The invention relates to a device, in particular to an electronic device having a fingerprint sensing function.
In recent years, fingerprint identification technology has been widely applied in various electronic devices to provide various identity login or identity verification functions. The currently existing technical principles of fingerprint identification include an optical mode, a capacitive mode, a thermal-sensitive mode, an ultrasonic mode, etc. In this regard, since a fingerprint sensor in the above modes is disposed in an electronic device, the fingerprint sensor is typically required to occupy a part of the device volume of the electronic device. Moreover, a general fingerprint sensor may be disposed or externally mounted below a screen, at a Home button, or at a rear part of a device body, for example, of the electronic device. In other words, the general fingerprint sensor increases the overall device volume or thickness of the electronic device, and thus leads to an increase in the manufacturing cost of the electronic device. In view of this, several embodiments of solutions are provided below.
The invention is directed to an electronic device which can provide a large-area fingerprint sensing function.
According to an embodiment of the invention, an electronic device of the invention includes a touch display panel and an integrated chip. The touch display panel includes a pixel array. The integrated chip is electrically connected to the pixel array. The integrated chip includes a fingerprint sensing circuit and a display driving circuit. The fingerprint sensing circuit and the display driving circuit are electrically connected to a plurality of display data lines and sensing data lines through a same pin. The plurality of display data lines are electrically connected to respectively a plurality of color sub-pixels of the pixel array. The sensing data lines are electrically connected to a plurality of fingerprint sensing pixels of the pixel array. The plurality of color sub-pixels are a plurality of liquid crystal display pixels.
Based on the foregoing, in the electronic device of the invention, full-screen fingerprint sensing function may be realized by forming a plurality of fingerprint sensing pixels in the pixel array of the touch display panel. Moreover, since the fingerprint sensing pixels are embedded in the touch display panel, the electronic device of the invention can effectively reduce the space of functional modules required for fingerprint sensing, thus reducing the overall device volume or thickness of the electronic device.
To make the aforementioned features and advantages of the invention more comprehensible, embodiments accompanied with drawings are described in detail as follows.
100: electronic device;
110: touch display panel;
120: pixel array;
130: integrated chip;
131: fingerprint sensing circuit;
131_1: amplifier;
131_2: analog-to-digital converter;
131_3: digital processor;
132: display driving circuit;
132_1: source amplifier;
132_2: timing control circuit;
133: control circuit;
141, 142, 143, 144: demultiplexer;
D1 to D3, D5: display data line;
D4: sensing data line;
DS: display driving signal;
G1, G2: gate line;
GS1: scan signal;
FS: sensing signal;
M_1 to M_4, S1, S2: switch signal;
N1: pin;
T1 to T6: transistor;
t0 to t5: time.
Reference will now be made in detail to exemplary embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numerals are used in the drawings and description to denote the same or like parts.
In this embodiment, the integrated chip 130 may be electrically connected to a plurality of display pixels and a plurality of fingerprint sensing pixels in the pixel array 120 through a same pin, and the integrated chip 130 drives a display module of the touch display panel 110 and the touch display panel 110 in a time-sharing manner. In other words, the integrated chip 130 of this embodiment may drive the display module and the fingerprint sensing module in the touch display panel 110 through fewer pins, thus effectively reducing the space occupied by pins and circuits in the electronic device 100.
In this embodiment, the electronic device 100 is, for example, a smart phone, a tablet computer, a game console, or other electronic products having a fingerprint identification function.
The touch display panel 110 may be, for example, a liquid crystal display (LCD) panel. Therefore, a plurality of color sub-pixels of the pixel array 120 may be a plurality of liquid crystal display pixels. To be specific, in this embodiment, a plurality of pixel units of the pixel array 120 may be composed of a plurality of first color sub-pixels, a plurality of second color sub-pixels, a plurality of third color sub-pixels, and a plurality of fingerprint sensing pixels. The first to third color sub-pixels may be, for example, red color sub-pixels, green color sub-pixels, and blue color sub-pixels, but the invention is not limited thereto. It is worth noting that, in this embodiment, the plurality of color sub-pixels may be formed in a first semiconductor layer of the touch display panel 110, and the plurality of fingerprint sensing pixels may be formed in a second semiconductor layer of the touch display panel 110.
In this embodiment, the gate line G1 may be used to receive a scan signal to turn on the first color sub-pixel 121, the second color sub-pixel 122, the third color sub-pixel 123, and the fingerprint sensing pixel 124. In this embodiment, the display data lines D1 to D3 are used to transmit a plurality of display driving signals (display data) provided by the integrated chip 130 to the first color sub-pixel 121, the second color sub-pixel 122, and the third color sub-pixel 123, so that the first color sub-pixel 121, the second color sub-pixel 122, and the third color sub-pixel 123 respectively provide display functions according to the corresponding display driving signals (display data). In this embodiment, the sensing data line D4 is used to transmit a sensing signal of the fingerprint sensing pixel 124 to the integrated chip 130, so that the integrated chip 130 may generate a corresponding fingerprint sensing image according to the sensing signal. The sequence of arranging the color sub-pixels of the invention is not limited to the above. Moreover, the fingerprint sensing pixel 124 may also be placed at a position disposed between any two color sub-pixels.
