The present invention relates to a touch-sensing panel and a touch-sensing apparatus, and more particularly, to a touch-sensing panel and a touch-sensing apparatus that may determine one or more touch inputs that may be applied simultaneously or sequentially, and that may be provided in a single-layer structure.
While mobile phones equipped with touch screens are widespread, and various types of smartphones become popular, research on touch-sensing technologies is actively being conducted. Touch screens, namely typical touch-sensing apparatuses, may be classified into resistive touch screens, capacitance touch screens, ultrasonic touch screens, infrared touch screens, and the like, according to operation schemes of touch screens. Among such touch screens, capacitance touch screens have excellent durability and lifespan, and may support a multi-touch function, and accordingly an application field of capacitance touch screens is being expanded.
Capacitance touch screens may be divided by a scheme of determining a touch input using self-capacitance generated between a touch object and a sensing electrode, instead of applying a separate driving signal, and a scheme of applying a predetermined driving signal and of determining a touch input using mutual-capacitance generated between a plurality of sensing electrodes by a touch object. In the scheme using self-capacitance, a circuit configuration is simple, and it is easy to implement capacitance touch screens, however, it is difficult to determine multi-touch.
Conversely, the scheme using mutual-capacitance is advantageous in determination of multi-touch, compared to the scheme using self-capacitance, however, may enable a capacitance touch screen to be thickened because the capacitance touch screen needs to have a two-layer structure. Additionally, manufacturing costs of a mutual capacitance touch screen having a two-layer structure may increase, compared to a touch screen having a single-layer structure, due to an increase in processing stages. However, in a conventional touch screen having a single-layer structure, it is impossible to determine multi-touch.
An aspect of the present invention is to provide a touch-sensing panel and a touch-sensing apparatus that may accurately determine a plurality of touch inputs and that may be provided in a single-layer structure.
According to an aspect of the present invention, there is provided a touch-sensing panel, including: a substrate; and one or more sensing regions prepared on the substrate, wherein each of the one or more sensing region includes one or more first electrodes extending in a first axis direction, and one or more second electrodes extending in a second axis direction intersecting a first axis, and wherein at least one of the second electrodes are electrically connected to another second electrode arrayed at the same position on the first axis and included in different sensing region.
According to an aspect of the present invention, there is provided a touch-sensing apparatus, including: a plurality of first electrodes to which a driving signal is applied; a plurality of second electrodes formed on the same layer as the first electrodes; and a controller chip to determine the one or more touch inputs, wherein each of the plurality of second electrodes is surrounded by a neighboring first electrode, and wherein the controller chip determines the one or more touch inputs, based on a change in a mutual capacitance generated between the second electrode and the first electrode to which the driving signal is applied.
As described above, in a touch-sensing apparatus according to embodiments of the present invention, a plurality of electrodes may be disposed on one surface of a substrate, and a controller chip may detect a change in mutual capacitance occurring by a touch object from an electrode surrounded by an electrode to which a driving signal is applied. Accordingly, in a touch-sensing apparatus that is relatively thin, compared to a two-layer structure, it is possible to increase an accuracy of determination of a touch input including a multi touch, by reducing an influence by noise, and by increasing a signal sensitivity.
Reference will now be made in detail to embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout. The embodiments are described below in order to explain the present invention by referring to the figures.
The substrate 110 may refer to a support plate, in which the sensing regions 120, the wiring pattern 150, the bonding pad, and the like are disposed, and to which the circuit board in which the controller chip is mounted is attached by an ACF process and the like, and may be prepared using materials, such as poly(ethylene terephthalate) (PET), poly(methyl methacrylate) (PMMA), Polycarbonate (PC), polyimide (PI), a tempered glass, a sapphire glass, and the like. In particular, when the touch-sensing panel 100 is a touch screen attached to a display apparatus, materials with an excellent optical transmittance, such as the above materials, may desirably be used.
The sensing region 120 may include one or more first electrodes 130 extending in a first axis direction, and one or more second electrodes 140 extending in a second axis direction that intersects the first axis direction. In
For example, a single second electrode 140 and a part of a first electrode 130 neighboring the second electrode 140 may be determined to be a single sensing region 120. In this instance, the touch-sensing panel 100 may include a total of 64 sensing regions 120, unlike the above-described case. In other words, hereinafter, a term [sensing region] used throughout the present specification may need to be understood to mean a constant unit region enabling determination of a touch input of a user, instead of a region defined by a sensing channel connected to a controller chip, or by a sensing electrode that is physically and electrically separated.
