Abstract:
A system and method are disclosed for correcting the color of microscope images for different illuminants. The system includes a microscope having at least one image setting value selector with a plurality of pre-set positions, and an optical train having a distal end and a proximal end and being configured to convey illumination. The optical train is further configured to allow introduction of a calibration slide into the optical train of the microscope at a plurality of possible positions, each position being a conjugate plane of the sample plane, when the sample is in focus. The calibration slide incorporates an integral transmission filter array of known transmission values.
Abstract:
Methods for manufacturing the grating sheet and a liquid crystal display panel are provided. The grating sheet comprises a plurality of primary color gratings in parallel, each of which comprises a red R sub-grating, a green G sub-grating and a blue B sub-grating in parallel, and each sub-grating comprises an opening area and a reflective region disposed around the opening area and corresponds to a pixel unit on a sub-array substrate. The methods for manufacturing the grating sheet and a liquid crystal display panel may be applicable to a system with a liquid crystal display.
Abstract:
A highly efficient method for manufacturing an orientation material and a retardation material, and an orientation material and a retardation material. A method for manufacturing an orientation material having a first orientation region and a second orientation region, directions for regulating liquid crystal alignment are different from each other, including: forming a coating film by a cured-film formation composition containing component (A) that is an acrylic copolymer having a photodimerizable moiety and a thermally cross-linkable moiety and a component (B) that is a cross-linking agent onto a substrate; heating the coating film to form a cured film; and performing exposure to polarized light by irradiating a first region for forming the first orientation region and a second region for forming the second orientation region with polarized light having the same polarization direction such that amounts of light exposure are different between the first region and the second region.
Abstract:
In a method of manufacturing a display substrate and a method of manufacturing a display panel, the display substrate includes a color filter layer disposed on a base substrate within a pixel area, a first organic insulating pattern disposed on a first boundary area between adjacent pixel areas, a pixel electrode disposed on the color filter layer, and a first blocking pattern disposed on the first organic insulating pattern. Accordingly, an organic insulating layer corresponding to the pixel area is removed so that deterioration of the display quality by impurities generated from the organic insulating layer may be minimized. In addition, a stepped portion of a blocking pattern disposed between a pixel area and a boundary area of a plurality of the pixel areas is reduced so that motion blurring of a liquid crystal may be prevented.
Abstract:
A device such as a filter or reflector includes a conductive layer including a periodic pattern of elements. The elements have shapes and sizes configured such that a transmittance or reflectance spectrum of the conductive layer has a drop at a long-wavelength end. The elements have a period configured such that the spectrum has a dip at a Plasmon mode resonant wavelength. The spectrum further includes a peal—between the dip and the drop.
Abstract:
A spectrum of light which is emitted from an illuminator (2) of a liquid crystal display device (100) has a peak in each of the wavelength ranges of 447 to 453 nm, 538 to 542 nm, 613 to 617 nm, 628 to 632 nm, and 648 to 652 nm. The peak wavelength and rising wavelength of the transmission spectrum of the red color filters are, respectively, not less than 600 nm; and not less than 568 nm and not more than 572 nm. At wavelengths of 400 nm, 420 nm and 580 nm, the transmission spectrum of the red color filters has transmittances of, respectively, 10 to 15%; 3 to 6%; and 25 to 30%. The wavelengths at which the transmission spectrum of the red color filters exhibits a transmittance of 50% are contained within a range of 583 to 587 nm. The peak wavelength of the transmission spectrum of the green color filters is not less than 500 nm and not more than 560 nm. At wavelengths of 480 nm and 580 nm, the transmission spectrum of the green color filters exhibits transmittances of, respectively, 45 to 55%; and 65 to 70%. The wavelengths at which the transmission spectrum of the green color filters exhibits a transmittance of 50% are contained within a range of 478 to 482 nm and a range of 590 to 600 nm. The peak wavelength of the transmission spectrum of the blue color filters is not less than 440 nm and not more than 470 nm. At wavelengths of 400 nm and 500 nm, the transmission spectrum of the blue color filters exhibits transmittances of, respectively, 25 to 40%; and 40 to 50%. The wavelengths at which the transmission spectrum of the blue color filters exhibits a transmittance of 50% are contained within a range of 493 to 503 nm.
Abstract:
Provided is a photosensitive resin composition including: a nanophosphor, a photopolymerization initiator, a photopolymerization compound, an antioxidant, and a solvent, in which the antioxidant includes one kind or more selected from phenol-based, phosphorus-based, and sulfur-based compounds.
Abstract:
An ophthalmic surgical system can include a light source configured to generate a light beam and a filter wheel disposed between the light source and an intraocular illumination device. The filter wheel can include an unfiltered area, a first filtered area, and a second filtered area. The first and second filtered areas can limit transmission of certain wavelengths of the light beam to the intraocular illumination device. The system can include an actuator configured to selectively move the filter wheel to cause the light beam to pass through the unfiltered area, the first filtered area, and/or the second filtered area. The system can include a computing device configured to provide a control signal to the actuator. The computing device can be configured to provide a control signal to the actuator based on a beam location, a beam composition, an exposure time, and/or a limited visibility condition.
Abstract:
The present invention relates to an inkjet composition for forming transparent films, which is highly economical and environmentally friendly and has excellent physical properties, including excellent transmittance, chemical resistance, heat resistance, adhesion, jetting stability and storage stability.
Abstract:
Provided are method for manufacturing a color filter substrate, color filter substrate and display device. The method includes the following steps: providing a substrate; forming a color pixel unit on the substrate; forming a protective layer on the color pixel unit; coating an alignment film paint and a spacer paint on the protective layer in turn, and forming an alignment film and a spacer via a single patterning process or double patterning processes.