The invention relates to the technical field of touch-sensing screen, and particularly to a conductive layer structure and a liquid crystal display device with touch-sensing function having the conductive layer structure.
Nowadays, a liquid crystal display device integrating with touch-sensing function and display function is becoming more popular, and In-cell technology embedding capacitive touch-sensing function into pixels of a liquid crystal display panel, which is easy to realize characteristics of thin and lightweight of the liquid crystal display panel, especially has become the development trend of the art. A conductive layer structure of the liquid crystal display panel using the in-cell technology only is composed of multiple same touch electrode patterns each having a rectangular shape, that is a traditional full in-cell conductive layer structure, when fingers slide around the edge region of a touch screen of the liquid crystal display device, a capacitance between electrode patterns of the edge region changes larger, the difference between a capacitance change and a linear change is bigger when the fingers slide from one touch point to another touch point, therefore it is unable to effectively judge a sliding track of the fingers, a touch precision of the edge region is poorer.
Accordingly, embodiments of the invention provide a liquid crystal display device with touch-sensing function and a conductive layer structure thereof to improve the touch precision of the edge region of the liquid crystal display device.
An embodiment of the invention provides a conductive layer structure, comprises a plurality of first electrode patterns and a plurality of rectangular second electrode patterns, the plurality of second electrode patterns are arranged in a rectangular array, the plurality of first electrode patterns are arranged around the plurality of second electrode patterns; the plurality of second electrode patterns arranged in a rectangular array are disposed with two rows of the first electrode patterns on a row direction thereof respectively located above and below the plurality of second electrode patterns, and further are disposed with two columns of the first electrode patterns on a column direction thereof respectively located left and right of the plurality of second electrode patterns, a length and a width of each of the plurality of first electrode patterns respectively are equal to a length and a width of each of the plurality of second electrode patterns; wherein, each of the plurality of first electrode patterns comprises a first sub-electrode pattern and a second sub-electrode pattern, a first side of the first sub-electrode pattern near the second sub-electrode pattern and a second side of the second sub-electrode pattern near the first sub-electrode pattern each are disposed with a right angle structure, and the first side and the second side are meshed with each other to thereby make the first sub-electrode pattern and the second sub-electrode pattern together define a rectangular shape, and a distance between one of the plurality of first electrode patterns and one of the plurality of second electrode patterns adjacent thereto is equal to a distance between the first sub-electrode pattern and the second sub-electrode pattern.
Another embodiment of the invention provides a conductive layer structure, comprises a plurality of first electrode patterns and a plurality of rectangular second electrode patterns, the plurality of second electrode patterns are arranged in a rectangular array, the plurality of first electrode patterns are arranged around the plurality of second electrode patterns; wherein each of the plurality of first electrode patterns comprises a first sub-electrode pattern and a second sub-electrode pattern, a first side of the first sub-electrode pattern near the second sub-electrode pattern and a second side of the second sub-electrode pattern near the first sub-electrode pattern each are disposed with a right angle structure, the first side and the second side are meshed with each other to thereby make the first electrode pattern and the second sub-electrode pattern together define a rectangular shape.
In one embodiment, a length and a width of each of the plurality of first electrode patterns respectively are equal to each of the plurality of second electrode patterns.
In one embodiment, the first sub-electrode pattern and the second sub-electrode pattern each are a “L” shaped structure.
In one embodiment, the first sub-electrode pattern is an “E” shaped structure, the first side of the first sub-electrode pattern comprises two recesses with the right angle structure, and the second side of the second sub-electrode pattern comprises two convexes meshed with the two the recesses.
In one embodiment, a distance between one of the plurality of first electrode patterns and an adjacent one of the plurality of second electrode patterns is equal to a distance between the first sub-electrode pattern and the second sub-electrode pattern.
In one embodiment, the plurality of second electrode patterns arranged in a rectangular array are disposed with two rows of the first electrode patterns on a row direction thereof respectively located above and below the plurality of second electrode patterns, and further are disposed with two columns of the first electrode patterns on a column thereof respectively located left and right of the plurality of second electrode patterns.
In one embodiment, each of the plurality of first electrode patterns located on the row direction rotates with 90 degrees to the right or to the left would become the same as corresponding one of the plurality of first electrode patterns located on the column direction.
