Abstract:
A display device, a display panel and the fabricating method thereof The display panel comprises a first substrate (110) and a second substrate (120) disposed to be cell assembled; and a magnetic unit including a first magnetic subunit (11, 12) disposed on the first substrate (110) and a second magnetic subunit (21, 22) disposed on the second substrate (120) The first magnetic subunit (11, 12) and the second magnetic subunit (21, 22) are disposed to be opposed to each other First magnetic particles (15) are dispersed in the first magnetic subunit (11, 12); and second magnetic particles (25) are dispersed in the second magnetic subunit (21, 22); and the first magnetic particles (15) and the second magnetic particles (25) have opposite magnetic polarities such that the first magnetic subunit (11, 12) and the second magnetic subunit (21, 22) attract each other.
Abstract:
An electrochromic display device and a manufacturing method thereof are disclosed. The electrochromic display device includes a first substrate (21), a second substrate (22) opposed to the first substrate (21), and an electrochromic fluid (23) distributed between the first substrate (21) and the second substrate (22), wherein a plurality of recesses (21′) are disposed on the first substrate (21), the electrochromic fluid (23) is separately disposed in the recesses (21′).
Abstract:
The present disclosure provides a photosensitive structure, a photosensitive display substrate, and fabrication and control methods of the photosensitive display substrate. The photosensitive structure includes a first conductive layer; a second conductive layer; and a photoconductive material layer, sandwiched there-between. In response to a light illumination, the photoconductive material layer is capable of changing from an insulating state to a conductive state. One or more first constant voltage sources are configured in a periphery of the first conductive layer to charge the first conductive layer in different directions to maintain a first voltage there-on. Each current measurement unit is disposed between one first constant voltage source and the first conductive layer and configured to measure a charging current between the first constant voltage source and the first conductive layer, and configured to output current signals corresponding to the first constant voltage sources. A touch signal determination unit is connected to the current measurement units to determine a touch position.
Abstract:
A display panel, a display device using the same, and a method for manufacturing a display panel are provided. The display panel includes a first substrate (25) and a second substrate (26) disposed oppositely, and spacers located between the first substrate (25) and the second substrate (26). Each of the spacers includes a first part (21) and a second part (22) at locations corresponding to each other, the first part (21) is located on the first substrate (25), the second part (22) is located on the second substrate (26), both the first part (21) and the second part (22) are magnetic bodies, and top ends of the first part (21) and the second part (22) at the locations corresponding to each other contact with each other and have opposite magnetic poles.
Abstract:
The present application discloses an ultra-thin glass attachment structure and a stripping method thereof, and a manufacturing method of a display device. The ultra-thin glass attachment structure comprises: an ultra-thin glass layer, a bonding layer and a carrier substrate which are attached and provided sequentially; the bonding layer comprises a plurality of first stretchable structures tiled, and every two of first stretchable structures are all provided separately; the stripping method comprises: driving the first stretchable structures in the bonding layer expand; stripping the ultra-thin glass layer; the manufacturing method of a display device comprises the above stripping method. Embodiments of the present application largely reduces the bonding area between the ultra-thin glass layer and a carrier substrate, reduces the suction force between the two, reduces the difficulty of stripping the ultra-thin glass layer from the carrier, avoids damage to the ultra-thin glass, improves product yield.
Abstract:
Disclosed are an OLED display structure and an OLED display device having the OLED display structure. The OLED display structure comprises: a substrate (10), and an OLED pixel layer (20), an o-light and e-light splitting and converting device (5) and a circular polarizer layer (6) which are formed on the substrate (10) in sequence; the o-light and e-light splitting and converting device (5) is adapted to divide a light beam into o-light and e-light, and to convert the o-light and the e-light into circularly polarized light which has the same polarization state as the circular polarizer layer (6); the circular polarizer layer (6) is adapted to allow passage of the circularly polarized light which has the same polarization state as it. With the display structure, the light transmittance is improved, and the pixel current of the OLED pixel layer (20) is reduced, and thereby energy is saved.
Abstract:
A display panel, a display device using the same, and a method for manufacturing a display panel are provided. The display panel includes a first substrate (25) and a second substrate (26) disposed oppositely, and spacers located between the first substrate (25) and the second substrate (26). Each of the spacers includes a first part (21) and a second part (22) at locations corresponding to each other, the first part (21) is located on the first substrate (25), the second part (22) is located on the second substrate (26), both the first part (21) and the second part (22) are magnetic bodies, and top ends of the first part (21) and the second part (22) at the locations corresponding to each other contact with each other and have opposite magnetic poles.
Abstract:
The present disclosure provides a display substrate and a method of manufacturing the same, and a display device. The display substrate comprises a base substrate and a pixel layer disposed on the base substrate, the pixel layer comprising a plurality of pixel units distributed in a matrix array. The display substrate further comprises a Fresnel lens layer including a plurality of Fresnel lenses. The pixel units each are located at a position within a focal plane of at least one of the Fresnel lenses.
Abstract:
The present disclosure provides a display substrate and a method of manufacturing the same, and a display device. The display substrate comprises a base substrate and a pixel layer disposed on the base substrate, the pixel layer comprising a plurality of pixel units distributed in a matrix array. The display substrate further comprises a Fresnel lens layer including a plurality of Fresnel lenses. The pixel units each are located at a position within a focal plane of at least one of the Fresnel lenses.
Abstract:
Provided are touch structure, LCD panel and display device. The touch structure comprises a plurality of first signal lines; a plurality of second signal lines, a plurality of crossing points being formed by cross arrangement of the plurality of first signal lines and the plurality of second signal lines which are insulated from each other; a plurality of touch units, corresponding to the plurality of crossing points one to one, wherein when one touch unit of the plurality of touch units is touched, the first signal line and the second signal line which form a crossing point corresponding to the touch unit generate electrical signals respectively; a controller, connected to the plurality of first signal lines and the plurality of second signal lines respectively, for calculating a contact position based on the electrical signal of the first signal line and the electrical signal of the second signal line respectively.