1. Field of the Invention
The present invention relates to a bandgap reference circuit, and more particularly, to a bandgap reference circuit that can generate a constant current which is insensitive to fluctuations in temperature.
2. Description of the Prior Art
Please refer to
V
EB1
=V
EB2
+I
Q2
*R
3;
I
Q2=(VT*In(n))/R3=IQ1;
the output current Iout can be derived as follows:
I
out
=I
1
=I
Q1+(VEB1/R)=(VT*In(n))/R3+(VEB1/R),
where VEB1 and VEB2 are emitter-base voltages of the transistors Q1 and Q2, respectively, IQ1 and IQ2 are currents of the transistors Q1 and Q2, respectively, VT is the thermal voltage, and n is a ratio of a cross-sectional area of the transistor Q2 with respect to that of the transistor Q1.
In light of the above, because the value (VT*In(n))/R3 is positively correlated to temperature and the value (VEB1/R) is negatively correlated to temperature, the output current Iout is, ideally, constant with temperature.
In practice, however, because of imperfections such as unavoidable mismatches present in the amplifier 110, an input offset voltage VOS arises. The above formula for the output current Iout therefore becomes:
I
out=(VT*ln(n)±Vos)/R3+(VEB1/R).
Referring to the above formula, the output current lout may not be constant with temperature due to the offset voltage VOS.
In addition, please refer to
It is therefore an objective of the present invention to provide a bandgap reference circuit, which can generate a constant current that is insensitive to fluctuations in temperature, in order to solve the above-mentioned problems.
According to one embodiment of the present invention, a bandgap reference circuit comprises a modulator, an amplifier, a demodulator, a closed feedback loop and an output circuit. The modulator is utilized for modulating an input signal to generate a modulated input signal. The amplifier is utilized for amplifying the modulated input signal to generate an amplified modulated input signal. The demodulator is utilized for demodulating the amplified modulated input signal to generate a demodulated signal. The closed feedback loop is coupled between an output terminal of the demodulator and an input terminal of the modulator. The output circuit is utilized for generating an output current according to the demodulated signal, wherein the output current is a constant current that is insensitive to fluctuations in temperature.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
In addition, the P-N cross-sectional area of the transistor Q2 is different from that of the transistor Q1. In one embodiment of the present invention, the P-N cross-sectional area of the transistor Q2 is a multiple of the P-N cross-sectional area of the transistor Q1.
In the operations of the bandgap reference circuit 300, the modulator 310 receives a differential input signal from the nodes N1 and N2, and modulates the differential input signal to generate a modulated input signal, where a modulation signal Vmod used to modulate the differential input signal can be a periodic square wave, a periodic sinusoidal signal or any other appropriate modulation signal. During the modulation process, the modulator 310 acts to transform the slowly varying differential input signal to a higher frequency region within the signal spectrum.
The amplifier 310 then amplifies the modulated input signal to generate an amplified modulated input signal, where the amplified modulated input signal contains a component of the offset voltage VOS of the amplifier 320.
The demodulator 330 then demodulates the amplified modulated input signal to generate a demodulated signal, where a demodulation signal Vdemod used to demodulate the amplified modulated input signal can be a periodic square wave, a periodic sinusoidal signal or any other appropriate modulation signal. In one embodiment, the demodulation signal Vdemod is the same as the modulation signal Vmod. In addition, during the demodulation process, the portion of the amplified modulated input signal related to the offset voltage VOS is translated up in frequency, and the portion of the amplified modulated input signal related to the original differential input signal is modulated to be in the original frequency region.
The low-pass filter 340 filters the demodulated signal to generate a filtered demodulated signal. In the filtering process, because the portion of the demodulated signal related to the offset voltage VOS is shifted to the high frequency region, the portion of the demodulated signal related to the offset voltage VOS is removed. That is, the filtered demodulated signal merely includes the portion related to the original differential input signal.
In light of the above, after being processed by the modulator 310, the amplifier 320, the demodulator 330 and the low-pass filter 340, the differential input signal generated from the nodes N1 and N2 is merely amplified without being influenced by the offset voltage VOS.
For the whole operations of the bandgap reference circuit 300, because two input terminals of the amplifier 320 are virtual ground, voltages at the nodes N1 and N2 are substantially the same, and further referring to the following formulae:
V
EB1
=V
EB2
+I
Q2
*R
3;
I
Q2=(VT*ln(n))/R3=IQ1,
the output current Iout can be derived as follows:
I
out
=I
1
=I
Q1+(VEB1/R)=(VT*ln(n))/R3+(VEB1/R),
where VEB1 and VEB2 are emitter-base voltages of the transistors Q1 and Q2, respectively, IQ1 and IQ2 are currents of the transistors Q1 and Q2, respectively, VT is the thermal voltage, and n is a ratio of the cross-sectional area of the transistor Q2 with respect to that of the transistor Q1.
Because the influence of the offset voltage VOS of the amplifier 320 has been removed, the output current Iout of the bandgap reference circuit 300 is a constant current that is insensitive to fluctuations in temperature, and is stabilized by the actions of the modulator 310, the amplifier 320, the demodulator 330 and the components arranged on the closed feedback loop.
Briefly summarized, in the bandgap reference circuit of the present invention, the offset voltage of the amplifier can be removed by using the modulator, demodulator and filter, and the output current generated from the bandgap reference circuit is a constant current that is insensitive to fluctuations in temperature.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention.
Number | Date | Country | Kind |
---|---|---|---|
100110954 | Mar 2011 | TW | national |