Clock receiving circuit and electronic device
The clock receiver circuit addresses the issues of high phase noise and power consumption in high-speed integrated circuits by incorporating a common mode voltage regulation module, amplitude amplification module, and level conversion module, resulting in improved performance and efficiency.
Patent Information
- Application Number
- JP2023579856
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-30
- Filing Date
- 2022-03-02
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2042-03-02
AI Technical Summary
Existing clock receiver circuits in high-speed integrated circuits suffer from high phase noise and high power consumption due to severe clock attenuation during transmission, especially under non-ideal conditions like noise and mismatches.
A clock receiver circuit comprising a common mode voltage regulation module, an amplitude amplification module, and a level conversion module, which includes n-type and p-type signal conversion units, p-type and n-type transistor differential pairs, and a bias control unit to operate transistors in the saturation region, thereby reducing noise and power consumption.
The proposed clock receiver circuit achieves reduced phase noise and power consumption, providing sufficient gain under low power supply voltages to obtain a large output swing, thus improving the performance and efficiency of high-speed electronic devices.
Smart Images

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Abstract
Description
[Technical field]
[0001] This disclosure claims priority to a Chinese patent application filed with the State Intellectual Property Office on June 30, 2021, bearing application number "202110738327.9" and entitled "Clock receiving circuit and electronic device," the entire contents of which are incorporated by reference.
[0002] TECHNICAL FIELD The embodiments of the present disclosure relate to the field of integrated circuits, but are not limited thereto, and specifically relate to a clock receiving circuit and an electronic device including the clock receiving circuit. [Background technology]
[0003] With the evolution of CMOS manufacturing processes and the improvement of design levels, the operating frequency of integrated circuits is becoming higher and higher, but the attenuation of high-speed clocks during transmission is more serious, and they are more susceptible to non-ideal factors such as noise and mismatch, which reduces the performance of the clock. Therefore, clock receiving circuits are particularly important in high-speed circuits. Summary of the Invention [Problem to be solved by the invention]
[0004] 1 shows a clock receiving circuit in the related art, which receives and amplifies an input clock using a Current Mode Logic (CML) structure. Such a clock receiving circuit has a large phase noise and consumes a large amount of power. [Means for solving the problem]
[0005] The present disclosure provides a clock receiving circuit and an electronic device including the clock receiving circuit. As an aspect of the present disclosure, an embodiment of the present disclosure is a clock receiving circuit including a common-mode voltage adjustment module, an amplitude amplification module, and a level conversion module, The common mode voltage adjustment module includes an n-type signal conversion unit, a high level n-type signal output terminal, a low level n-type signal output terminal, a p-type signal conversion unit, a high level p-type signal output terminal, and a low level p-type signal output terminal, the n-type signal conversion unit is used to convert an input n-type signal into a high level n-type signal and output it through the high level n-type signal output terminal, the n-type signal conversion unit is further used to convert an input n-type signal into a low level n-type signal and output it through the low level n-type signal, the p-type signal conversion unit is used to convert an input p-type signal into a high level p-type signal and output it through the high level p-type signal output terminal, the p-type signal conversion unit is further used to convert an input p-type signal into a low level p-type signal and output it through the low level p-type signal output terminal; The amplitude amplification module includes a p-type current source transistor, an n-type current source transistor, a p-type transistor differential pair, an n-type transistor differential pair, and a bias control unit; the bias control unit is used to control the p-type current source transistor and the n-type current source transistor to operate in a saturation region; the p-type current source transistor has a first pole electrically connected to a high-level signal terminal and a second pole electrically connected to two first terminals of the p-type transistor differential pair; the p-type transistor differential pair has two second terminals electrically connected to the two first terminals of the n-type transistor differential pair, respectively, and two input terminals electrically connected to the low-level p-type signal output terminal and the low-level n-type signal output terminal, respectively, so that two p-type transistors of the p-type transistor differential pair both operate in an amplification region; the n-type transistor differential pair has two second terminals electrically connected to the first poles of the n-type current source transistors and two input terminals electrically connected to the high level p-type signal output terminal and the high level n-type signal output terminal, so that two n-type transistors of the n-type transistor differential pair both operate in an amplification region; The level conversion module provides a clock receiving circuit configured to convert the CML level signal output by the amplitude amplifier circuit to a CMOS level signal.
[0006] Optionally, the p-type transistor differential pair comprises a first p-type transistor and a second p-type transistor, a first pole of the first p-type transistor is electrically connected to a first pole of the second p-type transistor, the first pole of the first p-type transistor and the first pole of the second p-type transistor are respectively formed as two first terminals of the p-type differential pair, the second pole of the first p-type transistor and the second pole of the second p-type transistor are respectively formed as two second terminals of the p-type differential pair, a gate of the first p-type transistor and a gate of the second p-type transistor are respectively formed as two input terminals of the p-type transistor differential pair, a gate of the first p-type transistor is electrically connected to the low-level n-type signal output terminal, and a gate of the second p-type transistor is electrically connected to the low-level p-type signal output terminal.
