FINGERPRINT-TOUCH SENSING APPARATUS
A fingerprint-touch sensing apparatus includes a substrate, a sensing electrode layer, a plurality of electrode switch circuits, a plurality of capacitance-signal switch circuits respectively connected to a plurality of data lines and a capacitance-signal line, and a fingerprint-touch sensing control integrated circuit. The sensing electrode layer includes a plurality of sensing electrodes arranged in multiple columns and multiple rows. The fingerprint-touch sensing control integrated circuit controls the capacitance-signal switch circuits and the electrode switch circuits to select one or more sensing electrodes to conduct sensing, thus providing the flexible function of fingerprint sensing or touch sensing.
The present disclosure relates to a fingerprint-touch sensing apparatus, especially to a fingerprint-touch sensing apparatus to flexibly realize fingerprint sensing or touch sensing by organizing and driving the sensing electrodes.
Description of Related ArtTouch control becomes essential function for smart electronic products. Owing to the rapid growing of electronic business, the bio-identification function is also necessary. The prime technology for bio-identification function is fingerprint identification. It is an important issue to integrate the fingerprint identification within the display panel as the frameless, full-screen display smartphone become prevailing. The current main stream technology for in-display fingerprint identification is supersonic and optical technology; however, they have disadvantages such as high cost, difficult alignment, and optical path problem. Besides, it also has the problems of smaller sensing area and edge-placement limitation, as well as requiring additional touch controller. Moreover, the laptop computer has the demanding of integrating touch control sensing and fingerprint identification.
The present disclosure is intended to provide an apparatus to integrally provide larger-area fingerprint sensing and touch sensing. The fingerprint-touch sensing apparatus of the present disclosure can be applied to in-display full-screen fingerprint identification and touch control, or replace the touch pad for 3C products. Besides, the present disclosure also provides a fingerprint-touch sensing apparatus capable of using ordinary pen for hand-writing input.
In view of this, the inventors have devoted themselves to the aforementioned related art, researched intensively try to solve the aforementioned problems.
SUMMARY OF THE DISCLOSUREIt is an object of the present disclosure to provide a fingerprint-touch sensing apparatus to flexibly realize fingerprint sensing or touch sensing.
Accordingly, the present disclosure provides a fingerprint-touch sensing apparatus comprising:
a substrate;
a sensing electrode layer arranged on one side of the substrate, the sensing electrode layer comprising: a plurality of sensing electrodes arranged in multiple columns and multiple rows; a plurality of electrode switch circuits, each of the electrode switch circuits being corresponding to one of the sensing electrodes and comprising at least one transistor switch; a plurality of data lines extended along a first direction, each of the data lines being connected to the electrode switch circuits; a plurality of gate lines extended along a second direction, each of the gate lines being connected to the electrode switch circuits; a plurality of capacitance-signal lines arranged on lateral side of the substrate; a plurality of data shielding lines arranged beside each of the data lines, each of the data lines being corresponding to at least one of the data shielding lines; a plurality of capacitance-signal shielding lines arranged beside each of the capacitance-signal lines, each of the capacitance-signal lines being corresponding to at least one of the capacitance-signal shielding lines; a plurality of capacitance-signal switch circuits arranged on lateral side of the substrate, each of the capacitance-signal switch circuits being connected to at least one of the data lines and at least one of the capacitance-signal lines;
a fingerprint-touch sensing control integrated circuit configured to control the capacitance-signal switch circuits and the electrode switch circuits to sequentially or randomly select one or a plurality of the sensing electrodes for conducting fingerprint sensing or touch sensing; and
a flexible circuit board with one end connected to one side of the substrate.
According to one aspect of the present disclosure, the fingerprint-touch sensing apparatus further includes a panel display comprising a display screen, the substrate is placed on a side of the display screen facing a user to facilitate fingerprint sensing or touch sensing, the sensing electrode layer covers a display area of the panel display, the plurality of sensing electrodes being transparent conductive electrodes.
