Abstract:
A flexible touch screen panel includes a flexible substrate; a plurality of first sensing cells on a surface of the substrate and arranged along a first direction, and a plurality of second sensing cells on the surface of the substrate and arranged along a second direction crossing the first direction; and a plurality of first coupling patterns configured to couple adjacent ones of the first sensing cells along the first direction, and a plurality of second coupling patterns configured to couple adjacent ones of the second sensing cells along the second direction, wherein the first and second sensing cells form meshes having a plurality of apertures, and the first coupling patterns have a lamination structure including different materials.
Abstract:
A display device including a touch panel arranged on a display panel, the touch panel including at least one phase retardation layer, a polarization plate arranged on the at least one phase retardation layer, a touch sensing structure including at least one sensing pattern arranged directly on at least one of at least one face of the phase retardation layer and at least one face of the polarization plate, an adhesion layer arranged on the polarization plate and a window arranged on the adhesion layer.
Abstract:
There is provided a method for forming a graphene pattern, in which a graphene thin film layer is transferred onto a surface of a photosensitive film, and then patterned through exposure/development of the photosensitive film. The photosensitive film is cured after being finally developed, thereby securing stability and reliability.
Abstract:
A flexible touch screen panel includes a substrate, first and second sensing electrodes and conductive lines. The substrate includes an active area and a non-active area positioned at the outside of the active area when viewed in a thickness direction thereof. The substrate further includes a first surface and a second surface. The first and second sensing electrodes are formed over the active area of the substrate. The first sensing electrodes are formed to be connected along a first direction, and second sensing electrodes are formed to be connected along a second direction intersecting the first direction. The conductive lines are formed over the non-active area of the substrate, and electrically connect the first and second sensing electrodes to an external driving circuit. In the flexible touch screen panel, one or more concavo-convex patterns are formed on one or both of the first and second surfaces.
Abstract:
An elongation tester includes a fixed holder configured to hold an end of a tested material, a variable holder configured to hold a side of the tested material, the variable holder being formed of an elastic material and having a holding region that deforms in a longitudinal direction of the side of the tested material in accordance with deformation of the tested material, and a driver configured to reciprocate the fixed holder.
Abstract:
A flexible touch screen panel includes a window substrate, a polarizing functional layer, sensing patterns and sensing lines. The window substrate is flexible. The polarizing functional layer is attached on a first surface of the window substrate, and is divided into an active area and an inactive area positioned outside of the active area. The sensing patterns are formed in the active area on a first surface of the polarizing functional layer. The sensing lines are formed in the inactive area on the first surface of the polarizing functional layer, and are connected to the sensing patterns. In the touch screen panel, the polarizing functional layer has a laminated structure in which a polarizer and a retardation compensation film are attached on the first surface of the window substrate.
Abstract:
A flexible touch screen panel includes a flexible substrate; a plurality of first sensing cells on a surface of the substrate and arranged along a first direction, and a plurality of second sensing cells on the surface of the substrate and arranged along a second direction crossing the first direction; and a plurality of first coupling patterns configured to couple adjacent ones of the first sensing cells along the first direction, and a plurality of second coupling patterns configured to couple adjacent ones of the second sensing cells along the second direction, wherein the first and second sensing cells form meshes having a plurality of apertures, and the first coupling patterns have a lamination structure including different materials.
Abstract:
A flexible touch screen panel includes a substrate, sensing patterns, sensing lines, and at least one bending sensor. The substrate is divided into an active area and a non-active area around the active area. The sensing patterns are on the active area of a first surface of the substrate. The sensing lines are on the non-active area of the first surface of the substrate and connected to the sensing patterns. The at least one bending sensor is implemented with a plurality of sensing patterns at an edge region in the active area. In the flexible touch screen panel, the substrate is configured to be bent along a folding axis in a first direction, and the at least one bending sensor is at a region along the folding axis.