Abstract:
An eye-protection lamp comprises: a lampshade; a light emitting body, arranged inside the lampshade; a first photosensitive sensor, for detecting light intensity of the light emitting body; a second photosensitive sensor, for detecting ambient light intensity; a distance detecting device, for detecting a first distance (L1) between the light emitting body and a desktop under the lamp; an eye recognition device, for recognizing eyes and detecting a position of the eyes; a control unit, for adjusting the light intensity of the light emitting body according to the detected light intensity of the light emitting body, the ambient light intensity, the first distance (L1), and the position of the eyes. A light intensity adjusting method of an eye-protection lamp is further provided.
Abstract:
The present invention discloses a display wall comprising a display device and a solar panel for supplying power to the display device, wherein the display device and the solar panel are laminated.
Abstract:
A display screen, a manufacturing method thereof, and a display device are disclosed. The display screen includes a base substrate, a thin film transistor located on the base substrate, the thin film transistor including a metal layer, at least one of a light-absorbing material layer or a scattering structure disposed between the base substrate and the metal layer in a direction perpendicular to the base substrate.
Abstract:
An array substrate and a display device are provided for solving a problem of drift of an I-V curve of a thin film transistor because the oxide active layer is irradiated with light in the prior art. The array substrate includes a plurality of thin film transistors arranged in an array, wherein, each of the thin film transistors includes an oxide active layer, and the array substrate further includes a light absorption layer provided above the oxide active layer, the light absorption layer is used for absorbing light irradiated thereon, and an orthographic projection of the light absorption layer on the oxide active layer at least partly covers an active region of the oxide active layer.
Abstract:
The present invention discloses a display wall comprising a display device and a solar panel for supplying power to the display device, wherein the display device and the solar panel are laminated.
Abstract:
An electronic window is disclosed. The electronic window comprises: base substrate, first polarizing device, and second polarizing device disposed on the same side or on different sides of the base substrate; in an OFF state, first polarizing device configured to convert an incident light into a first polarized light and emitting the first polarized light, a polarization direction of the first polarized light is perpendicular to a polarization direction of the second polarizing device, and the second polarizing device configured to prevent the first polarized light from emitting; and in an ON state, first polarizing device configured to transmit the incident light, the second polarizing device configured to transmit the incident light or to convert the incident light into a third polarized light and emit the third polarized light, a polarization direction of the third polarized light is the same as a polarization direction of the second polarizing device.
Abstract:
An eye-protection lamp comprises: a lampshade; a light emitting body, arranged inside the lampshade; a first photosensitive sensor, for detecting light intensity of the light emitting body; a second photosensitive sensor, for detecting ambient light intensity; a distance detecting device, for detecting a first distance between the light emitting body and a desktop under the lamp; an eye recognition device, for recognizing eyes and detecting a position of the eyes; a control unit, for adjusting the light intensity of the light emitting body according to the detected light intensity of the light emitting body, the ambient light intensity, the first distance, and the position of the eyes. A light intensity adjusting method of an eye-protection lamp is further provided.
Abstract:
An electronic window is disclosed. The electronic window comprises: base substrate, first polarizing device, and second polarizing device disposed on the same side or on different sides of the base substrate; in an OFF state, first polarizing device configured to convert an incident light into a first polarized light and emitting the first polarized light, a polarization direction of the first polarized light is perpendicular to a polarization direction of the second polarizing device, and the second polarizing device is configured to prevent the first polarized light from emitting; and in an ON state, first polarizing device configured to transmit the incident light, the second polarizing device configured to transmit the incident light or to convert the incident light into a third polarized light and emit the third polarized light, a polarization direction of the third polarized light is the same as a polarization direction of the second polarizing device.