The disclosure relates to display devices.
Patent Literature 1 discloses technology for arranging driver unit circuits outside a curved edge of a display section (i.e., in a non-display section).
Patent Literature 1: Japanese Unexamined Patent Application Publication, Tokukai, No. 2009-122636
Conventional techniques entail an undesirable increase in the area of the non-display section (frame section).
The disclosure, in an aspect thereof, is directed to a display device including: a driver outside a display area; a special-shape portion on an edge of the display area, the special-shape portion being shaped like a line that is curved or oblique to an extension direction of signal lines in the display area; a plurality of first-type circuit blocks outside the special-shape portion, each of the first-type circuit blocks including a unit circuit for the driver in a rectangular region having a first side parallel to the extension direction and a second side perpendicular to, and shorter than, the first side; and a plurality of second-type circuit blocks outside the special-shape portion, each of the second-type circuit blocks including a unit circuit for the driver in a rectangular region obtained by rotating the previous rectangular region by 90°.
The disclosure, in an aspect thereof, is capable of reducing the frame area of a display device with a specially shaped display section and restraining circuit elements from having properties that vary from one unit circuit to the other.
Throughout the following description, expressions like “component A is in the same layer as component B” indicate that components A and B are formed in the same process or step, expressions like “component A underlies/is below component B” indicate that component A is formed in an earlier process or step than component B, and expressions like “component A overlies/is on or above component B” indicate that component A is formed in a later process or step than component B.
To manufacture a flexible display device, as shown in
Next, the bottom surface of the resin layer 12 is irradiated with a laser beam via the support substrate to reduce binding force between the support substrate and the resin layer 12 so that the support substrate can be detached from the resin layer 12 (step S7). Next, a bottom surface film 10 is attached to the bottom surface of the resin layer 12 (step S8). Next, a laminate including the bottom surface film 10, the resin layer 12, the barrier layer 3, the TFT layer 4, the light-emitting element layer 5, and the sealing layer 6 is divided into a plurality of individual pieces (step S9). Next, a functional film 39 is attached to the obtained individual pieces (step S10). Next, an electronic circuit board (e.g., IC chip) is mounted to a frame area NA outside a display area DA (see
The resin layer 12 is made of, for example, polyimide. The bottom surface film 10 is made of, for example, polyethylene terephthalate (PET).
The barrier layer 3 prevents foreign objects such as water and oxygen from reaching the TFT layer 4 and the light-emitting element layer 5. The barrier layer 3 may include, for example, a silicon oxide film, a silicon nitride film, a silicon oxynitride film, or a stack of such films. These films can be formed by CVD.
The TFT layer 4 includes: a semiconductor film 15; an inorganic insulating film 16 (gate insulating film) overlying the semiconductor film 15; a gate electrode GE overlying the inorganic insulating film 16; an inorganic insulating film 18 overlying the gate electrode GE; a capacitor electrode CE overlying the inorganic insulating film 18; an inorganic insulating film 20 overlying the capacitor electrode CE; a source line SH overlying the inorganic insulating film 20; and a planarization film 21 (interlayer insulating film) overlying the source line SH.
The semiconductor film 15 is made of, for example, a low-temperature polysilicon (LTPS) or an oxide semiconductor. A thin film transistor Tr (TFT) is structured to include the semiconductor film 15, the inorganic insulating film 16, and the gate electrode GE.
The gate electrode GE, the capacitor electrode CE, and the source line SH are made of, for example, a monolayer film of at least one of metals of aluminum (Al), tungsten (W), molybdenum (Mo), tantalum (Ta), chromium (Cr), titanium (Ti), and copper (Cu) or a stack of such films.
The inorganic insulating films 16, 18, and 20 may be made of, for example, a silicon oxide (SiOx) film or a silicon nitride (SiNx) film formed by, for example, CVD or a stack of such films. The planarization film 21 may be made of, for example, a photosensitive organic material, such as polyimide or acrylic, that can be provided by coating.
