The present invention relates generally to a display device, and more particularly, to a display device able to realize both display and sensing functions in the same pixel circuit to provide an in-screen sensing function.
In general, a display device often only has a display function. Some display devices provides both display and touch functions. However, when sensing is required, for example, when an optical fingerprint sensor (OFPS) is used for sensing, the optical fingerprint sensor will need to be implemented as an independent device. In addition, when the optical sensing module is bonded under the display device, there will be additional cost, additional thickness, and additional yield risk during bonding.
Moreover, since the sensing area depends on the area of the sensor, the sensing area will be much smaller than the area of the entire panel. In addition, since the optical sensing module is attached to the bottom of the display device, components between the sensed object and the sensor may block the light.
Therefore, it is necessary to provide a display device that can integrate the sensing function and the display function in the same pixel circuit to overcome the above problems.
In order to achieve the objective of effectively solving the above problems, the present invention provides a display device, including: a display panel having a plurality of sub-pixel areas, each sub-pixel area including a pixel circuit, each pixel circuit including: a diode, configured to a forward-biasing state in a display phase of the pixel circuit for light-emitting and configured to a reverse-biasing state in a sensing phase of the pixel circuit for light-sensing; a driving transistor, for driving the diode in the display phase; a readout transistor, with a gate being applied with the sensing voltage in the sensing phase for serving as a source follower; first to seventh transistors, gates of the first to seventh transistors being respectively applied with first to sixth gate control signals, so that the pixel circuit switching between the display phase and the sensing phase; and a capacitor, for storing a data voltage to be written to the diode in the display phase; a first circuit, by applying gate control signals to each pixel circuit to make each pixel circuit switch between the display phase and the sensing phase respectively; and a second circuit, for applying an initialization voltage, the data voltage, a driving voltage, and a common voltage, and the second circuit comprising a plurality of readout circuits for reading out the sensing voltage during the sensing phase of the pixel circuit.
Preferably, the gate control signal includes first to fourth gate control signals, and the first gate control signal is applied to the gates of the first transistor and the fifth transistor respectively, the second gate control signal is applied to the gates of the second transistor and the third transistor respectively, the third gate control signal is applied to the gates of the fourth transistor and the sixth transistor respectively, and the fourth gate control signal is applied to the gate of the seventh transistor.
Preferably, the diode comprises one of a micro light-emitting diode (micro-LED), a sub-millimeter light-emitting diode (mini-LED), and an organic light-emitting diode (OLED); and the driving transistor and the first to seventh transistors comprise one of or any combination of P-type metal oxide semiconductor field effect transistors (MOSFET), N-type MOSFETs, thin film transistors (TFT), low-temperature polycrystalline silicon TFTs, and low-temperature polycrystalline oxide TFTs.
Preferably, each readout circuit is connected to a corresponding pixel circuit of a plurality of pixel circuits in the same row to read out the sensing voltages in the pixel circuits in the row, and each readout circuit includes an analog-to-digital converter to perform analog-to-digital conversion for reading out the sensing voltage.
Preferably, in each pixel circuit, a first electrode of the first transistor is applied with the driving voltage, a second electrode of the first transistor is connected to a first node, a first electrode of the second transistor is applied with the data voltage, a second electrode of the second transistor is connected to the first node, a first electrode of the third transistor is connected to a second node, and a second electrode of the third transistors is connected to a third node, a first electrode of the fourth transistor is connected to the second node, and a second electrode of the fourth transistor is connected to a fourth node, a first electrode of the fifth transistor is connected to the third node, a second electrode of the fifth transistor is connected to a fifth node, a first electrode of the sixth transistor is connected to the fourth node, a second electrode of the sixth transistor is connected to the fifth node, a first electrode of the seventh transistor is connected to the fourth node, a second electrode of the seventh transistor is connected to the first electrode of the readout transistor, a gate electrode of the driving transistor is connected to the second node, a first electrode of the driving transistor is connected to the first node, a second electrode of the driving transistor is connected to the third node, a gate of the readout transistor is connected to the fifth node, the first electrode of the readout transistor is connected to the second electrode of the seventh transistor, a second electrode of the readout transistor is applied with the common voltage, a first electrode of the diode is connected to the fifth node, a second electrode of the diode is applied with the common voltage, one end of the capacitor is applied with the driving voltage, the other end is connected to the second node, and the initialization voltage is applied to the fourth node.
Preferably, the sensing phase includes: a first sensing phase, for initializing the pixel circuit and the diode, so that the pixel circuit can write the data voltage and the diode is in the reverse-biasing state; and a second sensing phase, wherein the diode begins to accumulate charges to generate the sensing voltage and the sensing voltage is read out, and the display phase includes: a first display phase, for writing the data voltage; and a second display phase, for causing the diode to emit light according to the data voltage.