[0007] Optionally, the n-type transistor differential pair comprises a first n-type crystal and a second n-type transistor, a first pole of the first n-type transistor and a first pole of the second n-type transistor are respectively formed as two first terminals of the n-type transistor differential pair, the first pole of the first n-type transistor is electrically connected to the second pole of the first p-type transistor, and the first pole of the second n-type transistor is electrically connected to the second pole of the second p-type transistor; a second pole of the first n-type transistor and a second pole of the second n-type transistor are respectively formed as two second terminals of the n-type differential pair, and the second pole of the first n-type transistor is electrically connected to the second pole of the second n-type transistor; The gate of the first n-type transistor and the gate of the second n-type transistor are respectively formed as two input terminals of the n-type transistor differential pair, the gate of the first n-type transistor is electrically connected to the high-level n-type signal output terminal, and the gate of the second n-type transistor is electrically connected to the high-level p-type signal output terminal.
[0008] Optionally, the bias control unit comprises a first n-type current mirror transistor, a second n-type current mirror transistor, a third n-type current mirror transistor, a fourth n-type current mirror transistor, a first p-type current mirror transistor and a second p-type current mirror transistor; the first n-type current mirror transistor is configured to have a first pole electrically connected to a current source, a first pole electrically connected to a gate of the first n-type current mirror transistor and a second pole electrically connected to a first pole of the second n-type current mirror transistor; the second n-type current mirror transistor has a second pole grounded and a gate electrically connected to a gate of the third n-type current mirror transistor and a gate of the n-type current source transistor; the third n-type current mirror transistor has a first electrode grounded and a second electrode electrically connected to a first electrode of the fourth n-type current mirror transistor; the fourth n-type current mirror transistor has a second electrode electrically connected to a first electrode of the first p-type current mirror transistor and a gate electrically connected to a gate of the first n-type current mirror transistor; the first p-type current mirror transistor has a gate electrically connected to a first pole of the first p-type current mirror transistor and a second pole electrically connected to a first pole of the second p-type current mirror transistor; The second p-type current mirror transistor is configured such that a second pole is electrically connected to a high level signal terminal and a gate is electrically connected to the gate of the p-type current source transistor.
[0009] Optionally, the common mode voltage adjustment module further includes an impedance matching resistor, a first voltage dividing resistor and a second voltage dividing resistor, the impedance matching resistor is connected between the p port and the n port of the common mode voltage adjustment module, and one end of the first voltage dividing resistor is electrically connected to a high level signal terminal; the p-type signal conversion unit includes a first coupling capacitor, a third coupling capacitor, and a third resistor, a fifth resistor, a seventh resistor and a ninth resistor connected in series in sequence, one end of the third coupling capacitor is electrically connected to the other end of the first voltage dividing resistor, the ninth resistor is electrically connected to one end of the second voltage dividing resistor, a second terminal of the second voltage dividing resistor is grounded, the first coupling capacitor is connected in parallel to the fifth resistor, and the high level p-type signal output terminal is electrically connected to a connection point between the third resistor and the fifth resistor, the third coupling capacitor is connected in parallel to the seventh resistor, and the low level p-type signal output terminal is electrically connected to a connection point between the seventh resistor and the ninth resistor, and the p port is electrically connected to a connection point between the fifth resistor and the seventh resistor; The n-type signal conversion unit includes a second coupling capacitor, a fourth coupling capacitor, and a fourth resistor, a sixth resistor, an eighth resistor and a tenth resistor connected in series in sequence, one end of the fourth coupling capacitor is electrically connected to the other end of the first voltage dividing resistor, the tenth resistor is electrically connected to one end of the second voltage dividing resistor, the second coupling capacitor is connected in parallel to the sixth resistor, and the high-level n-type signal output terminal is electrically connected to a connection point between the fourth resistor and the sixth resistor, the fourth coupling capacitor is connected in parallel to the eighth resistor, and the low-level n-type signal output terminal is electrically connected to a connection point between the eighth resistor and the tenth resistor, and the n port is electrically connected to a connection point between the sixth resistor and the eighth resistor.
[0010] Optionally, the level conversion module comprises a first inverter, a second inverter, a first feedback component, and a second feedback component; The first inverter has an input terminal electrically connected to the p-type signal output terminal of the amplitude amplifying module, and an output terminal formed as an n-type signal output terminal of the clock receiving circuit; the first feedback component is configured to collect a current output by the first inverter and feed the collected current back to an input terminal of the first inverter; The second inverter has an input terminal electrically connected to the n-type signal output terminal of the amplitude amplifying module, and an output terminal formed as a p-type signal output terminal of the clock receiving circuit; The second feedback component is configured to collect a current output by the second inverter and feed the collected current back to an input terminal of the second inverter.
[0011] Optionally, the first feedback component comprises a first n-type feedback transistor and a first p-type feedback transistor; the first n-type feedback transistor has a gate electrically connected to the output terminal of the first inverter, a first pole electrically connected to a high level signal terminal, and a second pole electrically connected to the input terminal of the first inverter; The first p-type feedback transistor has a gate electrically connected to the output terminal of the first inverter, a first pole grounded, and a second pole electrically connected to the input terminal of the first inverter.