The light-emitting element layer 5 (e.g., organic light-emitting diode layer) includes: an anode 22 overlying the planarization film 21; an electrically insulating anode cover film 23 covering an edge of the anode 22; an EL (electroluminescence) layer 24 overlying the anode 22; and a cathode 25 overlying the EL layer 24. A subpixel circuit includes a light-emitting element ES and a control circuit for controlling the light-emitting element ES. The light-emitting element ES (e.g., OLED or organic light-emitting diode) includes the insular anode 22, the EL layer 24, and the cathode 25. The anode cover film 23 may be made of, for example, a photosensitive organic material, such as polyimide or acrylic, that can be provided by coating.
The EL layer 24 includes, for example, a stack of a hole injection layer, a hole transport layer, a light-emitting layer, an electron transport layer, and an electron injection layer that are provided in this sequence on an underlying layer. An insular light-emitting layer is formed for each subpixel by vapor deposition or inkjet technology. The other layers are formed insular or provided as common layers for all the subpixels (common layers). One or more of the hole injection layer, the hole transport layer, the electron transport layer, and the electron injection layer may be omitted.
The anode 22 includes, for example, a stack of ITO (indium tin oxide) and either Ag (silver) or a Ag-containing alloy and is light-reflective. The cathode 25 may be made of a transparent, electrically conducting material such as Mg/Ag alloy (super thin film), ITO (indium tin oxide), or IZO (indium zinc oxide).
If the light-emitting element layer 5 is an OLED layer, holes and electrons recombine in the EL layer 24 owing to the drive current flowing between the anode 22 and the cathode 25, to produce excitons that fall to the ground state to emit light. Since the cathode 25 is transparent, and the anode 22 is light-reflective, the light emitted by the EL layer 24 travels upwards, thereby achieving “top emission.”
The light-emitting element layer 5 is not necessarily a part of an OLED element and may alternatively be a part of an inorganic light-emitting diode or a part of a quantum dot light-emitting diode.
The sealing layer 6 is transparent and includes: an inorganic sealing film 26 covering the cathode 25; an organic sealing film 27 overlying the inorganic sealing film 26; and an inorganic sealing film 28 overlying the organic sealing film 27. The sealing layer 6 covering the light-emitting element layer 5 prevents foreign objects such as water and oxygen from reaching the light-emitting element layer 5.
The inorganic sealing film 26 and the inorganic sealing film 28 may include, for example, a silicon oxide film, a silicon nitride film, a silicon oxynitride film, or a stack of such films. These films can be formed by CVD. The organic sealing film 27 is a transparent organic film with a planarization effect and can be made of an organic material, such as acrylic, that can be provided by coating.
The bottom surface film 10 imparts excellent flexibility to the display device when attached to a bottom surface of the resin layer 12 after the support substrate is detached. The bottom surface film 10 is made of, for example, PET. The functional film 39 has, for example, an optical compensation function, a touch sensor function, and a protection function.
The description has so far discussed the manufacture of a flexible display device. To manufacture a non-flexible display device, the process proceeds, for example, from step S5 to step S9 in
Outside the special-shape portion JS, there is provided a plurality of first-type circuit blocks KBx each including unit circuits UC in the scan signal line driver GD in a rectangular region having a first side Fa (long side) that is parallel to the x-direction and a second side Fb (short side) that is perpendicular to the first side Fa and shorter than the first side Fa, and there is also provided a plurality of second-type circuit blocks KBy each including unit circuits UC in the scan signal line driver GD in a rectangular region obtained by rotating the previous rectangular region by 90°.
The first-type circuit blocks KBx are connected in the y-direction, thereby forming a first-type circuit unit KUx. The second-type circuit blocks KBy are connected in the x-direction, thereby forming a second-type circuit unit KUy. The first-type circuit units KUx and the second-type circuit units KUy are arranged along and outside the special-shape portion JS.
In
Referring to
Referring to
The layout (shapes and locations) of the circuit elements (e.g., transistors, capacitors, resistors, wires, and terminals) in the unit circuits UC in the second-type circuit block KBy is identical to that of the circuit elements in the unit circuits UC in the first-type circuit block KBx if the latter is rotated counterclockwise by 90°.
The unit circuit UC is provided in rectangular regions KAx and KAy (regions surrounded by dotted lines in
Rectangular regions each having the long sides Fa and FA and the short sides Fb and FB (see
The long side FA, on which there exists no adjoining unit circuit, may be specified as a side separated from the outermost element by a distance equal to the distance by which the outermost element is separated from the side on which there exists an adjoining unit circuit. The short sides Fb and FB may be specified as the outermost ones of the wires commonly pulled into the unit circuits.
