Multi-bit digitally controlled accurate current source circuit
10712761 ยท 2020-07-14
Assignee
Inventors
- Tianlin Cao (Hangzhou, CN)
- Yichao He (Hangzhou, CN)
- Jie Lou (Hangzhou, CN)
- Qingping Li (Hangzhou, CN)
- Zhuoyuan Li (Hangzhou, CN)
Cpc classification
H03M1/742
ELECTRICITY
International classification
Abstract
This invention provides a multi-bit digitally controlled accurate current source circuit including a reference current detection unit, a voltage buffer unit, a digital logic control unit, a switch array unit, and a current source array unit. The reference current detection unit generates a first bias voltage according to a reference current; the voltage buffer unit receives the first bias voltage, and generate a buffer voltage accordingly; the digital logic control unit receives the buffer voltage, and generate a digital control signal accordingly; the switch array unit receives the digital control signal, and generate on-off signals accordingly; and the current source array unit receives and responds to the on-off signals so as to control turn-on and turn-off of the current sources in the current source array unit. In this invention, by adding only one voltage buffer, a cascode current source if formed, and an area saving accurate current source is realized.
Claims
1. A multi-bit digitally controlled accurate current source circuit, comprising: a reference current detection unit having a resistor, coupled with a reference current source and configured to generate a first bias voltage according to a reference current of the reference current source, wherein the generated first bias voltage comprises an unchanging first bias voltage; a voltage buffer unit, coupled with the reference current detection unit and configured to receive the first bias voltage of the reference current detection unit and to generate a buffer voltage according to the first bias voltage at the same time, wherein the generated buffer voltage comprises an unchanging buffer voltage; a digital logic control unit, coupled with the voltage buffer unit and configured to receive the buffer voltage of the voltage buffer unit and to generate a digital control signal according to the buffer voltage at the same time, wherein the digital logic control unit is powered by the buffer voltage of the voltage buffer unit; a switch array unit, coupled with the digital logic control unit and configured to receive the digital control signal of the digital logic control unit and to generate an on-off signal controlling a current source array unit according to the digital control signal at the same time; and the current source array unit, coupled with the switch array unit and the reference current detection unit, and configured to receive and respond to the on-off signal of the switch array unit so as to control turn-on and turn-off of a current source in the current source array unit.
2. The multi-bit digitally controlled accurate current source circuit according to claim 1, wherein a voltage gain of the voltage buffer unit is 1.
3. The multi-bit digitally controlled accurate current source circuit according to claim 1, wherein the reference current detection unit comprises: the resistor, comprising a positive end and a negative end, the positive end being coupled with an output end of the reference current source and an input end of the voltage buffer unit, and the negative end being coupled with a drain end of a first n-channel metal oxide semiconductor (NMOS) transistor and a gate end of a second NMOS transistor; the first NMOS transistor, the drain end of the first NMOS transistor being coupled with the negative end of the resistor, a gate end of the first NMOS transistor being coupled with the positive end of the resistor and the input end of the voltage buffer unit, and a source end of the first NMOS transistor being coupled with a drain end of the second NMOS transistor; and the second NMOS transistor, the drain end of the second NMOS transistor being coupled with the source end of the first NMOS transistor, the gate end of the second NMOS transistor being coupled with the negative end of the resistor and a gate end of the current source in the current source array unit, and a source end of the second NMOS transistor is grounded.
4. The multi-bit digitally controlled accurate current source circuit according to claim 3, wherein a voltage gain of the voltage buffer unit is 1.
5. The multi-bit digitally controlled accurate current source circuit according to claim 3, wherein the switch array unit comprises sub-switches the number of which is powers of 2, and the current source array unit comprises current sources the number of which corresponds to the number of the sub-switches.
6. The multi-bit digitally controlled accurate current source circuit according to claim 5, wherein a voltage gain of the voltage buffer unit is 1.
7. The multi-bit digitally controlled accurate current source circuit according to claim 5, wherein a plurality of sub-switches adopt NMOS transistors identical to the first NMOS transistor, gate ends of the NMOS transistors are coupled with an output end of the digital logic control unit, drain ends of the NMOS transistors are coupled with an output end of the accurate current source circuit, and source ends of the NMOS transistors are coupled with the current source.
8. The multi-bit digitally controlled accurate current source circuit according to claim 7, wherein a voltage gain of the voltage buffer unit is 1.
9. The multi-bit digitally controlled accurate current source circuit according to claim 5, wherein a plurality of current sources adopt NMOS transistors identical to the second NMOS transistor, drain ends of the NMOS transistors are coupled with the sub-switches, gate ends of the NMOS transistors are coupled with the negative end of the resistor and the gate end of the second NMOS transistor, and source ends of the NMOS transistors are grounded.
