FINGERPRINT RECOGNIZING SENSOR WITH FAST RECOGNITION
20170255808 · 2017-09-07
Assignee
Inventors
Cpc classification
International classification
Abstract
A fingerprint recognizing sensor with fast recognition, including: a substrate, a conductive plate, a passivation layer, a charging capacitor, a switch group, and an analog to digital (AD) converter; the conductive plate being arranged on the substrate; the passivation layer being arranged on the conductive pad for receiving a finger to detect a fingerprint; the switch group including a first switch and a second switch; the first switch controlling an input voltage to charge the charging capacitor; two ends of the second switch being electrically connected to the conductive plate and the first switch as well as the charging capacitor, respectively; the AD converter being electrically connected to the charging capacitor; where the second switch controls the charging capacitor to perform charge sharing for multiple times; and the AD converter outputs a fingerprint recognizing signal according to a residual voltage after the charge sharing.
Claims
1. A fingerprint recognizing sensor with fast recognition, comprising: a substrate; a conductive plate arranged on the substrate; a passivation layer arranged on the conductive plate for receiving a finger to detect a fingerprint; a charging capacitor, comprising a discharging end electrically connected to a low level voltage, and a charging end electrically connected to the conductive plate; a switch group, comprising a first switch and a second switch, two ends of the first switch being electrically connected to an input voltage and the charging end of the charging capacitor, respectively, and located between the input voltage and the charging end of the charging capacitor, so as to control the input voltage to charge the charging capacitor; two ends of the second switch being electrically connected to the conductive plate and the first switch as well as the charging end of the charging capacitor, respectively; the input voltage being higher than the low level voltage; and an analog to digital (AD) converter electrically connected to the charging end of the charging capacitor; wherein after the first switch controls the charging capacitor to perform charging for a single time, the second switch controls the charging capacitor to perform charge sharing for multiple times, and the AD converter outputs a fingerprint recognizing signal according to a residual voltage at the charging end after the charge sharing.
2. The fingerprint recognizing sensor with fast recognition as claimed in claim 1, wherein the switch group further comprises a third switch electrically connected to, and located between, the conductive plate and a ground connection.
3. The fingerprint recognizing sensor with fast recognition as claimed in claim 1, further comprising an amplifier electrically connected to, and located before, the AD converter.
4. The fingerprint recognizing sensor with fast recognition as claimed in claim 3, wherein the amplifier is a programmable designed gain amplifier.
5. A fingerprint recognizing sensor with fast recognition, comprising: a substrate; a plurality of fingerprint recognition sensing units arranged on the substrate, each of the fingerprint recognition sensing units comprising: a conductive plate arranged on the substrate; a passivation layer arranged on the conductive plate for receiving a finger to detect a fingerprint; a charging capacitor, comprising a discharging end electrically connected to a low level voltage, and a charging end electrically connected to the conductive plate; a switch group, comprising a first switch and a second switch, two ends of the first switch being electrically connected to an input voltage and the charging end of the charging capacitor, respectively, and located between the input voltage and the charging end of the charging capacitor, to control the input voltage to charge the charging capacitor; two ends of the second switch being electrically connected to the conductive plate and the first switch as well as the charging end of the charging capacitor, respectively; the input voltage being higher than the low level voltage; and an analog to digital (AD) converter electrically connected to the charging end of the charging capacitor in each of the fingerprint recognition sensing units; wherein after the first switch in each of the fingerprint recognition sensing units controls the charging capacitor to perform charging for a single time, the second switch controls the charging capacitor to perform charge sharing for multiple times, and the AD converter outputs a fingerprint recognizing signal according to a residual voltage at the charging end after the charge sharing.
6. The fingerprint recognizing sensor with fast recognition as claimed in claim 5, wherein each of the fingerprint recognition sensing units further comprises a third switch electrically connected to, and located between, the conductive plate and a ground connection.
7. The fingerprint recognizing sensor with fast recognition as claimed in claim 5, further comprising an amplifier electrically connected to, and located before, the AD converter.