[0012] Optionally, the second feedback component comprises a second n-type feedback transistor and a second p-type feedback transistor; the second n-type feedback transistor has a gate electrically connected to the output terminal of the second inverter, a first pole electrically connected to a high level signal terminal, and a second pole electrically connected to the input terminal of the second inverter; The second p-type feedback transistor has a gate electrically connected to the output terminal of the second inverter, a first pole grounded, and a second pole electrically connected to the input terminal of the second inverter.
[0013] As a second aspect of the present disclosure, there is provided an electronic device comprising a clock receiving circuit and a core module, wherein a clock signal input terminal of the core module is electrically connected to an output terminal of the clock receiving circuit, and the clock receiving circuit is the clock receiving circuit provided by the first aspect of the present disclosure.
[0014] Optionally, the core module is one of an analog-to-digital converter, a digital-to-analog converter, and a phase-locked loop module.
[0015] The core component of the clock receiving circuit provided by the embodiment of the present disclosure is an amplitude amplifier module, which has a p-type transistor differential pair and an n-type transistor differential pair as input and load, forming a push-pull structure to increase the equivalent transconductance of the entire amplitude amplifier module, and can provide a relatively large clock output swing under a low power supply voltage.
[0016] The clock receiving circuit can provide sufficient gain under a low power supply voltage to obtain a large output swing, and the output clock establishment process of the downstream core module is also correspondingly fast, thereby reducing and even avoiding the influence of noise in the clock establishment process, thereby reducing the output phase noise of the electronic device, reducing the power consumption of the electronic device, and improving the performance of the electronic device. [Brief description of the drawings]
[0017] [Figure 1] FIG. 1 is a circuit diagram of a clock signal receiving circuit in the related art. [Diagram 2] FIG. 2 is a schematic diagram of one embodiment of a clock receiving circuit provided by the present disclosure. [Diagram 3] FIG. 3 is a schematic diagram of one embodiment of a common-mode voltage adjustment module in a clock receiving circuit provided by the present disclosure. [Figure 4]FIG. 4 is a schematic diagram of one embodiment of an amplitude amplification module in a clock receiving circuit provided by the present disclosure. [Diagram 5] FIG. 5 is a schematic diagram of one embodiment of a level conversion module in a clock receiving circuit provided by the present disclosure. [Figure 6] FIG. 6 is a schematic diagram showing an electronic device in which the core module is a digital / analog converter or an analog / digital converter. [Figure 7] FIG. 7 is a schematic diagram showing a core module of an electronic device as a phase-locked loop circuit. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0018] In order to enable those skilled in the art to better understand the technical solution of the present disclosure, the clock receiving circuit and electronic device provided by the present disclosure are described in detail below in combination with the drawings.
[0019] Hereinafter, exemplary embodiments will be described in detail with reference to the drawings, but the exemplary embodiments may be embodied in different forms and should not be construed as being limited to the embodiments set forth herein. Rather, the purpose of providing these embodiments is to ensure that this disclosure is thorough and complete, and to allow those skilled in the art to fully understand the scope of the present disclosure.
[0020] Each embodiment and each feature in the embodiment of the present disclosure can be combined with each other unless there is a contradiction.
[0021] As used in this disclosure, the term "and / or" includes any and all combinations of one or more of the associated listed items.
[0022] The terms used in this disclosure are merely for describing certain embodiments and are not intended to limit the disclosure. The singular forms "a" and "the" used in this disclosure are intended to include the plural unless otherwise clearly stated in the context. It will be further understood that the terms "comprise" and "comprise" used in this specification refer to the presence of the features, wholes, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, wholes, steps, operations, elements, components, and / or groups thereof.
[0023] All terms used in this disclosure (including technical and scientific terms) have the same meaning as commonly understood by those skilled in the art, unless otherwise limited. In addition, those terms defined in common usage have meanings consistent with the meaning in the context of the relevant art and this disclosure, and will be further understood not to be construed as having ideal or overly formal meanings unless expressly defined in this disclosure.
[0024] As an embodiment of the present disclosure, a clock receiving circuit is provided, and as shown in FIG. 2, the clock receiving circuit includes a common mode voltage adjusting module 100, an amplitude amplifying module 200 and a level converting module 300.
[0025] As shown in FIG. 3, the common mode voltage adjustment module 100 includes an n-type signal conversion unit 110, a high-level n-type signal output terminal von_n, a low-level n-type signal output terminal vop_n, a p-type signal conversion unit 120, a high-level p-type signal output terminal von_p, and a low-level p-type signal output terminal vop_p.
[0026] The n-type signal conversion unit 110 is configured to convert the input n-type signal into a high-level n-type signal and output it via the high-level n-type signal output terminal von_n, and the n-type signal conversion unit 110 is further used to convert the input n-type signal into a low-level n-type signal and output it via the low-level n-type signal terminal vop_n.
[0027] The p-type signal conversion unit 120 is configured to convert the input p-type signal into a high-level p-type signal and output it via the high-level p-type signal output terminal von_p, and the p-type signal conversion unit 120 is further used to convert the input p-type signal into a low-level p-type signal and output it via the low-level p-type signal output terminal vop_p.