In the fingerprint-touch sensing apparatus of the present disclosure, by providing a plurality of capacitance-signal switch circuits and a plurality of electrode switch circuits, capacitance change can be flexibly sensed for a single sensing electrode, or multiple sensing electrode (such as a sensing electrode array). Therefore, fingerprint sensing and touch sensing can be flexibly performed under the same physical sensing electrode architecture.
The technical contents of this disclosure will become apparent with the detailed description of embodiments accompanied with the illustration of related drawings as follows. It is intended that the embodiments and drawings disclosed herein are to be considered illustrative rather than restrictive.
The following disclosure provides many different embodiments, or examples, for implementing different features of the provided subject matter. Specific examples of components and arrangements are described below to simplify the present disclosure. These are, of course, merely examples and are not intended to be limiting. For example, the formation of a first feature over or on a second feature in the description that follows may include embodiments in which the first and second features are formed in direct contact, and may also include embodiments in which additional features may be formed between the first and second features, such that the first and second features may not be in direct contact. In addition, the present disclosure may repeat reference numerals and/or letters in the various examples. This repetition is for the purpose of simplicity and clarity and does not in itself dictate a relationship between the various embodiments and/or configurations discussed.
Further, spatially relative terms, such as “beneath,” “below,” “lower,” “above,” “upper,” “lower,” “left,” “right” and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. The spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. The apparatus may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein may likewise be interpreted accordingly. It should be understood that when an element is referred to as being “connected to” or “coupled to” another element, it may be directly connected to or coupled to the other element, or intervening elements may be present.
As shown in those figures, the fingerprint-touch sensing apparatus 100 according to an embodiment of the present disclosure includes, for example, a substrate 10; a sensing electrode layer 20 arranged on one side of the substrate 10 and including a plurality of sensing electrodes SE arranged in multiple-column and multiple-row on the substrate 10; a plurality of electrode switch circuits 22 each corresponding to one sensing electrode SE and including at least one transistor switch Q (such as a thin film transistor switch); a plurality of data lines DL extended along a first direction D1 and each connected to the plurality of electrode switch circuits 22; a plurality of gate lines GL extended along a second direction D2 and each connected to the plurality of electrode switch circuits 22; a plurality of capacitance-signal lines CL arranged on lateral side of the substrate 10; a plurality of data shielding lines DLS arranged beside each data line DL (each data line DL is corresponding to at least one data shielding lines DLS); and a plurality of capacitance-signal shielding lines CLS each arranged beside each capacitance-signal line CL (each capacitance-signal line CL is corresponding to at least one capacitance-signal shielding line CLS). Besides, the fingerprint-touch sensing apparatus 100 further includes a plurality of multiple-to-one (multiple input/one output) capacitance-signal switch circuits 41 arranged on lateral side of the substrate 10, each of the capacitance-signal switch circuits 41 is connected to at least one data line DL and at least one capacitance-signal line CL. The fingerprint-touch sensing apparatus 100 further includes a fingerprint-touch sensing control integrated circuit 40 controlling the capacitance-signal switch circuits 41 and the electrode switch circuits 22 to sequentially or randomly select one or more sensing electrode(s) to conduct fingerprint or touch sensing, and a flexible circuit board 50 with one end attached to (laminated on) one side of the substrate 10.