8. The fingerprint recognizing sensor with fast recognition as claimed in claim 7, wherein the amplifier is a programmable designed gain amplifier.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0009]
[0010]
[0011]
[0012]
DESCRIPTION OF REFERENCE SIGNS
[0013] 10: substrate
[0014] 20: conductive plate
[0015] 30: passivation layer
[0016] 40: AD converter
[0017] 50: finger
[0018] 60: amplifier
[0019] 70: fingerprint recognition sensing unit
[0020] C.sub.0: charging capacitor
[0021] C.sub.s: detecting capacitor
[0022] C.sub.p: parasitic capacitor
[0023] SW1: first switch
[0024] SW2: second switch
[0025] SW3: third switch
[0026] X.sub.1: discharging end
[0027] X.sub.2: charging end
[0028] VDD: input voltage
DETAILED DESCRIPTION
[0029] Detailed descriptions and technical content of the invention are now explained in combination with the accompanying drawings. Reference is made to
[0030] The charging capacitor C.sub.0 includes a discharging end X.sub.1 and a charging end X.sub.2. The discharging end X.sub.1 is electrically connected to a low level voltage, and the discharging end X.sub.1 is electrically connected to the substrate 10 in this embodiment, i.e. being connected to the ground, while the charging end X.sub.2 is electrically connected to the conductive plate 20. The switch group includes a first switch SW1 and a second switch SW2, where the first switch SW1 has one end electrically connected to an input voltage VDD whose potential has to be higher than the low level voltage, and has another end electrically connected to the charging end X.sub.2 of the charging capacitor C.sub.0 to control the input voltage VDD to charge the charging capacitor C.sub.0. That is, when the first switch SW1 is closed, the input voltage VDD will charge the charging capacitor C.sub.0. The second switch SW2 has one end electrically connected to the conductive plate 20, and has another end electrically connected to the first switch SW1 and the charging end X.sub.2 of the charging capacitor C.sub.0. The AD converter 40 is electrically connected to the charging end X.sub.2 of the charging capacitor C.sub.0. In this way, the second switch SW2 will control the charging capacitor C.sub.0 to perform charge sharing for multiple times, and the AD converter 40 outputs a fingerprint recognizing signal according to a residual voltage at the charging end X.sub.2 after the charge sharing. Additionally in this embodiment, the fingerprint recognizing sensor with fast recognition further includes an amplifier 60 that is electrically connected to, and located before, the AD converter 40. The switch group further includes a third switch SW3 that is electrically connected to, and located between, the conductive plate 20 and ground, where the amplifier 60 may be a programmable designed gain amplifier.
[0031] Continuing to
[0032] Step 1: open the second switch SW2 and the third switch SW3 and close the first switch SW1, so that the input voltage VDD charges the charging capacitor C.sub.0.
[0033] Step 2: open the first switch SW1 and the second switch SW2 and close the third switch SW3, allowing the detecting capacitor C.sub.s and the parasitic capacitor C.sub.p to be reset.
[0034] Step 3: open the first switch SW1, and alternately open and close the third switch SW3 and the second switch SW2 according to a time sequence so as to perform charge sharing. Repeat the process until a predefined number of times is reached, when all switching actions are stopped.
[0035] Step 4: the AD converter 40 outputs the fingerprint recognizing signal according to the residual voltage at the charging end X.sub.2 after the charge sharing.
[0036] Reference is made to
[0037] The switch group includes a first switch SW1, a second switch SW2, and a third switch SW3. Two ends of the first switch SW1 are electrically connected to an input voltage VDD and the charging end X.sub.2 of the charging capacitor C.sub.0, respectively, and located between the input voltage VDD and the charging end X.sub.2 of the charging capacitor C.sub.0, so as to control the input voltage VDD to charge the charging capacitor C.sub.0. The input voltage VDD has a potential higher than the low level voltage. Two ends of the second switch SW2 are electrically connected to the conductive plate 20 and the first switch SW1 as well as the charging end X.sub.2 of the charging capacitor C.sub.0, respectively. The third switch SW3 is electrically connected to, and located between, the conductive plate 20 and ground. The AD converter 40 is electrically connected to the charging end X.sub.2 of the charging capacitor C.sub.0 in each fingerprint recognition sensing unit 70. In this case, the second switch SW2 in the fingerprint recognition sensing unit 70 controls the charging capacitor CO to perform charge sharing for multiple times, and the AD converter 40 outputs a fingerprint recognizing signal according to a residual voltage at the charging end X.sub.2 after the charge sharing. The second embodiment of this invention operates similarly to the first embodiment except for that, in the second embodiment, each of the fingerprint recognition sensing units 70 can perform the charge sharing simultaneously, firstly accumulate the residual voltage at the charging end X.sub.2, and then make the same go through the AD converter 40 sequentially, so as to accomplish the fingerprint recognition.
[0038] In view of the above, the invention adopts the AD converter to output the fingerprint recognizing signal according to the residual voltage at the charging end after the charge sharing, where the input to, and output from, the AD converter are actual voltage values, which can be accomplished rapidly; instead, in a traditional C-V-T type capacitance sensor circuit, what is acquired by the comparator is the number of times of the reference capacitor charging circuit being closed and opened, rather than an actual voltage value, thus the speed is slow. Secondly, when multiple pixels (i.e. the fingerprint recognition sensing units) are arranged, the fingerprint recognition sensing units of the invention can simultaneously perform charge sharing, accumulate the residual voltage at the charging end and then go through the AD converter sequentially, which can be accomplished very rapidly as well; instead, in the traditional C-V-T type capacitance sensor circuit, each pixel has to wait for its previous pixel before the each pixel begins performing the switching operation, because simultaneous switching for the pixels are not allowed, thus the time for acquisition is slow. In addition, the output from the AD converter is an actual voltage value, which is convenient for subsequent signal processing; however, in the traditional C-V-T type capacitance sensor circuit, the output from the comparator is a value corresponding to the number of times of the switching operation. Moreover, during the charge sharing for multiple times, the residual voltage is the accumulation of signals after the charge sharing for multiple times, but the noise will not be accumulated accordingly, thus helping to improve the signal-to-noise ratio.
[0039] The present invention has been described in detail in the foregoing, and any or all equivalent alternatives, modifications or the like according to the application scope of the invention shall be deemed within the scope covered by this invention patent.