[0028] The amplitude amplification module 200 includes a p-type current source transistor M6, an n-type current source transistor M5, a p-type transistor differential pair 210, an n-type transistor differential pair 220 and a bias control unit 230.
[0029] The bias control unit 230 is configured to control the p-type current source transistor M6 and the n-type current source transistor M6 to operate in the saturation region.
[0030] A first electrode of the p-type current source transistor M6 is electrically connected to the high-level signal terminal, and a second electrode of the p-type current source transistor M6 is electrically connected to the two first terminals of the p-type transistor differential pair 210.
[0031] The p-type transistor differential pair 210 has two second terminals electrically connected to two first terminals of the n-type transistor differential pair 220, respectively, and two input terminals electrically connected to a low-level p-type signal output terminal vop_p and a low-level n-type signal output terminal vop_n, respectively, so that both of the two p-type transistors in the p-type transistor differential pair operate in the amplification region.
[0032] The n-type transistor differential pair 220 has two second terminals electrically connected to the first pole of the n-type current source transistor M5 and two input terminals electrically connected to the high-level p-type signal output terminal von_p and the high-level n-type signal output terminal von_n, respectively, so that the two n-type transistors in the n-type transistor differential pair both operate in the amplification region.
[0033] The level conversion module 300 is configured to convert the CML level signal output by the amplitude amplifier circuit into a CMOS level signal.
[0034] The core component of the clock receiving circuit provided by the present disclosure is an amplitude amplifier module 200, which uses a p-type transistor differential pair 210 and an n-type transistor differential pair 220 as input and load to each other, forming a push-pull structure that increases the equivalent transconductance of the entire amplitude amplifier module 200, and the amplitude amplifier module 200 can provide a relatively large clock output swing under a low power supply voltage. Note that the p-type transistor differential pair 210 and the n-type transistor differential pair 220 have two connection nodes, which are respectively formed as the n-type signal output terminal voutn and the p-type signal output terminal voup of the amplitude amplifier module 200.
[0035] The main function of the common mode voltage adjustment module 100 is to adjust the differential signal received by the clock receiving circuit and output it so that the transistors of the p-type transistor differential pair 210 and the n-type transistor differential pair 220 of the amplitude amplification module 200 can operate in the amplification region.
[0036] The function of the P-type current source transistor M6 and the N-type current source transistor M5 is to provide a driving current to the amplitude amplification module under the control of the bias control unit.
[0037] In the present disclosure, the specific structure of the p-type transistor differential pair is not particularly limited. In the embodiment shown in Fig. 4, the p-type transistor differential pair includes a first p-type transistor M4 and a second p-type transistor M3, a first pole of the first p-type transistor M4 is electrically connected to a first pole of the second p-type transistor M3, the first pole of the first p-type transistor M4 and the first pole of the second p-type transistor M3 are respectively formed as two first terminals of the p-type differential pair, the second pole of the first p-type transistor M4 and the second pole of the second p-type transistor M3 are respectively formed as two second terminals of the p-type differential pair, the gate of the first p-type transistor M4 and the gate of the second p-type transistor M3 are respectively formed as two input terminals of the p-type transistor differential pair, the gate of the first p-type transistor M4 (which is vin_p in Fig. 4) is electrically connected to a low-level n-type signal output terminal vop_p, and the gate of the second p-type transistor M3 (which is vip_p in Fig. 4) is electrically connected to a low-level p-type signal output terminal.
[0038] In addition, the second pole of the first p-type transistor M4 is formed as an n-type signal output terminal of the amplitude amplification module 200, and the second pole of the second p-type transistor M3 is formed as a p-type signal output terminal of the amplitude amplification module 200.
[0039] In the present disclosure, the specific structure of the n-type transistor differential pair is not particularly limited. As shown in Fig. 4, the n-type transistor differential pair includes a first n-type transistor M2 and a second n-type transistor M1, a first pole of the first n-type transistor M2 and a first pole of the second n-type transistor M1 are respectively formed as two first terminals of the n-type transistor differential pair, a first pole of the first n-type transistor M2 is electrically connected to a second pole of the first p-type transistor M4, and a first pole of the second n-type transistor M1 is electrically connected to a second pole of the second p-type transistor M3.
[0040] The second pole of the first n-type transistor M2 and the second pole of the second n-type transistor M1 are respectively formed as two second terminals of the n-type differential pair, and the second pole of the first n-type transistor M2 is electrically connected to the second pole of the second n-type transistor M1, and both are electrically connected to the first pole of the n-type current transistor M5.
[0041] The gate of the first n-type transistor M2 and the gate of the second n-type transistor M1 are respectively formed as two input terminals of the n-type transistor differential pair (in FIG. 4, these are vin_n and vip_n, respectively), the gate of the first n-type transistor M2 is electrically connected to the high-level n-type signal output terminal, and the gate of the second n-type transistor M1 is electrically connected to the high-level p-type signal output terminal.
