Transimpedance amplifier
09748908 · 2017-08-29
Assignee
Inventors
Cpc classification
H03F1/34
ELECTRICITY
H03F2200/411
ELECTRICITY
H03F2200/408
ELECTRICITY
International classification
H03F1/30
ELECTRICITY
H03F1/34
ELECTRICITY
Abstract
Disclosed is a transimpedance amplifier, comprising a first-stage trans-conductance amplifier TCA, a second-stage TCA, a third-stage amplifier and a feedback circuit. The first-stage TCA is electrically connected to an input current source to receive a first input signal, and outputs a first output signal. The second-stage TCA is electrically connected to the first-stage TCA to receive the first output signal, and outputs a second output signal. The third-stage amplifier is electrically connected to the second-stage TCA to receive the second output signal, and outputs a third output signal. One end of the feedback circuit is electrically connected to the input of the first-stage TCA, and the other end of the feedback circuit is electrically connected to the output of the third-stage amplifier to stabilize the third output signal. The third-stage amplifier is composed of a first output stage and a second output stage.
Claims
1. A trans-impedance amplifier, comprising: a first-stage TCA having an input and an output, wherein the input of the first-stage TCA is electrically connected to an input current source to receive a first input signal, and the output of the first-stage TCA outputs a first output signal; a second-stage TCA having an input and an output wherein the input of the second-stage TCA is electrically connected to the output of the first-stage TCA to receive the first output signal, and the output of the second-stage TCA outputs a second output signal; a third-stage amplifier having an input and an output wherein input of the third-stage amplifier is electrically connected to the output of the second-stage TCA to receive the second output signal, and the output of the third-stage amplifier outputs a third output signal; a feedback circuit, wherein one end of the feedback circuit is electrically connected to the input of the first-stage TCA, and the other end of the feedback circuit is electrically connected to the output of the third-stage amplifier to stabilize the third output signal; wherein the third-stage amplifier comprises: a first output stage, comprising a current source, wherein the current source is electrically connected to a supply voltage source and the output of the third-stage amplifier; and a second output stage, comprising a first NMOS transistor and a second PMOS transistor, wherein the gates of the first NMOS transistor and the second PMOS transistor are connected to form the input of the third-stage amplifier, the source of the second PMOS transistor is electrically connected to the supply voltage source, the drain of the second PMOS transistor and the drain of the first NMOS transistor are electrically connected to the output of the third-stage amplifier, and the source of the first NMOS transistor is grounded; wherein the third-stage amplifier comprises: a bipolar junction transistor, wherein the emitter of the bipolar junction transistor is electrically connected to the input current source, and the base and the collector of the bipolar junction transistor are connected to the output of the third-stage amplifier; and a resistor network, connected in parallel to the bipolar junction transistor.
2. The trans-impedance amplifier of claim 1, wherein the resistor network comprises a bridged T network and a capacitor, wherein the bridged T network comprises three resistors, one end of the capacitor is electrically connected to the bridged T network and the other end of the capacitor is grounded.
3. The trans-impedance amplifier of claim 1, wherein the first-stage TCA, the second-stage TCA and the third-stage amplifier are connected in series to each other in a manner of direct coupling.
4. The trans-impedance amplifier of claim 1, further comprising a reference voltage circuit, connected in parallel to the third-stage amplifier and comprising a constant current unit, a third transistor, a fourth transistor, a fifth transistor, a sixth transistor and a resistor; wherein the constant current unit comprises a current mirror and a bias current source, the fifth transistor is connected in parallel to the constant current unit and electrically connected between the supply voltage source and the output of the reference voltage circuit, one end of the resistor is electrically connected to the source and the gate of the sixth transistor, and the other end of the resistor is electrically connected to the output of the reference voltage circuit, the third transistor, the fourth transistor and the current mirror are connected in parallel to each other, and the drain of the fourth transistor forms an output of the reference voltage circuit to output a reference voltage signal.