10. The multi-bit digitally controlled accurate current source circuit according to claim 9, wherein a voltage gain of the voltage buffer unit is 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
FIGURE REFERENCE NUMERALS
(5) 1. reference current detection unit; 2. voltage buffer unit; 3. digital logic control unit; 4. switch array unit; and 5. current source array unit.
DETAILED DESCRIPTION OF THE EMBODIMENTS
(6) The above and other technical features and advantages of this invention will be clearly and completely described combining with the accompanying drawings hereinafter. Apparently, the described embodiments are merely parts of the embodiments of this invention instead of all the embodiments.
(7) As shown in
(8) The reference current detection unit 1 includes a resistor R, a first NMOS transistor mn.sub.H, and a second NMOS transistor mn.sub.L. A positive end of the resistor R is coupled with an output end of the reference current source and an input end of the voltage buffer unit 2, and a negative end of the resistor R is coupled with a drain end of the first NMOS transistor mn.sub.H and a gate end of the second NMOS transistor mn.sub.L; the drain end of the first NMOS transistor mn.sub.H is coupled with the negative end of the resistor, a gate end of the first NMOS transistor mn.sub.H is coupled with the positive end of the resistor and the input end of the voltage buffer unit 2, and a source end of the first NMOS transistor mn.sub.H is coupled with a drain end of the second NMOS transistor mn.sub.L; and the drain end of the second NMOS transistor mn.sub.L is coupled with the source end of the first NMOS transistor mn.sub.H, the gate end of the second NMOS transistor mn.sub.L is coupled with the negative end of the resistor and a gate end of the current source in the current source array unit 5, and the source end of the second NMOS transistor mn.sub.L is grounded.
(9) The switch array unit 4 can include sub-switches with any number. In this embodiment, the switch array unit 4 includes 2i sub-switches identical to the first NMOS transistor mn.sub.H, sw.sub.i (i=0, 1, . . . , n1). Gate ends of the sub-switches are coupled with an output end of the digital logic control unit 3, drain ends of the sub-switches are coupled with an output end of n-bit current source, and source ends of the sub-switches are coupled with corresponding current sources in the current source array unit 5, respectively.
(10) The current source array unit 5 includes current sources having the same number with the sub-switches and being identical to the second NMOS transistor mn.sub.L, mn.sub.i (i=0, 1, . . . , n1). Drain ends of the current sources are coupled with source ends of the sub-switches, gate ends of the current sources are coupled with the negative end of the resistor, the drain end of the first NMOS transistor mn.sub.H, and the gate end of the second NMOS transistor mn.sub.L, and source ends of the current sources are grounded.
(11) In this embodiment, a voltage gain of the voltage buffer unit 2 is 1.
(12) The working principle of the multi-bit digitally controlled accurate current source circuit of this invention is as follows. According to the reference current i.sub.ref provided by the reference current source, the first bias voltage VrH and the bias voltage VrL are generated. The buffer voltage VDD.sub.vrH is generated by the voltage buffer according to the first bias voltage VrH, and VDD.sub.vrH is identical to VrH. The bias voltage VrL is directly connected with gate ends of the current sources in the current source array, and the buffer voltage VDD.sub.vrH outputted by the voltage buffer supplies power for the digital logic control unit 3. When an output code B.sub.i of the digital logic control unit 3 is logic 1, the voltage is equal to VDD.sub.vrH; and when B.sub.i is logic 0, the voltage is equal to the ground level. The output of the digital logic control unit 3 controls gate ends of the sub-switches in the switch array. When B.sub.i is logic 1, the current source of the i-th current source branch is turned on. At this time, voltages at gate ends of sw.sub.i and mn.sub.i are the same with voltages at gate ends of mn.sub.H and mn.sub.L, respectively. The dimensions of sw.sub.i and mn.sub.i are 2{circumflex over ()}i times mn.sub.H and mn.sub.L, respectively. Therefore, sw.sub.i and mn.sub.i form a cascode current source, and the current of the i-th current source branch is accurate 2{circumflex over ()}i.Math.i.sub.ref. When B.sub.i is logic 0, the current source of i-th current source branch is turned off.
(13) Compared with the conventional multi-bit current source, in this invention, by adding only one voltage buffer, the cascode current source array is formed, and the area of the accurate current source is greatly reduced.
(14) The specific embodiments described above further explain objectives, technical solutions, and beneficial effects of this invention, and it is understood that the above-mentioned description is only the embodiment of this invention and is not intended to limit the protection scope of this invention. It should be noted that for those skilled in the art, any made modifications, equivalent replacement, improvements, etc. within the spirit and principle of this invention are intended to be included in the protection scope of this invention.