The present invention relates to conductive films, and more particularly relates to a transparent conductive film.
The transparent conductive film is a conductive film which exhibits excellent properties of high conductivity and good transmittance for visible light, thus it has a broad application prospects. Currently, the transparent conductive film has been successfully used in fields of liquid crystal displays, touch panels, electromagnetic shielding, transparent surface heater of transparent electrode of the solar cell, and flexible light-emitting devices.
The conventional transparent conductive film usually needs to be patterned through exposure, development, etching, cleaning, and other procedures, such that a conductive region and a transmission region are formed on the surface of the substrate according to the pattern. Or the metal mesh can be formed on a specific region on the substrate by printing. The grid line is made of metal having a good conductivity and not transparent, and the linewidth of the grid line is less than the resolution of the human eye. The transmission region is the mesh formed by grid lines, the square resistance and the transmittance of the transparent conductive film is controlled by adjusting the shape of the mesh. In performance tests for the conductive film, adhesion of the conductive film can affect properties of the conductive film, therefore the adhesion of the metal mesh on the substrate is an important parameter in the performance tests. Metal grid lines are generally straight, which results in the adhesion of the metal mesh is not stable enough, and a poor adhesion of the conductive film will seriously affect the performances of the conductive film.
It is an object of the present invention to provide a transparent conductive film with a better adhesion of a conductive layer.
A transparent conductive film includes: a substrate defining a mesh-shaped groove, the mesh-shaped groove forming a mesh; and a conductive layer formed by conductive material filled in the mesh; wherein an edge line of the mesh-shaped groove is a curve or a polyline which is configured to increase a contact area between the conductive material and an edge of the mesh-shaped groove.
In one embodiment, the polyline is a rectangular wave line.
In one embodiment, the polyline is a zigzag line.
In one embodiment, the polyline is a wave line.
In one embodiment, a cell of the mesh is selected from the group consisting of hexagonal, rectangular, diamond, and irregular polygon.
In one embodiment, the curve or the polyline oscillates with a constant amplitude along a straight line edge of the hexagonal, rectangular, diamond or irregular polygon.
In one embodiment, the mesh is evenly distributed on a surface of the conductive layer.
In one embodiment, a grid line between two nodes of the mesh forms an angle θ with a horizontal X axis, the angle θ is evenly-distributed, the uniform distribution refers to the statistic value θ of each of the random grids; then gathering statistics for a probability pi of the grid lines falling within each of angle intervals at a stepper angle 5°, thus obtaining p1, p2. . . p36 in the 36 angle intervals within 0˜180°; pi satisfies that the standard deviation is less than 20% of an arithmetic mean.
A transparent conductive film includes: a substrate; an imprint adhesive layer attached to the substrate, the imprint adhesive layer defining a mesh-shaped groove, the mesh-shaped groove forming a mesh; and a conductive layer formed by conductive material filled in the mesh; wherein an edge line of the mesh-shaped groove is a curve or a polyline which is configured to increase a contact area between the conductive material and an edge of the mesh-shaped groove.
In one embodiment, the polyline is a rectangular wave line.
In one embodiment, the polyline is a zigzag line.
In one embodiment, the polyline is a wave line.
In one embodiment, a cell of the mesh is selected from the group consisting of hexagonal, rectangular, diamond, and irregular polygon.
In one embodiment, the curve or the polyline oscillates with a constant amplitude along a straight line edge of the hexagonal, rectangular, diamond or irregular polygon.
In one embodiment, the mesh is evenly distributed on a surface of the conductive layer.
In one embodiment, a grid line between two nodes of the mesh forms an angle θ with a horizontal X axis, the angle θ is evenly-distributed, the uniform distribution refers to the statistic value θ of each of the random grids; then gathering statistics for a probability pi of the grid lines falling within each of angle intervals at a stepper angle 5°, thus obtaining p1, p2 . . . p36 in the 36 angle intervals within 0˜180°; pi satisfies that the standard deviation is less than 20% of an arithmetic mean.
In one embodiment, the transparent conductive film further includes a tackifier layer disposed between the substrate and the imprint adhesive layer.
