Display device
10034377 ยท 2018-07-24
Assignee
Inventors
Cpc classification
H05K1/0353
ELECTRICITY
H05K1/142
ELECTRICITY
H05K3/007
ELECTRICITY
H05K2201/042
ELECTRICITY
H05K3/323
ELECTRICITY
H05K2201/09909
ELECTRICITY
H05K2203/0554
ELECTRICITY
H05K2201/058
ELECTRICITY
H05K2201/10681
ELECTRICITY
H05K3/361
ELECTRICITY
H05K1/147
ELECTRICITY
H05K2203/016
ELECTRICITY
International classification
Abstract
A display device includes a flexible insulating substrate, an insulating layer on the insulating substrate, and a plurality of terminals made of a conductive material on the insulating layer. The insulating layer is disposed outside the area located between the terminals. The insulating substrate has a groove between the terminals.
Claims
1. A display device comprising: a flexible insulating substrate where an image display area is located; an insulating layer on the flexible insulating substrate; and a plurality of terminals made of a conductive material on the insulating layer, the insulating layer being located between the flexible insulating substrate and the terminals, wherein the insulating layer overlaps the terminals and is not located between the terminals, and the flexible insulating substrate has a groove between the plurality of terminals.
2. The display device according to claim 1, further comprising a counter substrate bonded to a side of the flexible insulating substrate, so as not to cover a terminal area on which the plurality of terminals are disposed, the insulating layer disposed at the side, wherein the groove is formed on at least a part of a region of the flexible insulating substrate, the region being in the terminal area and not overlapping with the plurality of terminals.
3. The display device according to claim 1, further comprising a flexible wiring substrate joined to the plurality of terminals via an anisotropic conductive material, wherein the anisotropic conductive material is filled into a gap between the flexible wiring substrate and the groove.
4. The display device according to claim 3, wherein the groove is formed also between a tip of each of the terminals and a leading edge portion of the flexible insulating substrate, away from the leading edge portion of the flexible insulating substrate.
5. The display device according to claim 4, wherein the anisotropic conductive material is disposed so as not to lie on the leading edge portion of the flexible insulating substrate.
6. A display device comprising: a substrate having a terminal area on which a plurality of terminals are arranged; an image display area located above the substrate; and an insulating layer on the substrate, wherein the terminal area includes a first area at which the plurality of terminals are located and a second area which is located between the terminals and does not overlap with the terminals, the second area is an entire area between the terminals, on the first area, the insulating layer is located between the plurality of terminals and the substrate, and on the second area, the insulating layer is not located.
7. The display device according to claim 6, further comprising a flexible wiring substrate joined to the plurality of terminals via an anisotropic conductive material, wherein the anisotropic conductive material is located at least between the flexible wiring substrate and the second area.
8. The display device according to claim 6, wherein the substrate has a first thickness that is a thickness of the first area and a second thickness that is a thickness of the second area, and the first thickness is greater than the second thickness.
9. The display device according to claim 8, wherein the plurality of terminals are arranged in a first direction, the substrate has a side extending in the first direction in the terminal area and a rib located along the side, and the lib has a thickness greater than the second thickness.
10. The display device according to claim 8, wherein the plurality of terminals are arranged in a first direction, the substrate has a side extending in the first direction in the terminal area, each of the plurality of terminals has a tip facing the side, the terminal area includes a third area between the side and the tips, the substrate has a third thickness that is a thickness of the third area, and the third thickness is greater than the second thickness.
11. The display device according to claim 10, wherein the second area includes an area located between the third area and the tips.
12. The display device according to claim 11, further comprising a flexible wiring substrate joined to the plurality of terminals via an anisotropic conductive material, wherein the anisotropic conductive material is located at least between the flexible wiring substrate and the second area and is not located between the flexible wiring substrate and the third area.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(11) The following describes an embodiment of the present invention (hereinafter, referred to as this embodiment) with reference to the accompanying drawings. The disclosure herein is merely an example, and appropriate modifications coming within the spirit of the present invention, which are easily conceived by those skilled in the art, are intended to be included within the scope of the invention as a matter of course. In some drawings, the widths, the thicknesses, the shapes, and other characteristics of various parts are schematically shown for clarity of illustration, as compared to actual configurations. However, such schematic drawings are merely examples and are not intended to limit the present invention. In the present specification and drawings, some elements identical or similar to those previously shown are denoted by the same reference signs as the previously-shown elements, and thus are not described in detail herein as appropriate.
(12) First, a general configuration of a display device 100 according to this embodiment is described with reference to
(13) As shown in
(14) The insulating substrate 10 is a flexible substrate. An insulating layer 50 containing silicon is formed on the insulating substrate 10, and a plurality of terminals 40 made of a conductive material are disposed on the insulating layer 50. Although polyimide is used as the material for the insulating substrate in this embodiment, the present invention is not limited to this embodiment. The material for the insulating substrate may be appropriately selected depending on what properties are required for the substrate, such as transparency and heat resistance.
(15) The terminals 40 each extend along the longitudinal direction of the insulating substrate 10 in an area outside an image display area S of the insulating substrate 10. The terminals 40 are substantially evenly spaced in the transverse direction (the horizontal direction in
(16) The counter substrate 20 is disposed to face the insulating substrate 10. Specifically, the counter substrate 20 is bonded to the side of the insulating substrate 10 on which the terminals 40 are disposed, so as not to cover the terminal area on which the terminals 40 are disposed. Examples of the counter substrate 20, which is disposed facing the insulating substrate 10, include a color filter substrate that allows a color of a specific wavelength to pass through it and blocks colors of the other wavelengths from passing through it.