The first-type circuit block KBx and the second-type circuit block KBy are connected to each other by a clock-signal-use connecting line ck1 connecting the clock signal lines CK1 thereof to each other, a clock-signal-use connecting line ck2 connecting the clock signal lines CK2 thereof to each other, a power-supply-use connecting line pw1 connecting the power supply lines PW1 thereof to each other, a power-supply-use connecting line pw2 connecting the power supply lines PW2 thereof to each other, a SET-signal-use connecting line ST for transmitting a SET signal, and a RESET-signal-use connecting line RT for transmitting a RESET signal.
The two adjoining first-type circuit blocks KBx in the circuit unit KUx are connected to each other by a SET-signal-use connecting line and a RESET-signal-use connecting line (neither shown). The two adjoining second-type circuit blocks KBy in the circuit unit KUy are connected to each other by a SET-signal-use connecting line and a RESET-signal-use connecting line (neither shown).
Embodiment 1 is capable of reducing the frame area NA outside the special-shape portion JS and restraining the circuit elements from having properties that vary from one unit circuit to the other because the unit circuits UC in the scan signal line driver reside in the first-type circuit blocks KBx and the second-type circuit blocks KBy. If the circuit blocks are arranged in a radial fashion outside the special-shape portion JS, the properties of the circuit elements can vary greatly from one unit circuit to the other.
In addition, the clock-signal-use connecting lines ck1 and ck2, the power-supply-use connecting lines pw1 and pw2, the SET-signal-use connecting line ST, and the RESET-signal-use connecting line RT are routed like stairs (a shape with 90° bends from the x-direction to the y-direction and 90° bends from the y-direction to the x-direction). This structure can further reduce the frame area NA.
Referring to
Outside a part of the special-shape portion JS that has a tangent making an acute angle in a prescribed range (e.g., a range from 30° to 60° that spans across θe) with respect to the x-direction, the circuit units KUx and the circuit unit KUy may be arranged alternately along the special-shape portion JS.
The provision shown in
The increase in the width of the power supply main lines MP1 and MP2 and the clock main lines MC1 and MC2 by using the stair-like regions formed between the first-type circuit blocks KBx and the second-type circuit blocks KBy can reduce the resistance of these lines, thereby alleviating transmission load.
The special-shape portion JS may include both curved-line-like segments and oblique-line-like segments and may include a plurality of curved-line-like segments with different curvatures.
As shown in
As another alternative, the circuit units KUx including the first-type circuit blocks KBx and the circuit units KUy including the second-type circuit blocks KBy may be disposed outside the special-shape portion JS as shown in
As a further alternative, the circuit units KUx including the first-type circuit blocks KBx, the circuit units KUy including the second-type circuit blocks KBy, and circuit units KUY including second-type circuit blocks KBY may be disposed outside the special-shape portion JS as shown in
The display device in accordance with the present embodiment may include any electro-optical elements the luminance and transmittance of which are controlled through current. The display device in accordance with the present embodiment may be, for example, an organic EL (electroluminescence) display device including OLEDs (organic light-emitting diodes) as electro-optical elements, an inorganic EL display device including inorganic light-emitting diodes as electro-optical elements, or a QLED display device including QLEDs (quantum dot light-emitting diodes) as electro-optical elements.
A display device including: a driver (e.g., a scan signal line driver, a light-emission signal line driver, or a data signal line driver) outside a display area; a special-shape portion on an edge of the display area, the special-shape portion being shaped like a line that is curved or oblique to an extension direction of signal lines in the display area; a plurality of first-type circuit blocks outside the special-shape portion, each of the first-type circuit blocks including a unit circuit for the driver in a rectangular region having a first side parallel to the extension direction and a second side perpendicular to, and shorter than, the first side; and a plurality of second-type circuit blocks outside the special-shape portion, each of the second-type circuit blocks including a unit circuit for the driver in a rectangular region obtained by rotating the previous rectangular region by 90°.
The display device of, for example, aspect 1, wherein the unit circuits include a plurality of circuit elements, and the circuit elements in the second-type circuit blocks have a layout obtained by rotating by 90° a layout of the circuit elements in the first-type circuit blocks.