According to one embodiment of the present disclosure, the physical area of one sensing electrode SE is substantially smaller than that of the conventional touch sensing electrode. For example, the area of each sensing electrode SE is not larger than 40,000 square micrometers (μm). Therefore, if the fingerprint-touch sensing control integrated circuit 40 selects one sensing electrode SE or few sensing electrodes SE (such as four sensing electrodes SE) for sensing, the resolution is fine enough to sense information about ridge and valley of fingerprint. Besides, the fingerprint-touch sensing control integrated circuit 40 may control data line DL and gate line GL (detail thereof will be given later) to select sensing electrodes of multiple rows and single column, or sensing electrodes of single row and multiple columns, sensing electrodes of multiple rows and multiple columns (namely, a sensing electrode array or matrix) at one time (single time). In other word, the sensing electrodes of multiple rows and single column, or the sensing electrodes of single row and multiple columns, or the sensing electrodes of multiple rows and multiple columns may constitute a logical single sensing electrode to reduce the total sensing number and sensing task. The provision of the fingerprint-touch sensing control integrated circuit 40 may reduce the sensing time for electrodes to facilitate the touch sensing. The prior art sensing electrode suffers trade off problem between fingerprint sensing and touch sensing. Fingerprint sensing is intended for smaller sensing area (such as area corresponding to single finger) and longer time sensing (such as frame rate of 3-4 frames/second (fts)). Touch sensing is intended for larger sensing area (such as swipe unlock or APP operation) and shorter time operation (such as frame rate of 60-120 frames/second (fts)). Therefore, the sensing scheme for sensing electrode of smaller area has slow response to hinder touch sensing; the sensing scheme for sensing electrode of larger area has rough resolution to hinder fingerprint sensing. According to the present disclosure, the entire screen or partial screen (such as half screen) is provided with sensing electrodes with area small enough to sense fingerprint. Besides, the fingerprint-touch sensing apparatus 100 of the present disclosure adopts above-mentioned logically-configured touch sensing electrode and signal driving mechanism, thus realize fingerprint sensing for whole screen or partial screen as well as whole scree touch sensing.
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Therefore, when the smart phone using the fingerprint-touch sensing apparatus 100 needs to replace the protection layer 12 (such as a protection adhesive), the substrate 10 still can provide sufficient protection to the sensing electrode layer 20. Besides, even not clearly shown in
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More particularly, according to one embodiment of the present disclosure, the area of each sensing electrode is enough to provide the resolution for fingerprint identification. If one sensing electrode or few sensing electrodes (such as four and in above-mentioned bricklayer arrangement) is selected, the resolution is fine enough to conduct fingerprint sensing and thus achieve fingerprint identification. According to the present disclosure, the fingerprint-touch sensing control integrated circuit 40 may control the capacitance-signal switch circuits 41 to select one row (or few rows) of sensing electrode, and may control the gate lines (for example, through the multiplexer 41′) to select one column (or few columns) of sensing electrode to fulfill above sensing scheme. Therefore, the peak and valley of fingerprint can be precisely sensed.
Besides, the fingerprint-touch sensing control integrated circuit 40 may control the capacitance-signal switch circuits 41 to select predetermined rows of sensing electrodes and use the gate line (for example, through the control of the multiplexer 41′) to control the multiple electrode switch circuits 22 to select predetermined columns of sensing electrodes, thus organize (program) sensing electrodes in substantially array manner. In the present disclosure, the adjacent rows (or adjacent columns) of sensing electrodes are staggered to each other. Therefore, the selected rows and columns of sensing electrodes are not in exact array manner, but in substantially array manner. With reference also to
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Similarly, in the fingerprint-touch sensing apparatus 100 shown in
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Similarly, in the fingerprint-touch sensing apparatus 100 shown in
Besides, in above embodiments, the fingerprint-touch sensing control integrated circuit 40 may include a plurality set of self-capacitance measuring circuits to perform parallel sensing and enhance sensing efficiency. The number of the fingerprint-touch sensing control integrated circuit 40 may be plural and arranged respectively on two opposite sides of the substrate. Even though the present disclosure is exemplified with self-capacitance measuring circuit, the fingerprint-touch sensing apparatus of the present disclosure may also adopt mutual-capacitance measuring circuit. In above embodiments, the similarity between the shielding signal and the capacitance-sensing signal is not less than 90%. The above “similarity” is, for example, that the amplitude difference and phase difference between the shielding signal and the capacitance-sensing signal are smaller than or equal to 10%. Besides, by controlling the gate lines and the data lines, specific rows and columns of sensing electrodes can be selected to constitute a sensing electrode array. According to one aspect of the present disclosure, the area of the sensing electrode array is smaller than 1 square millimeter (1 mm2). Therefore, the fingerprint-touch sensing apparatus 100 of the present disclosure may be applied to pen-like input such as handwriting input with pencil, metal pen, ball pen or non-metal pen. The overall area of multiple sensing electrodes (such as the sensing electrode array in this disclosure) can cover at least two user fingers (for example, the length along one dimension of the sensing electrode array is longer than 1 cm), thus provide multi-finger sensing function.