(17) The flexible wiring substrate 30 is joined to the terminals 40, which are disposed on the insulating substrate 10, via an anisotropic conductive material 60 (see
(18) The following describes a process for manufacturing the display device 100 according to this embodiment with reference to
(19) First, the insulating substrate 10 is prepared. Specifically, on the glass substrate 200, the insulating substrate 10 is formed as a resin layer made of polyimide. The rigid glass substrate 200, on which the flexible insulating substrate 10 is thus formed, enables each layer forming the display device 100 to be stably stacked in the subsequent manufacturing process steps.
(20) Subsequently, the insulating layer 50 containing silicon nitride (SiN), silicon oxide (SiO), or the like is formed on the insulating substrate 10 formed on the glass substrate 200.
(21) Then, the plurality of terminals 40 made of a conductive material are formed on the insulating layer 50. Each of the terminals 40 has a metal portion 41 and an indium tin oxide layer (hereinafter, simply an ITO layer) 42. The metal portion 41 is formed of metal, such as titanium (Ti), aluminum (Al), or molybdenum (Mo), a stack of them, or an alloy of them. The ITO layer 42 prevents corrosion of the metal portion 41.
(22) The substrate including the insulating substrate 10, the insulating layer 50, the terminals 40, and thin film transistors (TFTs) not shown is what is called a TFT substrate. The TFT substrate has the image display area S (the area inside the dot-dash line in
(23) Through the above steps, the multilayer substrate shown in
(24) After that, the counter substrate 20 is bonded to the side of the insulating substrate 10 on which the terminals are disposed, so as not to cover the terminal area on which the terminals 40 are disposed (see
(25) In a method for manufacturing the display device 100 according to this embodiment, moreover, a portion of the insulating layer 50 that is located between the terminals is removed.
(26) In addition, a groove 10a is carved on an area of the insulating substrate 10 that is located between the terminals 40. The groove 10a is formed using the counter substrate 20 and the terminals 40 as a mask. The groove 10a is formed so as not to penetrate the insulating substrate 10. The groove 10a is formed, for example, by irradiating the insulating substrate 10 with ultraviolet (UV) laser light.
(27) In this embodiment, the groove 10 is formed on the surface of the insulating substrate 10 entirely around the terminals 40. Specifically, the groove 10a is formed between the terminals 40 adjacent to each other (the area A in
(28) Subsequently, the anisotropic conductive material 60 is provided between the insulating substrate 10 and the flexible wiring substrate 30. The anisotropic conductive material 60 is a thin film containing a thermosetting resin 61 and conductive particles 62 dispersed in the thermosetting resin 61. In this embodiment, a filmy anisotropic conductive film (ACF) is used as the anisotropic conductive material, but the present invention is not limited to this embodiment. Alternatively, a pasty anisotropic conductive paste (ACP) may be used.
(29) First, the anisotropic conductive material 60 is provided between the insulating substrate 10 and the flexible wiring substrate 30, and then caused to flow by heating under pressure. After that, the thermosetting resin 61 that has cured joins the insulating substrate 10 and the flexible wiring substrate 30 via the anisotropic conductive material 60. As shown in
(30) The flexible wiring substrate 30 has terminals 70 on its surface facing the insulating substrate 10. The terminals 40 on the insulating substrate 10 and the terminals 70 on the flexible wiring substrate 30 are electrically coupled to each other via the conductive particles 62. The diameter of the conductive particles 62 contained in the anisotropic conductive material 60 is sufficiently smaller than the distance between the terminals 40 adjacent to each other.
(31) After that, the process for manufacturing the display device 100 is completed by peeling the glass substrate 200 away from the insulating substrate 10.
(32) In manufacturing a display device, the thermosetting resin of the anisotropic conductive material sometimes escapes from the insulating substrate, through a side surface of the insulating substrate, to the boundary between the insulating substrate and the glass substrate. In that case, the thermosetting resin that has cured joins the insulating substrate and the glass substrate, which affects the step of peeling the insulating substrate away from the glass substrate. The display device 100 according to this embodiment is formed to prevent the thermosetting resin 61 from escaping in such a way. Specifically, as described above, the insulating substrate 10 has the groove 10a formed thereon between the terminals 40. The groove 10a thus formed allows enough space to be filled with the anisotropic conductive material 60.
(33) In the display device 100 manufactured through the above process, the groove 10a increases the area of contact between the anisotropic conductive material 60 and the insulating substrate 10. Accordingly, adhesion between the anisotropic conductive material 60 and the insulating substrate 10 is improved. Consequently, the flexible wiring substrate 30 is more firmly joined to the insulating substrate 10.
(34) The present invention is not limited to the display device 100 described above, and various modifications may be made thereto.
(35) Use of the insulating substrate 110 shown in
(36) As shown in
(37) In the display device according to the modification of this embodiment, such a configuration allows enough space to be filled with the anisotropic conductive material 60 and thus prevents the anisotropic conductive material 60 from escaping from the top of the insulating substrate 110.
(38) While there have been described what are at present considered to be certain embodiments of the invention, it will be understood that various modifications may be made thereto, and it is intended that the appended claims cover all such modifications as fall within the true spirit and scope of the invention.