The display device of, for example, aspect 1 or 2, further including, along the special-shape portion: circuit units each including the first-type circuit blocks arranged next to each other in a direction perpendicular to the extension direction; and circuit units each including the second-type circuit blocks arranged next to each other in the extension direction.
The display device of, for example, aspect 3, wherein the first-type circuit blocks include either one or both of a clock signal line extending in the direction perpendicular to the extension direction and a power supply line extending in the direction perpendicular to the extension direction, and the second-type circuit blocks include either one or both of a clock signal line extending in the extension direction and a power supply line extending in the extension direction.
The display device of, for example, aspect 3, wherein either the first-type circuit blocks or the second-type circuit blocks are arranged next to each other such that the circuit units have a square periphery.
The display device of, for example, aspect 3, wherein those circuit units that are outside an end part of the special-shape portion include a different number of first-type circuit blocks or second-type circuit blocks than does those circuit units that are outside a middle part of the special-shape portion.
The display device of, for example, aspect 3, wherein the special-shape portion is shaped like a curved line, those circuit units each of which includes N first-type circuit blocks or N second-type circuit blocks are disposed outside a part of the special-shape portion that has a tangent making an acute angle in a prescribed range with respect to the extension direction, and those circuit units each of which includes M first-type circuit blocks or M second-type circuit blocks are disposed outside a part of the special-shape portion that has a tangent making an acute angle outside the prescribed range with respect to the extension direction, where N and M are integers greater than or equal to 2, and M is greater than N.
The display device of, for example, aspect 4, wherein the first-type circuit blocks and the second-type circuit blocks are connected by a connecting line routed like stairs.
The display device of, for example, aspect 8, wherein the connecting line transmits a clock signal, a SET signal, a RESET signal, or a power supply voltage.
The display device of, for example, aspect 4, further including, outside the special-shape portion, a main line shaped like a line that is curved or oblique to the extension direction, wherein the first-type circuit blocks and the second-type circuit blocks are connected to the main line.
The display device of, for example, aspect 10, wherein the main line transmits a clock signal or a power supply voltage.
The display device of, for example, aspect 10, wherein the first-type circuit blocks and the second-type circuit blocks are connected by a connecting line shaped like a line that is curved or oblique to the extension direction.
The display device of, for example, aspect 3, wherein those circuit units each of which includes the first-type circuit blocks and those circuit units each of which includes the second-type circuit blocks are arranged alternately outside a part of the special-shape portion that has a tangent making an acute angle in a prescribed range with respect to the extension direction.
The display device of, for example, aspect 5, wherein the circuit units each include six first-type circuit blocks or six second-type circuit blocks arranged next to each other.
The display device of, for example, any one of aspects 1 to 14, wherein the unit circuits are for a scan signal line driver, a light-emission signal line driver, or a data signal line driver, and the signal lines are electrically connected to outputs of the unit circuits.
The display device of, for example, aspect 15, wherein the signal lines are scan signal lines electrically connected to outputs of the unit circuits for the scan signal line driver.
The display device of, for example, aspect 16, wherein the unit circuits correspond one-to-one to the scan signal lines.
The display device of, for example, any one of aspects 1 to 17, wherein the special-shape portion is shaped like an externally convex, curved line.
The display device of, for example, any one of aspects 1 to 18, wherein the second-type circuit blocks are obtained by rotating the first-type circuit blocks clockwise or counterclockwise by 90°.
The display device of, for example, any one of aspects 1 to 19, wherein the unit circuits each include a flip-flop and an output circuit connected to the flip-flop, and the rectangular regions each have two parallel sides each specified by a clock signal line or a power supply line and two parallel sides sandwiching the flip-flop and the output circuit.
The display device of, for example, any one of aspects 1 to 20, further including: light-emitting elements; and a subpixel circuit connected to the light-emitting elements, wherein the driver is provided in a same layer as the subpixel circuit.
The display device of, for example, aspect 17, wherein the unit circuits supply a scan signal to the scan signal lines.
Filing Document | Filing Date | Country | Kind |
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PCT/JP2018/015413 | 4/12/2018 | WO | 00 |