A second electrode 140 may be disposed to fill a space prepared in a first electrode 130 forming a sensing region 120 including the second electrode 140. Referring to
The first electrode 130 and the second electrode 140 included in the sensing regions 120 may be electrically connected to the controller chip through the wiring pattern 150 disposed in the left and right bezel regions of the substrate 110. In this instance, at least a part of a plurality of second electrodes 140 disposed in the same location on the first axis may be connected to a single wiring pattern 150, and accordingly it is possible to reduce a number of wiring patterns 150 and a width of a bezel region. In a touch screen attached to a display apparatus, a wiring pattern disposed in an effective display region of the touch-sensing panel 100 may desirably be formed of transparent electroconductive materials, such as indium tin oxide (ITO), zinc oxide (ZnO), indium zinc oxide (IZO), a Carbon Nanotube (CNT), and the like, so that a display screen may be displayed to a user through the touch screen.
When the first electrode 130 and the second electrode 140 are disposed in the same surface of the substrate 110, an arrangement of the wiring patterns 150 connected to the first electrode 130 and the second electrode 140 may be a problem. Since the one or more second electrodes 140 disposed in the same location on the first axis are connected to a single sensing channel of the controller chip, a problem may occur in the bezel region of the substrate 110 due to overlapping of the wiring patterns 150, which will be further described with reference to
The wiring pattern A1 may be connected to the wiring pattern S8 and accordingly, may need to be insulated from the wiring patterns S5 to S7. As shown in
In
The wiring patterns D2, D4, D6, and D8 may be relatively disposed in an edge of the substrate 110, compared to the wiring patterns S5 to S8. In this instance, a process of using a separate insulating layer to insulate the wiring patterns D2, D4, D6, and D8 from the wiring patterns S5 to S8 may also need to be added. Accordingly, the wiring patterns S5 to S8 and the wiring patterns A1 to A4 connected to the second electrodes 140 may be formed, an insulating layer covering the wiring patterns A1 to A4 and S5 to S8 may be disposed over the bezel region, and the wiring patterns D2, D4, D6, and D8 connected respectively to the first electrodes 130 may be formed on the insulating layer. In other words, the wiring patterns may be formed in a multi-layer structure in the bezel region of the substrate 110.
Hereinafter, an expression [a second electrode surrounded by a neighboring first electrode] used throughout the present specification may need to be understood to mean the second electrode 340 enclosed by the first electrode 330 in the same plane. Referring to
In the embodiment of
The circuit patterns corresponding to the wiring patterns S5 to S8 of
The second electrode 240 of
Referring to
A change in capacitance may occur between the first electrode 530a to which the driving signal 535a is applied, and the neighboring second electrode 540a. In this instance, the change in the capacitance may occur through the substrate 510a disposed between the first electrode 530a and the second electrode 540a, and may occur in a direction of a shortest distance between the first electrode 530a and the second electrode 540a and in the cover lens 550a disposed between the second electrode 540a and the touch object 560a. Additionally, a capacitance generated through the cover lens 550a may be greatly influenced by the touch object 560a, compared to a capacitance generated in a shortest distance through the substrate 510a. Accordingly, to increase a sensitivity of recognition of the touch object 560a, a capacitance generated in a direction of the cover lens 550a may desirably be increased.
Since the first electrode 530a and the second electrode 540a face each other in the two-layer structure, as shown in
Conversely, referring to
In particular, in the present embodiment, the second electrode 540b may be disposed to fill a space in the first electrode 530b, or may be surrounded by the first electrode 530b, and accordingly the accuracy of determination of a touch input may be further increased, compared to when the first electrode 530b and the second electrode 540b are disposed in parallel. Hereinafter, this will be described with reference to
When a predetermined touch region 660 is formed by a touch object in a location adjacent to the first electrode 630 to which the driving signal 635 is applied, a change in capacitance may occur between the first electrode 630 and the second electrode 640. As described above in
Accordingly, a change in mutual capacitance occurring by the touch region 660 between the first electrode 630 and the second electrode 640 may be greater than that of the two-layer structure. This means a large intensity of a sensing signal that may sensed by a controller chip with respect to the same touch input. As a result, an accuracy of determination of a touch input may be increased.