Preferably, in the first sensing phase, the first to fourth gate control signals control the first to seventh transistors respectively, so that the fourth transistor and the sixth transistor are on, while the first transistor, the second transistor, the third transistor, the fifth transistor, and the seventh transistor are off until the fourth transistor are turned off before the second sensing phase starts; in the second sensing phase, the first to fourth gate control signals respectively control the first to seventh transistors so that the seventh transistor is on, the first transistor, the second transistor, the third transistor, the fourth transistor, the fifth transistor, and the sixth transistor are off until the seventh transistor is turned off before the first display phase starts; in the first display phase, the first to fourth gate control signals control the first to seventh transistors respectively, so that the second transistor and the third transistor are on, while the first transistor, the fourth transistor, the fifth transistor, the sixth transistor and the seventh transistor are off; and in the second display phase, the first to fourth gates control signal controls the first to seventh transistors respectively, so that the second transistor, the third transistor, the fourth transistor, the sixth transistor and the seventh transistor are off, while the first transistor and the fifth transistor are turned on after the second display phase starts.
Preferably, in the second sensing phase, the readout transistor is used as the source follower, so that the sensing voltage is input to the gate of the readout transistor through the fifth node, and the sensing voltage is read out as an output voltage located in the readout circuit.
Preferably, the display panel includes a plurality of panel areas, each panel area includes a first pixel row to a j -th pixel row, each pixel row includes a plurality of sub-pixel areas, and by applying the gate control signals to each pixel circuit, after a pixel row of a panel area completing the sensing phase, a corresponding pixel row in the next panel area immediately executes the sensing phase.
Preferably, the display device further includes a compensation comparison part, for comparing and calibrating the sensing voltage of the diode based on display content of the diode of the pixel circuit in the display phase adjacent to the diode of the pixel circuit in the sensing phase.
The present invention will be apparent to those skilled in the art by reading the following detailed description of a preferred embodiment thereof, with reference to the attached drawings.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
The inventive concept will be explained more fully hereinafter with reference to the accompanying drawings in which exemplary embodiments of the inventive concept are shown. Advantages and features of the inventive concept and methods for achieving the same will be apparent from the following exemplary embodiments, which are set forth in more details with reference to the accompanying drawings. However, it should be noted that the present inventive concept is not limited to the following exemplary embodiments, but may be implemented in various forms. Accordingly, the exemplary embodiments are provided merely to disclose the inventive concept and to familiarize those skilled in the art with the type of the inventive concept. In the drawings, exemplary embodiments of the inventive concepts are not limited to the specific examples provided herein and are exaggerated for clarity.
The terminology used herein is used to describe particular embodiments only, and is not intended to limit the present invention. As used herein, the singular terms “a” and “the” are intended to include the plural forms as well, unless the context clearly dictates otherwise. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items. It will be understood that when an element is referred to as being “connected” or “coupled” to another element, it can be directly connected or coupled to the other element or intervening elements may be present.
Similarly, it will be understood that when an element (e.g., a layer, region, or substrate) is referred to as being “on” another element, it can be directly on the other element or intervening elements may be present. In contrast, the term “directly” means that no intervening elements are present. It should be further understood that when the terms “comprising” and “including” are used herein, it is intended to indicate the presence of stated features, steps, operations, elements, and/or components, but does not exclude one or more other features, steps, operations, elements, components, and/or the presence or addition of groups thereof.
Furthermore, exemplary embodiments in the detailed description are set forth in cross-section illustrations that are idealized exemplary illustrations of the present inventive concepts. Accordingly, the shapes of the exemplary figures may be modified according to manufacturing techniques and/or tolerable errors. Therefore, the exemplary embodiments of the present inventive concept are not limited to the specific shapes shown in the exemplary figures, but may include other shapes that may be produced according to the manufacturing process. The regions illustrated in the figures have general characteristics and are used to illustrate specific shapes of elements. Therefore, this should not be considered limited to the scope of this creative concept.
It will also be understood that, although the terms “first,” “second,” “third,” etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish each element. Thus, a first element in some embodiments could be termed a second element in other embodiments without departing from the teachings of the present creation. Exemplary embodiments of aspects of the present inventive concept illustrated and described herein include their complementary counterparts. Throughout this specification, the same reference numbers or the same designators refer to the same elements.
Furthermore, example embodiments are described herein with reference to cross-sectional and/or planar views, which are illustrations of idealized example illustrations. Accordingly, deviations from the shapes shown, for example, caused by manufacturing techniques and/or tolerances, are expected. Accordingly, the exemplary embodiments should not be considered limited to the shapes of the regions shown herein, but are intended to include deviations in shapes resulting from, for example, manufacturing. Thus, the regions illustrated in the figures are schematic and their shapes are not intended to illustrate the actual shape of a region of a device and are not intended to limit the scope of example embodiments.
It should be noted that the pixel circuit of the present invention can be implemented in any sub-pixel such as red sub-pixel, blue sub-pixel, green sub-pixel, white sub-pixel, etc., but the present invention is not limited thereto.
Refer to
It should be understood that when the circuit is actually operating, there will be switching time between each phase. For ease of understanding, in this specification, the duration of each phase includes the actual execution of the corresponding action and switching to the next phase. For example, the second display phase D2 includes the time of writing data and switching to the third display phase D3.