[0042] In the present disclosure, the specific structure of the bias control unit 230 is not particularly limited, as long as it can bias the gates of the p-type current transistor M6 and the n-type current transistor M5 so that the p-type current transistor M6 and the n-type current transistor M5 operate in the saturation region.
[0043] In the embodiment shown in FIG. 4, the bias control unit includes a first n-type current mirror transistor M9, a second n-type current mirror transistor M7, a third n-type current mirror transistor M8, a fourth n-type current mirror transistor M10, a first p-type current mirror transistor M11 and a second p-type current mirror transistor M12.
[0044] A first pole of the first n-type current mirror transistor M9 is used for electrically connecting to a current source (the current source is provided to the reference circuit IREF), and the first n-type current mirror transistor M9 has a first pole electrically connected to the gate of the first n-type current mirror transistor M9 and a second pole electrically connected to the first pole of the second n-type current mirror transistor M7, and the second pole of the second n-type current mirror transistor M7 is grounded and has a gate electrically connected to the gate of the third n-type current mirror transistor M8 and the gate of the n-type current source transistor M5.
[0045] The third n-type current mirror transistor M8 has a first electrode grounded and a second electrode electrically connected to a first electrode of the fourth n-type current mirror transistor M10.
[0046] The fourth n-type current mirror transistor M10 has a second electrode electrically connected to the first electrode of the first p-type current mirror transistor M111, and a gate electrically connected to the gate of the first n-type current mirror transistor M11.
[0047] The first p-type current mirror transistor M11 has a gate electrically connected to a first pole of the first p-type current mirror transistor M11, and a second pole electrically connected to a first pole of the second p-type current mirror transistor M12.
[0048] A second electrode of the second p-type current mirror transistor M12 is used to electrically connect to a high level signal terminal, and a gate of the second p-type current mirror transistor M12 is electrically connected to the gate of the p-type current source transistor M6.
[0049] In the present disclosure, the gate of the n-type current source transistor M5 is electrically connected to the gate of the second n-type current mirror transistor M7, so that the gate voltage of the n-type current source transistor M5 is the same as the gate voltage of the second n-type current mirror transistor M7. By controlling the dimensions of the first n-type current mirror transistor M5 and the second n-type current mirror transistor M7, a gate voltage that makes the n-type current source transistor M5 operate in the saturation region can be obtained.
[0050] Similarly, the gate of the p-type current source transistor M6 is electrically connected to the gate of the second p-type current mirror transistor M12, so that the gate voltage of the p-type current source transistor M6 is the same as the gate voltage of the second p-type current mirror transistor M12. In the present disclosure, the first n-type current mirror transistor M9, the second n-type current mirror transistor M7, the third n-type current mirror transistor M8, and the fourth n-type current mirror transistor M10 form a current mirror. Therefore, the current of the fourth n-type current mirror transistor M10 is proportional to the current of the first n-type current mirror transistor M9, and the current received by the first p-type current mirror transistor M11 is the same as the current of the fourth n-type current mirror transistor M10 and is proportional to the current received by the first pole of the first n-type current mirror transistor M9. By controlling the dimensions of the first p-type current mirror transistor M11 and the second p-type current mirror transistor M12, a gate voltage that causes the p-type current source transistor M6 to operate in the saturation region can be obtained.
[0051] In the present disclosure, there is no particular limitation on the specific structure of the common mode voltage adjusting module 100. As shown in Fig. 3, the common mode voltage adjusting module further includes an impedance matching resistor R11, a first voltage dividing resistor R1 and a second voltage dividing resistor R2, the impedance matching resistor R11 is connected between the p port vip and the n port vin of the common mode voltage adjusting module, and one end of the first voltage dividing resistor R1 is electrically connected to the high level signal terminal.
[0052] The p-type signal conversion unit 120 includes a first coupling capacitor C1, a third coupling capacitor C3, and a third resistor R3, a fifth resistor R5, a seventh resistor R7, and a ninth resistor R9 connected in series in this order. One end of the third coupling capacitor C3 is electrically connected to the other end of the first voltage dividing resistor R1, the ninth resistor R9 is electrically connected to one end of the second voltage dividing resistor R2, a second terminal of the second voltage dividing resistor R2 is grounded, the first coupling capacitor C1 is connected in parallel to the fifth resistor R5, the high-level p-type signal output terminal von_p is electrically connected to the connection point between the third resistor R3 and the fifth resistor R5, the third coupling capacitor C3 is connected in parallel to the seventh resistor R7, the low-level p-type signal output terminal vop_p is electrically connected to the connection point between the seventh resistor R7 and the ninth resistor R9, and the p-port vip is electrically connected to the connection point between the fifth resistor R5 and the seventh resistor R7.
[0053] The n-type signal conversion unit 110 includes a second coupling capacitor C2, a fourth coupling capacitor C4, and a fourth resistor R4, a sixth resistor R6, an eighth resistor R8, and a tenth resistor R10 connected in series in this order. One end of the fourth coupling capacitor C4 is electrically connected to the other end of the first voltage dividing resistor R1, the tenth resistor R10 is electrically connected to one end of the second voltage dividing resistor R2, the second coupling capacitor C2 is connected in parallel to the sixth resistor R6, the high-level n-type signal output terminal von_n is electrically connected to the connection point between the fourth resistor R4 and the sixth resistor R6, the fourth coupling capacitor C4 is connected in parallel to the eighth resistor R8, the low-level n-type signal output terminal vop_n is electrically connected to the connection point between the eighth resistor R8 and the tenth resistor R10, and the n-port vin is electrically connected to the connection point between the sixth resistor R6 and the eighth resistor R8.
