The application claims priority to Taiwan Application No. 94144664, filed Dec. 16, 2005, the content of which is incorporated by reference.
The description relates to flat panel displays.
An organic light-emitting display can have a wide viewing angle, a high response speed, and a low power consumption.
In one aspect, in general, a display includes a plurality of pixel circuits, each pixel circuit including a light emitting device, a driving device to drive the light emitting device, and a storage device to store pixel data for controlling the driving device. The display also includes a plurality of switches external to the plurality of pixel circuits, each switch being connected in series with a corresponding one or more of the light emitting devices.
Implementations of the display can include one or more of the following features. Each switch is configured to prevent current from flowing in the corresponding one or more light emitting devices when corresponding storage devices are being charged with the pixel data. Each switch corresponds to the light emitting devices of at least two pixel circuits and prevents current from flowing in the light emitting devices when corresponding storage devices are being charged with the pixel data. The plurality of pixel circuits include rows of pixel circuits, and each switch prevents current from flowing in the light emitting devices of one of the rows when corresponding storage devices are being charged with the pixel data. The display includes spacers between rows of pixel circuits, each spacer having an upper portion that is wider than a lower portion, the lower portion being closer to a substrate on which the light emitting device is positioned.
Each light emitting device includes a light emitting layer positioned between a first electrode and a second electrode, and the first electrodes of the light emitting devices of the pixel circuits in each row are electrically coupled together. The first electrodes of the pixel circuits in each row are electrically coupled to a corresponding one of the switches. Each switch includes a thin film transistor. The light emitting device includes a first terminal and a second terminal, the first terminal is electrically coupled to the driving device, and the second terminal is electrically coupled to a corresponding one of the switches. Each switch is electrically coupled between the second terminals of corresponding light emitting devices and a constant voltage source or ground. The light emitting device includes a light emitting diode, the first terminal includes an anode, and the second terminal includes a cathode. The light emitting device includes an organic light emitting device.
In another aspect, in general, a display includes a plurality of pixel circuits, each pixel circuit including a light emitting device to emit light, a driving device to drive the light emitting device, and a storage device to store pixel data for controlling the driving device. The display includes a plurality of switches, each switch being connected in series with the light emitting devices of at least two pixel circuits to prevent current from flowing in the light emitting devices when corresponding storage devices are being charged with the pixel data.
Implementations of the display can include one or more of the following features. The light emitting device includes a light emitting diode having an anode and a cathode. For each pixel circuit, the anode is electrically connected to the driving device and the cathode is electrically connected to a corresponding switch.
In another aspect, in general, a display includes a plurality of pixel circuits, each pixel circuit including a light emitting device. The display also includes a switch electrically coupled to the light emitting devices of at least two pixels to control whether electric currents flow through the light emitting devices, the switch being connected in series with each of the at least two light emitting devices.
Implementations of the display can include one or more of the following features. The plurality of pixel circuits includes a row of pixel circuits, and the switch controls whether currents flow through the light emitting devices of all the pixel circuits in the row. Each light emitting device includes a light emitting layer positioned between a first electrode and a second electrode, and the first electrodes of the light emitting devices of the at least two light emitting devices are electrically connected to the corresponding switch.
In another aspect, in general, a method of operating a display includes controlling electric currents flowing through light emitting devices of a plurality of pixel circuits by using a plurality of switches that are positioned external to the plurality of pixel circuits, each switch controlling the electric currents that flow through the light emitting devices of at least two pixel circuits, each switch being connected in series with corresponding light emitting devices.
In another aspect, in general, a method of operating a display includes charging storage capacitors of a row of pixel circuits of a display, each pixel circuit including a driving transistor and a light emitting device, the light emitting devices of the row of pixel circuits being coupled to a common switch. The method also includes, while charging the storage capacitors of the row, turning off the switch to prevent current from flowing through the light emitting devices in the row of pixel circuits.
In another aspect, in general, a method of fabricating a display includes forming spacers above a substrate using negative photoresist patterning, the spacers having a wider upper portion and a narrower lower portion, the lower portion being closer to the substrate than the upper portion, and forming a light emitting layer in regions between the spacers.