In one embodiment, the two columns of the first electrode patterns located on the column direction are symmetrical with respect to a first axis, and two rows of the first electrode patterns located on the row direction are symmetrical with respect to a second axis, the first axis and the second axis respectively are central axes of the multiple second electrode patterns arranged in a rectangular array on the column direction and on the row direction
In one embodiment, the two columns of the first electrode patterns located on the column direction are the same, and the two rows of the first electrode patterns located on the row direction are the same.
Further another embodiment of the invention provides a liquid crystal display device with touch-sensing function, comprises a display assembly and a touch-sensing assembly, the display assembly and the touch-sensing assembly share a common electrode, the touch-sensing assembly comprises a conductive layer structure disposed opposite to the common electrode, the conductive layer structure comprises a plurality of first electrode patterns and a plurality of rectangular second electrode patterns, the plurality of second electrode patterns are arranged in a rectangular array, the plurality of first electrode patterns are arranged around the plurality of second electrode patterns, each of the plurality of first electrode patterns comprises a first sub-electrode pattern and a second sub-electrode pattern, a first side of the first sub-electrode pattern near the second sub-electrode pattern and a second side of the second sub-electrode pattern near the first sub-electrode pattern each are disposed with a right angle structure, the first side and the second side are meshed with each other to thereby make the first electrode pattern and the second sub-electrode pattern together define a rectangular shape.
In one embodiment, a length and a width of each of the plurality of first electrode patterns are respectively equal to a length and a width of each of the plurality of second electrode patterns.
In one embodiment, the first sub-electrode pattern and the second sub-electrode pattern each are a “L” shaped structure.
In one embodiment, the first sub-electrode pattern is an “E” shaped structure, the first side of the first sub-electrode pattern comprises two recesses with the right angle structure, and the second side of the second sub-electrode pattern comprises two convexes meshed with the two the recesses.
In one embodiment, a distance between one of the plurality of first electrode patterns and an adjacent one of the plurality of second electrode patterns is equal to a distance between the first sub-electrode pattern and the second sub-electrode pattern.
In one embodiment, the plurality of second electrode patterns arranged in a rectangular array are disposed with two rows of the first electrode patterns on a row direction thereof respectively located above and below the plurality of second electrode patterns, and further are disposed with two columns of the first electrode patterns on a column thereof respectively located left and right of the plurality of second electrode patterns.
In one embodiment, each of the plurality of first electrode patterns located on the row direction rotates with 90 degrees to the right or to the left would become the same as the first electrode pattern located on the column direction.
In one embodiment, the two columns of the first electrode patterns located on the column direction are symmetrical with respect to a first axis, and two rows of the first electrode patterns located on the row direction are symmetrical with respect to a second axis, the first axis and the second axis respectively are central axes of the plurality of second electrode patterns arranged in a rectangular array on the column direction and on the row direction.
In one embodiment, the two columns of the first electrode patterns located on the column direction are the same, and the two lines of the first electrode patterns located on the row direction are the same.
With regard to a liquid crystal display device with touch-sensing function and a conductive layer structure thereof according to embodiments of the invention, an electrode pattern being designed to be located around an edge region of the conductive layer structure includes two sub-electrode patterns, and adjacent sides of the two sub-electrode patterns each are disposed with a right angle structure, which is equivalent to increase the contact area between the electrode patterns in a sensing unit, when fingers slide around the edge region of a touch screen of the liquid crystal display device, a capacitance change between electrode patterns of the edge region is relatively small, a capacitance change during sliding from one touch point to another touch point is consistent with a linear change, thus it is able to accurately judge a sliding track of the fingers.
In the following, with reference to accompanying drawings, technical solutions of exemplary embodiments provided by the invention will be clearly and completely described.