[0054] In the present disclosure, the common-mode voltage is adjusted using a resistor chain, allowing the resistance value to be flexibly adjusted according to the application, and thus the common-mode voltage to be changed, thereby improving the flexibility of the circuit.
[0055] In the present disclosure, there is no particular limitation on the specific structure of the level conversion module 300. For example, as shown in FIG. 5, the level conversion module includes a first inverter 310, a second inverter 320, a first feedback component 330, and a second feedback component 340.
[0056] The first inverter 310 has an input terminal vip1 electrically connected to the p-type signal output terminal of the amplitude amplification module 200, and an output terminal formed as the n-type signal output terminal voutn1 of the clock receiving circuit.
[0057] The first feedback component 330 is configured to collect the output signal of the first inverter 310 and feed the collected signal back to the input terminal of the first inverter 310 to provide a coarse correction to the output of the first inverter 310 .
[0058] The second inverter 320 has an input terminal vin1 electrically connected to the n-type signal output terminal of the amplitude amplification module 200, and an output terminal formed as the p-type signal output terminal voutn2 of the clock receiving circuit.
[0059] The second feedback component 340 is configured to collect the output signal of the second inverter 320 and feed the collected signal back to the input terminal of the second inverter 320 to provide a coarse correction to the output of the second inverter 320 .
[0060] 5, the first inverter 310 includes a first p-type transistor M13 and a first n-type transistor M14. The first p-type transistor M13 has a first pole electrically connected to a high-level signal terminal, a gate electrically connected to the input terminal vip1 of the first inverter 310, a second pole electrically connected to the first pole of the first n-type transistor M14 and electrically connected to the output terminal of the first inverter 310, and the first n-type transistor has a second pole grounded and a gate electrically connected to the input terminal vip1 of the first inverter 310.
[0061] 5, the second inverter 320 includes a second p-type transistor M15 and a second n-type transistor M16. The second p-type transistor M15 has a first pole electrically connected to a high level signal terminal, a gate electrically connected to the input terminal vin1 of the second inverter 320, a second pole electrically connected to the first pole of the second n-type transistor M16 and electrically connected to the output terminal of the second inverter 320, and the second n-type transistor M16 has a second pole grounded, and a gate electrically connected to the input terminal vin1 of the second inverter 320.
[0062] In the present disclosure, there is no particular limitation on the specific structure of the first feedback component 330. As shown in Fig. 5, the first feedback component 330 includes a first n-type feedback transistor M17 and a first p-type feedback transistor M18.
[0063] The first n-type feedback transistor M17 has a gate electrically connected to the output terminal of the first inverter 310, a first electrode electrically connected to the high-level signal terminal, and a second electrode electrically connected to the input terminal of the first inverter 330.
[0064] The first p-type feedback transistor M18 has a gate electrically connected to the output terminal of the first inverter 310, a first electrode grounded, and a second electrode electrically connected to the input terminal of the first inverter 330.
[0065] Both the first n-type feedback transistor M17 and the first p-type feedback transistor M18 are components whose conduction is controlled by voltage, and do not generate power when the conduction condition is not satisfied, so that the first feedback component including the first n-type feedback transistor M17 and the first p-type feedback transistor M18 can reduce the overall power consumption of the clock receiving circuit.
[0066] This disclosure does not particularly limit the specific structure of the second feedback component 340. Optionally, as shown in Figure 5, the second feedback component 340 may include a second n-type feedback transistor M19 and a second p-type feedback transistor M20.
[0067] The second n-type feedback transistor M19 has a gate electrically connected to the output terminal of the second inverter 320, a first electrode electrically connected to a high-level signal terminal, and a second electrode electrically connected to the input terminal of the second inverter.
[0068] The second p-type feedback transistor M20 has a gate electrically connected to the output terminal of the second inverter 320, a first electrode grounded, and a second electrode electrically connected to the input terminal of the second inverter 320.
[0069] Both the second n-type feedback transistor M19 and the second p-type feedback transistor M29 are components whose conduction is controlled by voltage, and do not generate power when the conduction condition is not satisfied. Therefore, the first feedback component including the second n-type feedback transistor M19 and the second p-type feedback transistor M20 can reduce the overall power consumption of the clock receiving circuit.
[0070] By employing a first feedback component 330 including a first n-type feedback transistor M17 and a first p-type feedback transistor M18, and a second feedback component 340 including a second n-type feedback transistor M19 and a second p-type feedback transistor M20, not only can the overall power consumption be reduced, but the layout is simplified and the occupied area is reduced, thereby improving the integration level of the entire clock receiving circuit.
