜,氧化铜,氧化镁, ,碳化硅,碳化钛,碳化锆,碳化钽,碳化钼,氮化硼,氮化铬,氮化钛,氮化锆,氮化铝,硼化铬,Cr 3 B 4,硼化钛,硼化锆,二硅化钨,二硅化钛等 ; 所述改性层由二酐与二胺的反应产生。
Abstract:
A red photoresist composition capable of emitting infrared light, a method of preparing the red photoresist composition capable of emitting infrared light, a color filter comprising red sub-pixels formed from the red photoresist composition capable of emitting infrared light, and a display device including the color filter. The red photoresist composition capable of emitting infrared light comprises, based on the total weight of the composition, 2% to 20% of a color mixed material, 30% to 90% of a solvent, 2% to 20% of an alkali-soluble resin, 2% to 20% of an ethenoid unsaturated monomer, 0.01% to 1% of photoinitiator, and 0.005% to 0.02% of other additives; wherein the color mixed material includes a colorant and a surface-modified infrared light-emitting material at a weight ratio of 99.95:0.05 to 1:1.
Abstract:
A mobile communication terminal, comprises: a thermoelectric conversion unit comprising a conversion device for converting heat energy into electric energy; and an energy storage unit electrically connected to the conversion device and configured to store the electric energy generated by the conversion device. The mobile communication terminal can solve the problem that existing mobile communication terminals have large power consumption and short continuous service time, take full advantage of energies, and extend the continuous service time of the mobile communication terminal.
Abstract:
An embodiment of the present invention provides an environment-friendly functional material and a preparation method thereof, a display structure forming material, a color film substrate and a display device. The functional material comprises inorganic mixed powder, the inorganic mixed powder comprising a main material and an auxiliary material, the main materials comprising boron oxide, sodium oxide, lithium oxide, and zirconium oxide, the auxiliary materials comprising any one or more of aluminum oxide, zinc oxide, titanium dioxide, silicon dioxide, calcium oxide, silver complex, silver phosphate, silver nitrate, tourmaline, silver thiosulfate, carbon nanotube, aluminum sulfate, manganese, oxides of manganese, iron, oxides of iron, cobalt, oxides of cobalt, nickel, oxides of nickel, chromium, oxides of chromium, copper, oxides of copper, magnesium oxide, boron carbide, silicon carbide, titanium carbide, zirconium carbide, tantalum carbide, molybdenum carbide, boron nitride, chromium nitride, titanium nitride, zirconium nitride, aluminum nitride, chromium boride, trichromium tetraborate, titanium boride, zirconium boride, tungsten disilicide and titanium disilicide.
Abstract:
Embodiments of the disclosure provide a thin film packaging structure comprising a flexible thin film used for covering a device, wherein the flexible thin film comprises at least two organic film layers and at least one inorganic film layer, the at least two organic film layers comprises a first organic film layer and a second organic film layer, an inorganic film layer is provided between the first organic film layer and the second organic film layer, the first organic film layer contacts the device, and the second organic film layer is provided at an outermost layer of the flexible thin film. The thin film packaging structure according to embodiments of the disclosure can effectively prevent external oxygen and water from penetrating into the device and satisfy the packaging performance of the device.
Abstract:
Embodiments of the disclosure provide a thin film packaging structure including a flexible thin film used for packaging a light-emitting display device, wherein the flexible thin film includes at least two layers of organic film layer, at least one layer of inorganic film layer and a light extraction film layer, each layer of the inorganic film layer is located between the two layers of the organic film layer, the light extraction film layer is located between the two layers of organic film layer or located on the outer surface of the outermost layer of the organic film layer, and the light extraction film layer includes a plurality of microstructures with the function of light extraction. The thin film packaging structure provided by embodiments of the disclosure can improve the luminous efficiency of the organic light-emitting display device packaged by the thin film packaging structure.
Abstract:
The invention provides a mobile equipment protective sleeve and a mobile equipment. The mobile equipment protective sleeve comprises: a bottom plate and a protective cover plate that is connected with and set opposite to the bottom plate, and a lenticular lens or a slit grating is located at a display region of the protective cover plate; the mobile equipment protective sleeve is made of a resin composition containing a functional material, or a surface of the mobile equipment protective sleeve is coated with a functional material. The functional material is an inorganic powder with an organic modification layer on a surface thereof, and the modification layer is generated by reacting a dianhydride with a diamine.
Abstract:
The present invention provides a functional material, its preparation method, a light guide ink and a light guide plate. The present invention belongs to the display technical field and can solve the problem that existing liquid crystal display devices will produce pollution. The functional material of the present invention includes an inorganic powder whose surface has a modified layer, wherein the inorganic powder includes any one or more of aluminum oxide, magnesium oxide, zinc oxide, zirconium oxide, silicon dioxide, titanium dioxide, boron oxide, diiron trioxide, calcium oxide, potassium oxide, sodium oxide and lithium oxide; and the modified layer is generated by a reaction of a dianhydride and a diamine. The light guide ink of the present invention includes the above functional material. The light guide plate of the present invention includes a scattering pattern formed by curing the above light guide ink.
Abstract:
The present invention provides a functional material and a method for preparing the same, as well as a color filter material and a color filter substrate. The present invention belongs to the display technical field and can solve the problem that existing color filter films are environmentally unfriendly and have poor heat resistance and unsatisfactory colors. The functional material of the present invention includes an inorganic powder whose surface has a modified layer, wherein the inorganic powder includes any one or more of aluminum oxide, magnesium oxide, zinc oxide, zirconium oxide, silicon dioxide, titanium dioxide, boron oxide, diiron trioxide, calcium oxide, potassium oxide, sodium oxide and lithium oxide; and the modified layer is generated by a reaction of a dianhydride and a diamine. The color filter material of the present invention includes the above functional material and a quantum dot. The color filter substrate of the present invention includes a color filter film made of the above color filter material.