In this embodiment, the display data lines D1 to D3 and the sensing data line D4 are electrically connected to one column pixel group of the pixel array 120. The column pixel group may include a plurality of pixel units 120P as in the above-mentioned embodiment of
In this embodiment, the fingerprint sensing circuit 131 includes an amplifier 131_1, an analog-to-digital converter 131_2, and a digital processor 131_3. An input terminal of the amplifier 131_1 is electrically connected to another terminal of the switch transistor T5. An input terminal of the analog-to-digital converter 131_2 is electrically connected to an output terminal of the amplifier 131_1. The digital processor 131_3 is electrically connected to an output terminal of the analog-to-digital converter 131_2. In this embodiment, the display driving circuit 132 includes a source amplifier 132_1 and a timing control circuit 132_2. An input terminal of the source amplifier 132_1 is electrically connected to the timing control circuit 132_2, and an output terminal of the source amplifier 132_1 is electrically connected to another terminal of the switch transistor T6. In this embodiment, the pin N1 is electrically connected to the switch transistors T1 to T4 at a side relative to the pin N1. The switch transistors T1 to T4 are electrically connected to the display data lines D1 to D3 and the sensing data line D4.
In this embodiment, the amplifier 131_1 may receive a sensing signal and provide a sensing signal FS after signal amplification to the analog-to-digital converter 131_2. The analog-to-digital converter 131_2 may provide a digital signal of the fingerprint sensing result to the digital processor 131_3, so that the digital processor 131_3 may generate fingerprint sensing information, for example, generating a fingerprint sensing image, according to the digital signal provided by the analog-to-digital converter 131_2. In this embodiment, the timing control circuit 132_2 of the display driving circuit 132 may provide a timing control signal to the source amplifier 132_1, so that the source amplifier 132_1 outputs a display driving signal DS according to the designed display timing.
In this embodiment, the switch transistor T5 is turned off during the display driving period (from time t0 to time t4), and the switch transistor T6 is turned on during the display driving period (from time t0 to time t4). The display driving period includes three sub-display driving periods in the display driving period. The three sub-display driving periods are respectively from time t1 to time t2, from time t2 to time t3, and from time t3 to time t4. The switch transistors T1 to T3 respectively receive the switch signals M_1 to M_3 during the three sub-display driving periods and are turned on during different periods, and the switch transistor T4 are turned off. Signal waveforms of the switch signals M_1 to M_3 are temporally non-overlapped with each other. Therefore, the display driving circuit 132 respectively outputs first to third display driving signals (the square waveform of the display driving signal DS during the three sub-display driving periods as shown in
In this regard, the display driving circuit 132 may output the display driving signal DS through the display data lines D1 to D3 to the color sub-pixels 121 to 123 during the display driving period, so that the pixel unit 120P performs the display function. Nonetheless, it should be noted that the display driving signal DS of
In this embodiment, the switch transistor T5 is turned on during the fingerprint sensing period (from time t4 to time t5), and the switch transistor T6 is turned off during the fingerprint sensing period (from time t4 to time t5). The switch transistors T1 to T3 are turned off and the switch transistor T4 is turned on during the fingerprint sensing period. A signal waveform of the switch signal M_4 is non-overlapped with the signal waveforms of the switch signals M_1 to M_3. Therefore, the fingerprint sensing circuit 131 may receive the sensing signal FS from the fingerprint sensing pixel 124 through the sensing data line D4, so that the pixel unit 120P performs the fingerprint sensing function. Nonetheless, it should be noted that the sensing signal FS of
In summary of the foregoing, in the electronic device of the invention, an in-cell-type fingerprint, touch, and display panel architecture is implemented, and an FTDDI chip is used to drive the touch display panel embedded with a plurality of fingerprint sensing pixels. Therefore, the electronic device of the invention can save the space occupied by the driving circuit in the peripheral area of the panel. Alternatively, the integrated chip of the invention may transmit the display driving signal and the sensing signal through the same pin, and can effectively save the space occupied by pins and circuits in the peripheral area of the panel.
Lastly, it should be noted that the above embodiments are only used for describing, instead of limiting, the technical solutions of the invention. Although the invention has been described in detail with reference to the above embodiments, those of ordinary skill in the art should understand that modification to the technical solutions recited in the above embodiments or equivalent replacement of some or all of the technical features therein may still be made. Nonetheless, the nature of the corresponding technical solutions so modified or replaced does not depart from the scope of the technical solutions of the embodiments of the invention.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/123213 | 10/23/2020 | WO |
Number | Date | Country | |
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63015659 | Apr 2020 | US |