Referring to
The first sub-electrode pattern Px1 and the second sub-electrode pattern Px2 each are a “L” shaped structure, that is, each first sub-electrode pattern Px1 has six sides Lx1, Lx2, Lx3, Lx4, Lx5, Lx6, each second sub-electrode pattern Px2 further has six sides Ly1, Ly2, Ly3, Ly4, Ly5, Ly6, and the side Ly4, Ly5, Ly6 form the first side X, the side Lx4, Lx5 and the side Lx5, Lx6 respectively form two right angle structures of the first side X, the side Ly4, Ly5, Ly6 form the second side Y, the side Ly4, Ly5 and the side Ly5, Ly6 respectively form two right angle structures of the second side Y, the side Ly4 is adjacent to the side Ly6, the side Lx5 is adjacent to the side Ly5, the side Lx6 is adjacent to the side Ly4.
Accordingly, on a row direction, a length of each first electrode pattern Px is equal to a length of the side Lx2, on a column direction, a width of each first electrode pattern Px is equal to a sum of a length of the side Lx1, a length of the side Ly3 and a distance between the two. The embodiment can further dispose the length of each first electrode pattern Px be equal to a length of each second electrode pattern Py and dispose the width of each first electrode pattern Px be equal to a width of each second electrode pattern Py. Optionally, a distance between each first electrode pattern Px and a second electrode pattern Py adjacent thereto is equal to a distance between the first sub-electrode pattern Px1 and the second sub-electrode pattern Px2.
In the embodiment, the multiple second electrode patterns Py arranged in a rectangular array are disposed with two rows of the first electrode patterns Px on a row direction thereof respectively located above and below the multiple second electrode patterns Py, the multiple second electrode patterns Py arranged in a rectangular array are disposed with two columns of first electrode patterns Px on a column direction thereof respectively located left and right of the multiple second electrode patterns Py.
After rotating with 90 degrees to the right, the first electrode pattern Px located above the multiple second electrode patterns Py would become the same as the first electrode pattern Px located right of the multiple second electrode patterns Py, after rotating with 90 degrees to the left, the first electrode pattern Px located below the multiple second electrode patterns Py would become the same as the first electrode pattern Px located left of the multiple second electrode patterns Py, and two columns of the first electrode patterns Px located on the column direction are symmetrical with respect to a first axis A, and two rows of the first electrode patterns Px located on the row direction are symmetrical with respect to a second axis B, the first axis A and the second axis B respectively are central axes of the multiple second electrode patterns Py arranged in a rectangular array on the column direction and on the row direction.
Assuredly, in other embodiments of the invention, two columns of first electrode patterns Px located on the column direction may be the same, and two rows of first electrode patterns Px located on the row direction are the same.
The multiple first electrode patterns Px and the multiple second electrode patterns Py of the embodiment respectively are made of ITO (Indium Tin Oxide) or other transparent conducting materials, and one of the multiple first electrode patterns Px formed by one first sub-electrode pattern Px1 and one second sub-electrode pattern Px2 is used as a sensing unit of the conductive layer structure 10 (i.e., touch screen), each of the multiple second electrode pattern Py is used as a sensing unit of the conductive layer structure 10 (i.e., touch screen). Moreover, the multiple first electrode patterns Px located on an edge region of the conductive layer structure 10 are equivalent to an edge region of the touch screen.
Further referring to
The first electrode pattern Px of the embodiment is equivalent to increase a contact area between electrode patterns in a sensing unit, when finger 21 slides around the edge region of the touch screen, a capacitance change between electrode patterns of the edge region is smaller, the capacitance change sliding from one touch point to another touch point is consistent with a linear change, thus it is able to accurately judge a sliding track of the finger 21.
Based on the objective of the invention, embodiments of the invention can further dispose a first electrode pattern of the conductive layer structure 10 with other structures, as shown in
An embodiment of the invention further provides a liquid crystal display device with touch-sensing function, includes a display assembly and a touch-sensing assembly, the display assembly and the touch-sensing assembly share a common electrode, the touch-sensing assembly includes the conductive layer structure 10 above mentioned disposed opposite to the common electrode.
On this basis, the foregoing discussion only is some embodiments of the invention, but it is not therefore limited to the protection scope of the invention, any equivalent structures or equivalent processes made according to the specification and the accompanying drawings of the invention, such as the mutual combination of the technical characteristics of each embodiment, or directly or indirectly used in other related technical field, should be included within the protection scope of the invention.
Number | Date | Country | Kind |
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2015103903809 | Jul 2015 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2015/084311 | 7/17/2015 | WO | 00 |