Abstract:
The present disclosure discloses a system and a method for automatic call synchronization. When a mobile terminal receives a called signal from a calling mobile terminal and determines that an automatic call synchronization function is enabled by itself, the mobile terminal transmits, to a wireless signal transponder, a call synchronization request which carries identification information and call information of the mobile terminal; a mode recognition unit which is connected to the wireless signal transponder performs an authentication on the mobile terminal according to the identification information of the mobile terminal; and transmits a call access request which carries the identification information and the call information of the mobile terminal to the fixed terminal via the wireless signal transponder, after the authentication on the mobile terminal is passed.
Abstract:
The present disclosure discloses a multi-faced display device, comprising a first display panel and a second display panel, wherein each of the first display panel and the second display panel is provided with a lateral side curving toward a back side of a display region to form an L-shaped structure, a lateral side of the first display panel opposite to the curved lateral side is encapsulated with the curved lateral side of the second display panel, and the curved lateral side of the first display panel is encapsulated with a lateral side of the second display panel opposite to the curved lateral side to form a closed structure, and a display surface of the multi-faced display device is an outside surface of the closed structure. A function of displaying images may be achieved on surfaces of the closed structure of the multi-faced display device in at least four directions; furthermore, the display device employs two L-shaped display panels to achieve a curved display surface resulting from connection of two groups of display surfaces in two directions via arcuate surfaces, thereby enhancing continuity of images displayed in respective directions of the multi-faced display device, as compared with a multi-faced display device formed by a plurality of planar display panels which has a plurality of edges upon display on multiple surfaces.
Abstract:
A rearview mirror, including a first substrate (100), a second substrate (200) cell-assembled to the first substrate (100), and a crystal material (300) filled between the first substrate (100) and the second substrate (200), a plurality of strip electrodes (11) are disposed on a side of the first substrate (100) that faces to the second substrate (200), an interval is formed between two adjacent strip electrodes (110), the strip electrodes (110) are made of a transparent electrode material, a planar electrode (210) capable of at least partially reflecting light is disposed on a side of the second substrate (200) that faces to the first substrate (100). In the present application, the refractive indices of the liquid crystal material (300) in the rearview mirror are changed by changing the voltage signal provided to the rearview mirror, such that an anti-glare operation mode of the rearview mirror is achieved.
Abstract:
A black photoresist composition capable of emitting infrared light, a method of preparing the black photoresist composition capable of emitting infrared light, a color filter comprising a Black Matrix formed from the black photoresist composition capable of emitting infrared light, and a display device including the color filter. The black photoresist composition capable of emitting infrared light includes, based on the total weight of the composition, 2% to 15% 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 19:1 to 1:1.
Abstract:
A flexible electrode structure, a manufacturing method thereof and a flexible display substrate are disclosed; the flexible electrode structure includes a composite film layer, the composite film layer includes at least one transparent elastic mesh interleaving layer and at least one transparent conductive layer which are alternately stacked with the elastic mesh interleaving layer; the flexible electrode structure can be used as an electrode and applied in the flexible display substrate.
Abstract:
The present disclosure provides a packaging method, a packaging structure and a display device. The packaging method comprises forming a pattern of a packaging adhesive on a packaging area of a first substrate, and forming a heat dissipating structure on the packaging area of any of the first substrate and a second substrate; attaching the first substrate and the second substrate, and aligning the packaging area of the first substrate with that of the second substrate; illuminating the pattern of the packaging adhesive by a laser beam to melt and frit it, so as to form a packaging adhesive structure between the first and second substrates. In the present invention, in the case that the heat dissipating structure is manufactured on the packaging area, when the packaging adhesive is illuminated by the laser beam to be melted, the heat dissipating structure can quickly dissipate the heat, effectively suppress the rapid increase of the substrate temperature caused by the laser illumination, and reduce the damage to the drive back plate.
Abstract:
This disclosure provides an OLED display apparatus and the production method thereof, for decreasing the microcavity effect and improving the intensity of the light emitted by the OLED display apparatus. The OLED display apparatus comprises: an array substrate and an OLED device which is provided on the array substrate and comprises an anode, an organic light-emitting layer and a cathode in this order along the direction away from the array substrate, and further comprises: a refractive layer positioned between the array substrate and the anode, wherein the refractive index of the refractive layer is greater than that of the anode. In the above-mentioned OLED display apparatus, by providing a refractive layer, the refractive index of which is greater than that of an anode in an OLED device, the occurrence of total reflection phenomenon when light is irradiated onto an array substrate is reduced and thereby the microcavity effect is reduced, and it is allowed that the light is refracted from the surface of the array substrate as much as possible and the light-emitting intensity of the OLED display apparatus is improved.
Abstract:
Embodiments of the present disclosure provide a LED device, a light guide plate and a backlight module, which are capable of generating red light, green light and blue light under excitation of ultraviolet light, and reducing damages of human eyes due to blue light by attenuating or eliminating light intensity of the blue light having a wavelength of 460 nm. The LED device comprises an ultraviolet illuminant and a quantum dot film located on a light emitting side of the ultraviolet illuminant. The quantum dot film includes a quantum dot material capable of generating the red light, the green light and the blue light under excitation of ultraviolet light. The wavelength of the generated blue light is within a wave band of 450˜470 nm, and a wave crest of the generated blue light is located within the wave band excluding 460 nm.
Abstract:
A composite electrode comprises at least one graphene layer and at least one doping layer, and two adjacent layers are not both the doping layer; wherein the doping layer is an aluminum chloride layer or a zinc iodide layer. It is used for manufacture of a display device.
Abstract:
A liquid crystal based contact lens comprises a first substrate and a second substrate which are aligned-and-assembled, and a liquid crystal layer disposed between the first substrate and the second substrate, the first substrate comprises a first transparent flexible substrate base, and a first alignment film comprising first alignment grooves, the first alignment film is provided on the first transparent flexible substrate base, the first alignment grooves extend to the edge of the liquid crystal based contact lens in annular shapes with their geometric centers located at the center of the lens, the second substrate comprises a second transparent flexible substrate base, and a second alignment film comprising second alignment grooves, the second alignment grooves corresponds to the first alignment grooves, the second alignment film is provided on the second transparent flexible substrate base, the liquid crystal layer is disposed between the first alignment film and the second alignment film.