[0071] A second aspect of the present disclosure provides an electronic device including a clock receiving circuit and a core module, the clock signal input terminal of the core module being electrically connected to an output terminal of the clock receiving circuit.
[0072] Since the clock receiving circuit can provide sufficient gain and obtain a large output swing under a low power supply voltage, the output clock establishment process of the downstream core module is also correspondingly fast, and the influence of noise in the clock establishment process can be reduced and even avoided, thereby reducing the output phase noise of the electronic device, reducing the power consumption of the electronic device, and improving the performance of the electronic device.
[0073] In the present disclosure, the core module is not particularly limited. Optionally, the core module is one of an analog-to-digital converter, a digital-to-analog converter, and a phase-locked loop module.
[0074] FIG. 6 shows the case where the core module is a digital-to-analog converter or an analog-to-digital converter, and FIG. 7 shows the case where the core module is a phase-locked loop module.
[0075] Although exemplary embodiments are disclosed herein and specific terms are used, they are used and should be construed as being used in a general descriptive sense only and not for purposes of limitation. In some instances, it will be apparent to one skilled in the art that features, characteristics, and / or elements described in connection with a particular embodiment may be used alone or in combination with features, characteristics, and / or elements described in connection with other embodiments, unless expressly indicated otherwise. Thus, one skilled in the art will appreciate that changes in form and detail may be made without departing from the scope of the present disclosure as defined by the appended claims.
Claims
1. A clock receiving circuit including a common mode voltage adjustment module, an amplitude amplification module and a level conversion module, The common mode voltage adjustment module includes an n-type signal conversion unit, a high level n-type signal output terminal, a low level n-type signal output terminal, a p-type signal conversion unit, a high level p-type signal output terminal, and a low level p-type signal output terminal, the n-type signal conversion unit is configured to convert an input n-type signal into a high level n-type signal and output it through the high level n-type signal output terminal, the n-type signal conversion unit is configured to convert an input n-type signal into a low level n-type signal and output it through the low level n-type signal, the p-type signal conversion unit is further configured to convert an input p-type signal into a high level p-type signal and output it through the high level p-type signal output terminal, the p-type signal conversion unit is further configured to convert an input p-type signal into a low level p-type signal and output it through the low level p-type signal output terminal; The amplitude amplification module includes a p-type current source transistor, an n-type current source transistor, a p-type transistor differential pair, an n-type transistor differential pair, and a bias control unit; the bias control unit is configured to control the p-type current source transistor and the n-type current source transistor to operate in a saturation region; the p-type current source transistor has a first pole electrically connected to a high-level signal terminal and a second pole electrically connected to two first terminals of the p-type transistor differential pair; the p-type transistor differential pair has two second terminals electrically connected to the two first terminals of the n-type transistor differential pair, respectively, and two input terminals electrically connected to the low level p-type signal output terminal and the low level n-type signal output terminal, respectively, so that two p-type transistors in the p-type transistor differential pair both operate in an amplification region; the n-type transistor differential pair has two second terminals electrically connected to the first poles of the n-type current source transistors and two input terminals electrically connected to the high level p-type signal output terminal and the high level n-type signal output terminal, respectively, so that two n-type transistors in the n-type transistor differential pair both operate in an amplification region; The level conversion module is configured to convert the CML level signal output by the amplitude amplification module into a CMOS level signal; The common mode voltage adjustment module further includes an impedance matching resistor, a first voltage dividing resistor and a second voltage dividing resistor, the impedance matching resistor is connected between the p port and the n port of the common mode voltage adjustment module, and one end of the first voltage dividing resistor is electrically connected to a high level signal terminal; the p-type signal conversion unit includes a first coupling capacitor, a third coupling capacitor, and a third resistor, a fifth resistor, a seventh resistor and a ninth resistor connected in series in sequence, one end of the third resistor is electrically connected to the other end of the first voltage dividing resistor, the ninth resistor is electrically connected to one end of the second voltage dividing resistor, a second terminal of the second voltage dividing resistor is grounded, the first coupling capacitor is connected in parallel to the fifth resistor, the high level p-type signal output terminal is electrically connected to a connection point between the third resistor and the fifth resistor, the third coupling capacitor is connected in parallel to the seventh resistor, the low level p-type signal output terminal is electrically connected to a connection point between the seventh resistor and the ninth resistor, and the p port is electrically connected to a connection point between the fifth resistor and the seventh resistor; the n-type signal conversion unit includes a second coupling capacitor, a fourth coupling capacitor, and a fourth resistor, a sixth resistor, an eighth resistor and a tenth resistor connected in series in sequence, one end of the fourth resistor is electrically connected to the other end of the first voltage dividing resistor, the tenth resistor is electrically connected to one end of the second voltage dividing resistor, the second coupling capacitor is connected in parallel to the sixth resistor, and the high level n-type signal output terminal is electrically connected to a connection point between the fourth resistor and the sixth resistor, the fourth coupling capacitor is connected in parallel to the eighth resistor, and the low level n-type signal output terminal is electrically connected to a connection point between the eighth resistor and the tenth resistor, and the n-port is electrically connected to a connection point between the sixth resistor and the eighth resistor; Clock receiving circuit.