In the described transparent conductive film, the conductive layer includes the conductive material filled in the mesh-shaped groove, and the edge line of the mesh-shaped groove is a curve or a polyline, such as wave line, zigzag line, rectangular wave line, or other non-linear lines. For the conductive region with the same size, the area of edge of the conductive material in contact with the trench increases, and the friction is increased, which leads to a larger adhesion of the conductive material, and a stable performance of the transparent conductive film is guaranteed.
The invention will be described in further detail below in conjunction with the drawing.
Referring to
The substrate 110 has a thickness of 188 μm. The substrate 110 can be made of polyethylene terephthalate (PET). In alternative embodiments, it can be made of other transparent plastic.
The tackifier layer 120 is bonded to the substrate 110 and is configured to better bond the substrate layer 110 and the imprint adhesive layer 130 together. In alternative embodiments, the tackifier layer 120 can be omitted, such that the imprint adhesive layer 130 is disposed on the substrate 110 directly.
The imprint adhesive layer 130 is bonded to the tackifier layer 120. The imprint adhesive layer 130 is made of acrylic material, UV glue or imprint glue, etc. The imprint adhesive layer 130 defines a mesh-shaped groove 14 by imprinting. The mesh-shaped groove 14 has a depth of 3 μm, a width of 2.2 μm. The mesh-shaped groove forms a mesh. An edge line of the mesh-shaped groove 14 can be a curve or a polyline, such as wave line, zigzag line, rectangular wave line, or other non-linear lines. Each cell forming the mesh has a shape selected from the group consisting of hexagonal, rectangular, diamond, and irregular polygon. The curve or the polyline oscillates with a constant amplitude along a straight line edge of the hexagonal, rectangular, diamond or irregular polygon. In alternative embodiments, the curve or the polyline can oscillates back and forth along a straight line edge of the hexagonal, rectangular, diamond or irregular polygon. In one embodiment, the mesh is evenly distributed on a surface of the conductive layer 140, which satisfies the condition: a grid line between two nodes of the mesh forms an angle θ with a horizontal X axis, the angle θ is evenly-distributed, the uniform distribution refers to the statistic value θ of each of the random grids; then gathering statistics for a probability pi of the grid lines falling within each of angle intervals at a stepper angle 5°, thus obtaining p1, p2 . . . p36 in the 36 angle intervals within 0˜180°; pi satisfies that the standard deviation is less than 20% of an arithmetic mean.
The conductive layer 140 is formed by a conductive material filled in the mesh-shaped groove 14. In the illustrated embodiment, the conductive material is silver. The thickness of the conductive material is less than the depth of the mesh-shaped groove 14. For example, if the depth of the mesh-shaped groove 14 is 3 μm, the thickness of the conductive material is about 2 μm.
Referring to
In the described transparent conductive film, the conductive layer includes the conductive material filled in the mesh-shaped groove, and the interconnected conductive material forms a conductive region. The mesh-shaped groove forms the mesh. The edge line of the mesh-shaped groove is a curve or a polyline, such as wave line, zigzag line, rectangular wave line, or other non-linear lines. The cell forming the mesh has a shape selected from the group consisting of hexagonal, rectangular, diamond, and irregular polygon. The curve or the polyline oscillates with a constant amplitude along a straight line edge of the hexagonal, rectangular, diamond or irregular polygon. For the conductive region with the same size, the area of edge of the conductive material in contact with the trench increases, and the friction is increased, which leads to a larger adhesion of the conductive material, and a stable performance of the transparent conductive film is guaranteed.
The following specific embodiments of the surface structure of the conductive layer 140 will be described in details.
According to the described Examples, for the conductive region with the same size, the area of edge of the conductive material in contact with the trench increases, and the friction is increased, which leads to a larger adhesion of the conductive material, and a stable performance of the transparent conductive film is guaranteed.
Although the invention has been described in language specific to structural features and/or methodological acts, it is to be understood that the invention defined in the appended claims is not necessarily limited to the specific features or acts described. Rather, the specific features and acts are disclosed as sample forms of implementing the claimed invention.
Number | Date | Country | Kind |
---|---|---|---|
201310044167.3 | Feb 2013 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/CN13/78938 | 7/5/2013 | WO | 00 | 8/26/2013 |