To sum up, the fingerprint-touch sensing apparatus of the present disclosure has at least following advantages:
1. By providing a plurality of multiple-to-one capacitance-signal switch circuits and a plurality of electrode switch circuits, capacitance change can be flexibly sensed for a single sensing electrode, or multiple sensing electrode (such as a sensing electrode array). Therefore, fingerprint sensing and touch sensing can be flexibly performed under the same physical sensing electrode architecture.
2. The adjacent columns or adjacent rows of sensing electrodes can be staggered to each other such that at least four sensing electrodes can be sensed at the same time to enhance sensing accuracy.
3. Each of the data line or the gate line has at least one zigzag portion to enhance displaying effect and make the material selection more flexible.
4. The area of each sensing electrode SE is not larger than 40,000 square micrometers; the multiplexer and the electrode switch circuits may be employed to organize multiple sensing electrodes into a sensing electrode array. Therefore, the fingerprint can be precisely sensed and the sensing efficiency is not influenced.
5. By providing data shielding lines and capacitance-signal shielding lines, the noise to the data line and capacitance-signal can be blocked or shielded. By sending shielding signal with the same frequency and the same phase as the capacitance-sensing signal to the data shielding lines and capacitance-signal shielding lines, the effect of the stray capacitance can be eliminated and the interference can be reduced, thus enhance signal to noise ratio and sensing accuracy.
While this disclosure has been described by means of specific embodiments, numerous modifications and variations may be made thereto by those skilled in the art without departing from the scope and spirit of this disclosure set forth in the claims.
Claims
1. A fingerprint-touch sensing apparatus comprising:
- a substrate;
- a sensing electrode layer arranged on one side of the substrate, the sensing electrode layer comprising:
- a plurality of sensing electrodes arranged in multiple columns and multiple rows;
- a plurality of electrode switch circuits, each of the electrode switch circuits being corresponding to one of the sensing electrodes and comprising at least one transistor switch;
- a plurality of data lines extended along a first direction, each of the data lines being connected to the electrode switch circuits;
- a plurality of gate lines extended along a second direction, each of the gate lines being connected to the electrode switch circuits;
- a plurality of capacitance-signal lines arranged on lateral side of the substrate;
- a plurality of data shielding lines arranged beside each of the data lines, each of the data lines being corresponding to at least one of the data shielding lines;
- a plurality of capacitance-signal shielding lines arranged beside each of the capacitance-signal lines, each of the capacitance-signal lines being corresponding to at least one of the capacitance-signal shielding lines; and
- a plurality of capacitance-signal switch circuits arranged on lateral side of the substrate, each of the capacitance-signal switch circuits being connected to at least one of the data lines and at least one of the capacitance-signal lines;
- a fingerprint-touch sensing control integrated circuit configured to control the capacitance-signal switch circuits and the electrode switch circuits to sequentially or randomly select one or a plurality of the sensing electrodes for conducting fingerprint sensing or touch sensing; and
- a flexible circuit board with one end connected to one side of the substrate.
2. The fingerprint-touch sensing apparatus in claim 1, further comprises a panel display comprising a display screen, the substrate is placed on a side of the display screen facing a user to facilitate fingerprint sensing or touch sensing, the sensing electrode layer covers a display area of the panel display, the plurality of sensing electrodes being transparent conductive electrodes.