In another aspect, in general, a pixel circuit in a flat panel display having a plurality of scan lines and a plurality of data lines, the pixel circuit including a first transistor, a second transistor, a third transistor, a capacitor, and a light emitting device. The first transistor has a first source/drain electrode coupled to a first voltage. The capacitor is coupled to the first source/drain electrode and a gate electrode of the first transistor. The second transistor includes a first source/drain electrode and a second source/drain electrode coupled to the gate electrode and a second source/drain electrode of the first transistor, respectively, and a gate electrode coupled to one of the scan lines. The third transistor includes a first source/drain electrode and a gate electrode coupled to the second source/drain electrode and the gate electrode of the second transistor, respectively, and a second source/drain electrode coupled to one of the data lines. The light emitting device includes an anode end coupled to the second source/drain electrode of the second transistor, and a cathode end coupled to a switch that determines whether the cathode end is coupled to a second voltage that is lower than the first voltage.
Implementations of the pixel circuit can include one or more of the following features. The light emitting device includes an organic light emitting diode.
In another aspect, in general, a flat panel display includes a plurality of scan lines, a plurality of data lines, and a plurality of pixel circuits each corresponding to one of the scan lines and one of the data lines. The display includes a plurality of cathode lines, in which the pixel circuits that are coupled to a common scan line are also coupled to a common cathode line. The display also includes a plurality of switch circuits each coupled to a corresponding cathode line, in which each of the switch circuits controls whether the corresponding cathode line is connected to a working voltage.
Implementations of the display can include one or more of the following features. The display includes a data line driving circuit for generating driving signals to be transmitted on the data lines. The data line driving circuit also generates control signals to control the switch circuits. The timing of the control signals for controlling the switch circuits have a relationship with the timing of the driving signals transmitted on the data lines. Each of the pixel circuits includes a light emitting device having an anode end and a cathode end, the anode end being electrically connected to a driving transistor, the cathode end being electrically connected to one of the cathode lines.
In another aspect, in general, a flat panel display, includes a transistor disposed on a substrate, the transistor including a drain electrode, and a first insulating layer disposed on the transistor, the first insulating layer defining a trench having an opening to expose the drain electrode of the transistor. An anode electrode is disposed on the first insulating layer, and a second insulating layer covers at least a portion of the anode electrode. At least two spacer structures are disposed on the second insulating layer at two sides of the anode electrode, each spacer structure having an upper portion that is wider than a lower portion, the lower portion being closer to the substrate than the upper portion. An organic light emitting layer is disposed above the second insulating layer in an area between the two spacer structures, and a cathode electrode is disposed above the light emitting organic layer in an area between the two spacer structures. A switch element is coupled to the cathode electrode for controlling whether to conduct a voltage to the cathode electrode.
Implementations of the display can include one or more of the following features. The anode electrode includes at least one of indium tin oxide, indium zinc oxide, and aluminum zinc oxide. The cathode electrode includes at least one of aluminum, calcium, and magnesium silver alloy.
Advantages of the displays and methods may include one or more of the following. The pixel circuits can have a smaller leakage current flowing from the light emitting devices while the storage capacitors are being charged with pixel data, improving the image quality of the display. The switch for controlling whether the light emitting device conducts current is positioned external to the pixel circuits, and each switch corresponds to the light emitting devices of multiple pixel circuits, so that the number of transistors in each pixel circuit can be reduced. The spacer structures have an inverted trapezoidal shape, allowing the light emitting layer and the cathode electrode to be formed without an additional mask, simplifying the manufacturing process.
The flat panel display 200 includes a scan line driving circuit 210 and a data line driving circuit 220. The scan line driving circuit 210 is coupled to the scan lines SL1-SLn for generating scanning signals. The scanning signals are transmitted to corresponding scan lines sequentially to activate the pixel circuits coupled to the scan lines. The data line driving circuit 220 includes driving chips IC1-ICm, which are used to send the driving current Idata to the pixel circuits (e.g., 201).
