Abstract:
The present disclosure relates to liquid crystal displays, particularly a liquid crystal display panel and a method for manufacturing the same. The liquid crystal display panel according to the present disclosure includes an array substrate, a color filter substrate, and a liquid crystal layer between the array substrate and the color filter substrate, wherein a polarizer is arranged on one side of the color filter substrate away from the liquid crystal layer and provided with a polarizing film layer for filtering the polarizing direction of light and a phase retardation film layer fixed on the polarizing film layer, and the phase retardation film layer is made of triacetate cellulose, and can convert linearly polarized light entering the phase retardation film layer into circularly polarized light. The method of the present disclosure at least including the following steps: step 1, manufacturing a phase retardation film layer by using triacetate cellulose as a base material; step 2, performing surface treatment on the phase retardation film layer; and step 3, fixing the phase retardation film layer on a polarizing film layer to form a polarizer. According to the present disclosure, the thickness of the panel can be reduced.
Abstract:
A liquid crystal device is disclosed. The liquid crystal device includes a TFT array substrate, a CF substrate, and a liquid crystal layer. The TFT array substrate includes a first electrode layer and a first alignment layer covering the first electrode layer. A color CF layer is formed between a glass substrate and a passivation layer of the TFT array substrate. The TFT array substrate further includes a black matrix and a photo spacer arranged thereon. The CF substrate includes a second electrode layer and a second alignment layer covering the second electrode layer. The liquid crystal layer is arranged between the first alignment layer and the second alignment layer. In addition, a manufacturing method of the liquid crystal device is disclosed. In this way, the liquid crystal devices have good alignment effects, and the color shift issues at wide viewing angle and the aperture rate are enhanced.
Abstract:
A liquid crystal device is disclosed. The liquid crystal device includes a TFT array substrate, a CF substrate, and a liquid crystal layer. The TFT array substrate includes a first electrode layer and a first alignment layer covering the first electrode layer, and a black matrix and a photo spacer arranged thereon. The CF substrate includes a second electrode layer and a second alignment layer covering the second electrode layer. The liquid crystal layer is arranged between the first alignment layer of the TFT array substrate and the second alignment layer of the CF substrate. In addition, a manufacturing method of the liquid crystal device is disclosed. In this way, the liquid crystal devices have good alignment effects, and the color shift issues at wide viewing angle and the aperture rate are enhanced.
Abstract:
A liquid crystal device is disclosed. The liquid crystal device includes a TFT array substrate, a CF substrate, and a liquid crystal layer. The TFT array substrate includes a first electrode layer and a first alignment layer covering the first electrode layer. A color CF layer is formed between a glass substrate and a passivation layer of the TFT array substrate. The TFT array substrate further includes a black matrix and a photo spacer arranged thereon. The CF substrate includes a second electrode layer and a second alignment layer covering the second electrode layer. The liquid crystal layer is arranged between the first alignment layer and the second alignment layer. In addition, a manufacturing method of the liquid crystal device is disclosed. In this way, the liquid crystal devices have good alignment effects, and the color shift issues at wide viewing angle and the aperture rate are enhanced.
Abstract:
An alignment method for liquid crystal panel is disclosed. The method includes: providing a first substrate with a first alignment layer and a second substrate with a second alignment layer; dividing both of the first alignment layer and the second alignment layer to at least one subarea, each subareas comprises a plurality of alignment areas, a predetermined alignment direction of the alignment area of the first alignment layer is vertical to that of the corresponding alignment area of the second alignment layer; radiating each alignment areas of the first alignment layer and the second alignment layer by polarized beams of different directions so as to form the alignment films with predetermined alignment direction corresponding to each alignment areas. In addition, a corresponding liquid crystal device is disclosed. The above-mentioned method and device have good alignment results, and the color shift issue at wide viewing angle is enhanced.
Abstract:
A liquid crystal device is disclosed. The liquid crystal device includes a TFT array substrate, a color film (CF) substrate, and a liquid crystal layer. The TFT array substrate includes a first electrode layer and a first alignment layer covering the first electrode layer. A CF layer is formed between a glass substrate and a passivation layer of the TFT array substrate, and a black matrix is arranged on the TFT array substrate. The CF substrate includes a second electrode layer and a second alignment layer covering the second electrode layer. The liquid crystal layer is arranged between the first alignment layer of the TFT array substrate and the second alignment layer of the CF substrate. A manufacturing method of the liquid crystal device is disclosed. The liquid crystal devices have good alignment effects, and the color shift issues at wide viewing angle and the aperture rate are enhanced.
Abstract:
The present disclosure proposes a type of three-dimensional eyeglasses, including a polarizer and a first wave plate on one side of the polarizer, the first wave plate is a quarter-wavelength wave plate and includes a first left lens and a first right lens corresponding to the left eye and the right eye of a user respectively, the optical axis of the first left lens is vertical to that of the first right lens, and the angles formed between the direction of the transmission axis of the polarizer and those of the optical axes of the first left lens and the first right lens are both 45 degrees, wherein, a second wave plate is arranged on the side of the polarizer away from the first wave plate, the light from a screen passes through the first wave plate, the polarizer and the second wave plate and is then emitted, and the second wave plate is arranged in such a manner that the light emitted after passing through the three-dimensional eyeglasses is circularly polarized light. This enables the human eyes to feel more comfortable and is less prone to cause fatigue.
Abstract:
The present invention discloses a polarizing device, a liquid crystal display device and a manufacturing method thereof. The polarizing device comprises: a first support layer, a polarizing layer used to output linear polarized light, and a conversion layer with phase delay of m/4 wavelength. The m is an odd number larger than zero. The first support layer, the polarizing layer, and the conversion layer are staked sequentially. The angle θ between the optical axis of the conversion layer and the polarization axis of the polarizing layer are n*90°+45°, the n being an integer not less than zero. In this way, the present invention can change the polarization state of the emitted light of the liquid crystal display device without significantly increasing the cost of production, which can protect the human eye.