3. The fingerprint-touch sensing apparatus in claim 2, wherein the sensing electrodes of adjacent columns or the sensing electrodes of adjacent rows are staggered to each other.
4. The fingerprint-touch sensing apparatus in claim 2, wherein the transistor switches are transparent thin film transistor switches.
5. The fingerprint-touch sensing apparatus in claim 2, wherein the data lines and the gate lines are transparent conductive lines or metal conductive lines with line width no more than 10 μm.
6. The fingerprint-touch sensing apparatus in claim 2, wherein the data lines or the gate lines have zigzag portion to enhance displaying effect.
7. The fingerprint-touch sensing apparatus in claim 2, wherein a number of the fingerprint-touch sensing control integrated circuit is plural.
8. The fingerprint-touch sensing apparatus in claim 2, wherein the substrate is a protection glass of the display screen.
9. The fingerprint-touch sensing apparatus in claim 2, further comprising a protection layer.
10. The fingerprint-touch sensing apparatus in claim 2, wherein the side of the display screen on which a face of the substrate having the sensing electrode layer is arranged faces the user, the other face of the substrate without the sensing electrode layer faces the user.
11. The fingerprint-touch sensing apparatus in claim 1, wherein the substrate comprises one or more bending.
12. The fingerprint-touch sensing apparatus in claim 1, further comprising a plurality of passive elements on the flexible circuit board.
13. The fingerprint-touch sensing apparatus in claim 1, wherein an area of each of the sensing electrodes is not larger than 40,000 square micrometers.
14. The fingerprint-touch sensing apparatus in claim 1, wherein a total area of the plurality of sensing electrodes is at least a sum area of two user fingers.
15. The fingerprint-touch sensing apparatus in claim 1, wherein the substrate is made of glass or transparent polymer.
16. The fingerprint-touch sensing apparatus in claim 1, wherein a sensing area of the plurality of the sensing electrodes is at least smaller than 1 square millimeter.
17. The fingerprint-touch sensing apparatus in claim 1, wherein the fingerprint-touch sensing control integrated circuit comprises a plurality of self-capacitance sensing circuits for conducting parallel sensing to enhance sensing efficiency.
18. The fingerprint-touch sensing apparatus in claim 17, wherein one of the plurality of self-capacitance sensing circuits is configured to send a capacitance-excitation signal to at least selected one of the data lines through one of the capacitance-signal lines and one of the capacitance-signal switch circuits, and then send the capacitance-excitation signal to at least selected one of the sensing electrodes through one of the electrode switch circuits; and at the same time to receive a capacitance-sensing signal from the selected sensing electrode through the selected electrode switch circuits, the at least selected one of the data lines, the capacitance-signal switch circuit and the capacitance-signal line to conduct fingerprint sensing or touch sensing.
19. The fingerprint-touch sensing apparatus in claim 18, wherein each of the plurality of self-capacitance sensing circuits is configured to send a shielding signal having a same frequency and a same phase as that of the capacitance-sensing signal to the corresponding data shielding line to eliminate stray capacitance and reduce interference and to enhance signal to noise ratio and sensing accuracy.
20. The fingerprint-touch sensing apparatus in claim 1, further comprising a plurality of capacitance-shielding signal switch circuits arranged on lateral side of the substrate, wherein each of the capacitance-shielding signal switch circuits is connected to the plurality of data shielding line and at least one of the capacitance-signal shielding lines.
21. The fingerprint-touch sensing apparatus in claim 19, wherein a similarity between the shielding signal and the capacitance-sensing signal is not less than 90 percent.
22. The fingerprint-touch sensing apparatus in claim 1, wherein the substrate is a super-thin glass or polyimide.
Type: Application
Filed: Dec 6, 2021
Publication Date: Jul 21, 2022
Inventors: Hsiang-Yu LEE (New Taipei City), Shang CHIN (New Taipei City), Ping-Tsun LIN (New Taipei City)
Application Number: 17/543,533