In this instance, since the second electrode 640 is disposed in a space prepared in the first electrode 630 (or since the second electrode 640 is surrounded by the first electrode 630 along an outline of the second electrode 640), a change in mutual capacitance may occur in all outlines of the second electrode 640 corresponding to the first electrode 630. Accordingly, a great change in mutual capacitance influenced by the touch region 660 may occur, compared to when the first electrode 630 and the second electrode 640 are disposed adjacent to each other.
In addition, second electrodes 640 may be formed so that a gap d between the second electrodes 640 may correspond to a typical diameter of the touch region 660 that is numerically, empirically modeled in a circular shape, and accordingly an intensity of a sensing signal acquired by the controller chip may be further increased. In other words, when the gap d is set to be less than the typical diameter of the touch region 660, the touch region 660 may be highly likely to overlap at least two second electrodes 640, and accordingly an accuracy of determination of a touch input may be relatively increased.
In the present embodiment, the second electrode 740 may have a shape of two crosses connected vertically. In other words, the second electrode 740 may have a straight line pattern that extends in a second axis direction intersecting a first axis in a space prepared in the first electrode 730 extending in the first axis, and may further include a branch-shaped sub-electrode that intersects the straight line pattern. As described above in
Referring to
To determine one or more touch inputs in the touch-sensing apparatus 700, the controller chip 780 may sequentially apply a predetermined driving signal to each of the plurality of first electrodes 730, respectively, and may detect a change in mutual capacitance in the second electrode 740. In this instance, to accurately determine a touch input, a change in mutual capacitance occurring between first electrodes 730 other than a first electrode 730 to which a driving signal is applied and a second electrode 740 that desires to acquire a sensing signal from the controller chip 780 may desirably be minimized.
For example, it is assumed that a driving signal is applied to a first electrode 730 shown in a top line of
To reduce an influence by the noise component, the third electrode 760 used to maintain a constant voltage, desirably a voltage of a ground level, may be disposed between each of the sensing regions 720. The third electrode 760 may reduce a change in capacitance occurring between a second electrode 740 surrounded by a first electrode 730 to which a driving signal is applied, and a first electrode 730 to which a driving signal is not applied.
Since the plurality of sensing regions 820 are two-dimensionally arranged on the substrate 810, the sensing regions 820 may be adjacent to each other in a first axis (horizontal direction) or a second axis (vertical direction). In particular, second electrodes 840 may be electrically connected to each other in the plurality of sensing regions 820 adjacent to each other in the first axis direction corresponding to the horizontal direction. For example, as shown in
A first electrode 830 included in a specific sensing region 820 may be electrically connected to a first electrode 830 included in another sensing region 820, through a separate wiring 850, unlike the second electrode 840. Referring to
When a predetermined driving signal is applied to first electrodes 830 sequentially, and when a touch input sensing algorithm for acquiring a sensing signal from a second electrode 840 adjacent to a first electrode 830 to which a driving signal is applied is assumed to be used, a driving signal may be transferred to a first electrode 830 included in a sensing region 820 disposed inside the substrate 810, rather than being disposed in an edge of the substrate 810, through a wiring 850 disposed within the effective sensing region. Accordingly, an unintended change in coupling capacitance may occur, as a sensing signal, between the wiring 850 and a neighboring second electrode 840, which may function as a noise signal in determination of a touch input.
Accordingly, in the present embodiment, a controller chip (not shown) may be connected to a second electrode 840 used to acquire a sensing signal and a first electrode 830, and the first electrode 830 and the second electrode 840 may be disposed so that wirings 850 disposed in the effective sensing region may not be adjacent to each other. In other words, as shown in
A change in coupling capacitance may occur between the first electrode 830 and the second electrode 840, and may be proportional to an area of a touch region formed by a touch input. When a touch region with the same area is formed, the second electrode 840 may include a predetermined third electrode, to maximize a change in coupling capacitance and to increase a sensitivity. This will be described with reference to
Referring to
Although a few embodiments of the present invention have been shown and described, the present invention is not limited to the described embodiments. Instead, it would be appreciated by those skilled in the art that changes may be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.
Number | Date | Country | Kind |
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10-2010-0028237 | Mar 2010 | KR | national |
10-2010-0035338 | Apr 2010 | KR | national |
10-2010-0110883 | Nov 2010 | KR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/KR2011/001981 | 3/23/2011 | WO | 00 | 9/28/2012 |