Refer to
It should be further explained that the present invention integrates the first display phase for initializing the circuit in
It can be understood that, according to the user's settings, the pixel circuits in the display device may be in different phases at the same point in time. For example, the pixel circuits in different rows may be in different phases. In addition, since the sensing phase and display phase of the present invention are achieved by controlling the gate control signal GCS to adjust the operating sequence, the sensing phase of the display device can be turned on or off at any time according to the user's settings and needs.
Refer to
As shown in
It should be understood that the first circuit 20 may be, for example, one of a column circuit or a row circuit. The second circuit 30 may be, for example, one of a row circuit or a column circuit. But the present invention is not limited to thereto.
Refer to
As shown in
Referring to
It should be noted that the display device of the present invention divides the pixel circuit 10 into a sensing phase and a display phase by applying the gate control signals GCS. In the sensing phase, the diode LED is under reverse bias to sense light as a photodiode. Then, the generated photocurrent changes the voltage of the first electrode of the diode LED to the sensing voltage Vsen. Finally, the sensing transistor T9 is used as a source follower, and the sensing voltage Vsen is read out by the sensing circuit 40. In the display phase, the diode LED is under forward bias to emit light as a light-emitting diode to display data according to the data voltage Vdata. It can be understood that the diode LED of the present invention includes, but is not limited to, micro-LEDs, sub-millimeter light-emitting diodes (mini-LEDs), and organic light-emitting diodes (OLEDs).
It should be understood that the embodiment of the present invention uses a P-type metal oxide semi-field effect transistor (PMOS) as an exemplary transistor in the pixel circuit 10, so applying a high voltage to the gate of the transistor will cause it to turns off, and applying a low voltage to its gate turns it on. However, the present invention is not limited to thereto. The transistor used in the sub-pixel circuit of the present invention can be arbitrarily implemented as PMOS, N-type metal oxide semi-field effect transistor (NMOS), thin film transistor (TFT), low-temperature polycrystalline silicon (LTPS) TFT, low-temperature polycrystalline Oxide (LTPO) TFT and more. In addition, transistors can also be arbitrarily combined to form the sub-pixel circuit of the present invention. For example, some transistors are implemented as PMOS and other transistors are implemented as NMOS. Therefore, those skilled in the art can easily understand that the inventive concept of the present invention can be applied to pixel circuits using various types of transistors without being limited by the characteristics of the transistors.
The circuit operation of the sensing phase of the pixel circuit 10 according to the embodiment of the present invention will be described below with reference to
Referring to
Specifically, referring to
Specifically, referring to
The circuit operation of the display phase of the pixel circuit 10 according to the embodiment of the present invention will be described below with reference to
Specifically, referring to
Specifically, referring to
Refer to
In the present invention, since the pixel circuit 10 in the display device is used for both display and sensing functions, the display and sensing frame rates of the display device will be the same. However, in general, the response speed required for sensing is usually faster than the frame rate of the display. Therefore, it is necessary to propose a control method for the display panel to improve the sensing speed.
Referring to
The present invention provides a row-skipping sensing of the display panel 50. For example, as shown by the arrow in
In addition, in the present invention, since the pixel circuit 10 in the display device is used for both display and sensing functions, the sensing voltage Vsen of the pixel circuit 10 will be affected by the display content of adjacent rows. For example, when a pixel circuit 10 located in the display panel 50 is in the sensing phase and other pixel circuits 10 adjacent to the pixel circuit 10 are in the display phase, the content displayed by the other pixel circuits 10 will affect the sensing voltage Vsen of the pixel circuit 10. For example, the sensing voltage Vsen of the pixel circuit 10 when the diode LED in the other pixel circuit 10 emits light will be different from the sensing voltage Vsen of the pixel circuit 10 when the diode LED in the other pixel circuit 10 does not emit light. Therefore, the display device 1 of the present invention includes a compensation comparison part for comparing and calibrating the sensing voltage Vsen of the diode LED based on the content displayed by the diode LED of the pixel circuit 10 in the display phase adjacent to the diode LED of the pixel circuit 10 in the sensing phase.
Finally, the technical features of the present invention and its achievable technical effects are summarized as follows:
First, the display device of the present invention can realize both display and sensing functions in the same pixel circuit to have an in-screen sensing function.
Second, since the display device of the present invention uses the same pixel circuit to realize both display and sensing functions at the same time, there is no element between the sensed object and the sensor that will block the light. Therefore, the present invention can achieve more accurate sensing.
Third, since the display device of the present invention uses the same pixel circuit to achieve both display and sensing functions, the total thickness of the screen is thinner, redundant manufacturing processes are not required, and the yield risk caused by additional bonding is reduced.
Fourth, since the display device of the present invention can perform row-skipping sensing, the sensing speed can be increased according to user needs.
Fifth, the display device of the present invention can compare and calibrate the diode according to the display content of the diode of the pixel circuit in the display phase adjacent to the diode of the pixel circuit in the sensing phase. Therefore, it can provide sensing accuracy and correctness.
Although the present invention has been described with reference to the preferred embodiments thereof, it is apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the present invention which is intended to be defined by the appended claims.
Number | Date | Country | |
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63422456 | Nov 2022 | US |