5. The trans-impedance amplifier of claim 4, wherein the voltage change rate of the reference voltage signal is close to or equal to that of the third output signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) Various exemplary embodiments will be described more fully with reference to the accompanying drawings, in which some exemplary embodiments are shown. However, the concept of the present invention may be embodied in many different forms and should not be construed as limited to the exemplary embodiments set forth herein. More specifically, the exemplary embodiments are provided so that this disclosure will be thorough and complete and will fully convey the scope of the invention to those skilled in the art. The size and relative sizes of layers and regions may be exaggerated for clarity in the drawings. Like numbers refer to like elements throughout.
(7) It will be understood that although the terms first, second, third, and the like are used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another element. Thus, a first element discussed below could be termed a second element without departing from the scope of the present invention. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items.
(8) [An Embodiment of Trans-Impedance Amplifier]
(9)
(10) Next, the principle of operation of the trans-impedance amplifier 1 is further described. As shown in
(11) In this embodiment, the first output stage OUT1 is the current source Is connected to a reference voltage source (not shown), which provides a stable current of which the current value is constant. After the input current source Iin begins to draw a current from the input, the current passing through the first NMOS transistor MN1 is decreased and also the current passing through the second PMOS transistor MP2 is increased, so that the voltage value of the third output signal TIAp is increased. The final voltage at the output of the TIA is controlled by the feedback resistors (R1 and R2) and the base-emitter voltage of the feedback BJT transistor B1.
(12) It is noted that, in this embodiment, because the third-stage amplifier TSA3 has both Class-A output stage and Class-AB output stage, the advantages in design of both Class-A output stage and Class-AB output stage are provided. That is, the elements of the first output stage OUT1 are maintained to be in the on-state to provide better linearity, and also, the second output stage OUT2 can further improve the efficiency of the third-stage amplifier TSA3.
(13) On the other hand, it should be noted in this embodiment that, both the first-stage TCA1 and the second-stage TCA2 are a Class-A output stage, and the first-stage TCA1, the second-stage TCA2 and the third-stage amplifier TSA3 are connected in series to each other in a manner of direct coupling. That is, no capacitor is arranged between the first-stage TCA1, the second-stage TCA2 and the third-stage amplifier TSA3, so in the circuit design, size ratios between the transistors should be particularly designed, such that the sensitivity of the overall trans-impedance amplifier to temperature changes and different manufacture processes can be improved.
(14) Referring to
(15) [Another Embodiment of Trans-Impedance Amplifier]
(16) In order to illustrate in further detail the circuit design of the trans-impedance amplifier of the present invention, another embodiment is provided below for further description.
(17) In the next embodiment, the portions different from the embodiment of
(18)
(19) Similar to those shown in
(20) Furthermore, the circuit design of the feedback circuit FB in this embodiment is the same as that in the embodiment as shown in
(21) [Another Embodiment of Trans-Impedance Amplifier]
(22) In order to illustrate in further detail the circuit design of the trans-impedance amplifier of the present invention, another embodiment is provided below for further description.
(23) In the next embodiment, the portions different from the embodiment of
(24)
(25) Next, referring to
(26) It is assumed that the temperature change is from −40° C. to 125° C., as shown in
(27) It can be known from the comparison of
(28) Furthermore, compared to the reference voltage circuit REF in the embodiment of
(29) It should also be noted that, similar to those shown in
(30) Furthermore, the circuit design of the feedback circuit FB in this embodiment is the same as that in the embodiments as shown in
Possible Effects of the Embodiments
(31) To sum up, in the trans-impedance amplifier provided in the embodiments of the present invention, the third-stage amplifier TSA3 composed of the first output stage and the second output stage is arranged where the first output stage has a circuit design in Class-A output stage and the second output stage has a circuit design in Class-AB output stage, such that the trans-impedance amplifier has the advantages of both a Class-A amplifier and a Class-AB amplifier, thereby reducing propagation delay of the trans-impedance amplifier. On the other hand, in the reference voltage circuit of the trans-impedance amplifier provided in the embodiments of the present invention, the fifth transistor is arranged in parallel to the constant current unit and electrically connected between the supply voltage source and the output of the constant current unit I′, so as to improve on the instability of the reference voltage signal due to temperature changes or different manufacture manners.
(32) The above description only provides embodiments of the present invention, but is not intended to limit the scope of the present invention.