2. the p-type transistor differential pair comprises a first p-type transistor and a second p-type transistor; a first pole of the first p-type transistor is electrically connected to a first pole of the second p-type transistor, the first pole of the first p-type transistor and the first pole of the second p-type transistor are respectively formed as two first terminals of the p-type transistor differential pair, the second pole of the first p-type transistor and the second pole of the second p-type transistor are respectively formed as two second terminals of the p-type transistor differential pair, a gate of the first p-type transistor and a gate of the second p-type transistor are respectively formed as two input terminals of the p-type transistor differential pair, a gate of the first p-type transistor is electrically connected to the low level n-type signal output terminal, and a gate of the second p-type transistor is electrically connected to the low level p-type signal output terminal.
2. The clock receiving circuit according to claim 1.
3. the n-type transistor differential pair comprises a first n-type transistor and a second n-type transistor, a first pole of the first n-type transistor and a first pole of the second n-type transistor are respectively formed as two first terminals of the n-type transistor differential pair, the first pole of the first n-type transistor is electrically connected to the second pole of the first p-type transistor, and the first pole of the second n-type transistor is electrically connected to the second pole of the second p-type transistor; a second pole of the first n-type transistor and a second pole of the second n-type transistor are respectively formed as two second terminals of the n-type transistor differential pair, and the second pole of the first n-type transistor is electrically connected to the second pole of the second n-type transistor; a gate of the first n-type transistor and a gate of the second n-type transistor are respectively formed as two input terminals of the n-type transistor differential pair, the gate of the first n-type transistor is electrically connected to the high-level n-type signal output terminal, and the gate of the second n-type transistor is electrically connected to the high-level p-type signal output terminal; 3. The clock receiving circuit according to claim 2.
4. the bias control unit comprises a first n-type current mirror transistor, a second n-type current mirror transistor, a third n-type current mirror transistor, a fourth n-type current mirror transistor, a first p-type current mirror transistor and a second p-type current mirror transistor; the first n-type current mirror transistor is configured to have a first pole electrically connected to a current source, a first pole electrically connected to a gate of the first n-type current mirror transistor, and a second pole electrically connected to a first pole of the second n-type current mirror transistor; the second n-type current mirror transistor has a second pole grounded and a gate electrically connected to a gate of the third n-type current mirror transistor and a gate of the n-type current source transistor; the third n-type current mirror transistor has a first electrode grounded and a second electrode electrically connected to a first electrode of the fourth n-type current mirror transistor; the fourth n-type current mirror transistor has a second electrode electrically connected to the first electrode of the first p-type current mirror transistor and a gate electrically connected to the gate of the first n-type current mirror transistor; the first p-type current mirror transistor has a gate electrically connected to a first pole of the first p-type current mirror transistor and a second pole electrically connected to a first pole of the second p-type current mirror transistor; the second p-type current mirror transistor is configured such that a second pole is electrically connected to a high level signal terminal and a gate is electrically connected to the gate of the p-type current source transistor; 4. The clock receiving circuit according to claim 1.
5. the level conversion module comprises a first inverter, a second inverter, a first feedback component, and a second feedback component; The first inverter has an input terminal electrically connected to the p-type signal output terminal of the amplitude amplifying module, and an output terminal formed as an n-type signal output terminal of the clock receiving circuit; the first feedback component is configured to collect a current output by the first inverter and feed the collected current back to an input terminal of the first inverter; The second inverter has an input terminal electrically connected to the n-type signal output terminal of the amplitude amplifying module, and an output terminal formed as a p-type signal output terminal of the clock receiving circuit; the second feedback component is configured to collect a current output by the second inverter and feed the collected current back to an input terminal of the second inverter.
4. The clock receiving circuit according to claim 1.
6. the first feedback component comprises a first n-type feedback transistor and a first p-type feedback transistor; the first n-type feedback transistor has a gate electrically connected to the output terminal of the first inverter, a first pole electrically connected to a high level signal terminal, and a second pole electrically connected to the input terminal of the first inverter; the first p-type feedback transistor has a gate electrically connected to the output terminal of the first inverter, a first pole grounded, and a second pole electrically connected to the input terminal of the first inverter; 6. The clock receiving circuit according to claim 5.
7. the second feedback component comprises a second n-type feedback transistor and a second p-type feedback transistor; the second n-type feedback transistor has a gate electrically connected to the output terminal of the second inverter, a first pole electrically connected to a high level signal terminal, and a second pole electrically connected to the input terminal of the second inverter; the second p-type feedback transistor has a gate electrically connected to the output terminal of the second inverter, a first pole grounded, and a second pole electrically connected to the input terminal of the second inverter; 6. The clock receiving circuit according to claim 5.
8. A clock receiving circuit and a core module, the clock signal input terminal of the core module being electrically connected to the output terminal of the clock receiving circuit, the clock receiving circuit being the clock receiving circuit according to any one of claims 1 to 7. electronic equipment.
9. The core module comprises: The device is characterized in that it is one of an analog / digital converter, a digital / analog converter, and a phase-locked loop module.
9. The electronic device according to claim 8.
Citation Information
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