The data line driving circuit 220 generates control signals for controlling the switch circuits SW1 to SWn. For example, after chips IC1 to ICm send driving current Idata to write the pixel data to the first row of pixel circuits, the data line driving circuit 220 sends a control signal to turn on SW1 to enable the OLEDs in the first row to emit light.
A first source/drain electrode 322 and a gate electrode 324 of the transistor 302 are coupled to the second source/drain electrode 316 and the gate electrode 320 of the transistor 304, respectively. A second source/drain electrode 326 of the transistor 302 is coupled to a data line DLj, which can be one of the data lines DL1-DLn in
The pixel circuit 300 includes a light emitting device (LED) 308, which can be an organic light emitting device. In this example, the light emitting device 308 is a light emitting diode. An anode end 328 of the LED 308 is coupled to the first source/drain electrode 322 of the transistor 302, and a cathode end 334 of the LED 308 is coupled to a corresponding switch circuit 330 through a cathode line Cai, which can be one of the cathode lines Ca1-Can in
The switch circuit 330 can include, e.g., a transistor 332. The transistor 332 has a first source/drain electrode 340 coupled to a working voltage Vss, a gate electrode 336 coupled to a control signal CE, and a second source/drain electrode 338 coupled to the cathode line Cai.
The scanning signal SA rises from the low level 408 to the high level 410, such that the transistors 302 and 304 are turned off. At time T2, the control signal CE changes from the high level 404 to the low lever 412, such that the transistor 332 is turned on. At this time, the capacitor C1 provides a voltage level across the gate 312 and the first source/drain electrode 310 of the driving transistor 306, causing the driving transistor 306 to drive the LED 308 according to the pixel data.
In the examples of pixel circuits 300 and 500, the transistors 302, 304, 306, 332, 502, 504, and 506 are PMOS transistors. In some examples, the PMOS transistors of pixel circuits 300 and 500 can be replaced with NMOS transistors. A combination of NMOS and PMOS transistors can also be used in the pixel circuits.
A layer of anode electrode 719 is formed on the insulating layer 715. The anode electrode 719 can be, e.g., the anode electrode 602 of
An insulating layer 721 is formed and covers a portion 730 of the anode electrode 719 in the groove 717 and a portion 732 of the insulating layer 715 that is not covered by the anode electrode 719. The materials of the insulating layers 715 and 721 include, e.g., silicon dioxide.
Spacer structures 723 and 725 are formed on the insulating layer 721. The spacer structures 723 and 725 are disposed at two ends of the anode electrode 719 and extend along the X direction in
An organic layer 727 is deposited in the area between the spacer structures 723 and 725. The organic layer 727 has a light-emitting characteristic. The material of the organic layer 727 can be, e.g., a small molecular organic material or a high molecular organic material. A cathode electrode 729 is overlaid on the organic layer 727. The material of the cathode electrode 729 can include, e.g., aluminum, calcium, or magnesium silver alloy, or any combination of the above.
The organic layer 727 and the cathode electrode 729 both extend along the X direction of
When the organic material for the organic layer 727 is formed on the anode electrode 719 and the spacer structures 723 and 725, the organic material separates at the spacer structures 723 and 725, so that the organic layer 727 of one row is separated from the organic layer 727 of another row. The organic material remaining on the spacer structures 723 and 725 can be etched away. Similarly, when the material for the cathode electrode 729 is formed on the organic layer 727 and the spacer structures 723 and 725, the cathode electrode material separates at the spacer structures 723 and 725, so that the cathode electrode 729 of one row is separated from the cathode electrode 729 of another row. The cathode electrode material remaining on the spacer structures 723 and 725 can be etched away. This simplifies the processing steps for manufacturing the display panel 600.
The examples described above can have one or more of the following advantages. The data driving currents of the pixel circuits can be controlled by turning the switch circuits on or off, so that the flat panel display can operate more efficiently. The switch circuit enter a floating state when the capacitor (e.g., C1 of
A number of embodiments of the invention have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the invention. For example, the materials for various components, such as the organic layer and electrodes, can be different from those described above. The control signal waveforms can be different from those described above. Accordingly, other implementations are within the scope of the following claims.
Number | Date | Country | Kind |
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94144664 | Dec 2005 | TW | national |