1. Field of Invention
The present invention generally relates to a voltage generator, and more particularly to a band gap voltage generator.
2. Description of Prior Art
A sensor technology is more and more familiar with people's life. The sensor used to sense an environment temperature could be also interesting in electronic consume device application. A precision temperature sensor in a chip within a system could gain advantages in future value-added products. Base on a band-gap voltage generator for providing a temperature independent voltage and a proportional to absolute temperature voltage. The temperature sensor in prior art compares a reference voltage VREF and a proportional to absolute temperature voltage to get temperature information. That is, it is important to design a precisely band-gap voltage generator, and such as that, the environment temperature can be precisely detected.
The present invention provides a voltage generator for generating an output voltage proportional to an environment temperature.
The voltage generator provided by the present invention includes: a first current source, a second current source, a first resistor, a reference voltage generator, a first amplifier and a second amplifier. The first current source generates a first current and a second current according to a first bias voltage, and the second current is provided to a common end. The first and second currents have a first temperature coefficient. The second current source generates a third current and a fourth current according to a second bias voltage, and the third and fourth currents have a second temperature coefficient. The first resistor has a first and second ends, the first end is coupled to the first current source for receiving the first current. The first resistor generates an output voltage on the first end. The reference voltage generator provides a first reference voltage and a second reference voltage according to the first and third currents. The first amplifier is coupled to the reference voltage generator and the first current source. The first amplifier generates the first bias voltage according to the first and second reference voltages. The second resistor is coupled between the second current source and the reference ground, and the second resistor receives the second current source for generating a third reference voltage. The second amplifier is coupled to the reference voltage generator and the second current source. The second amplifier generates the second bias voltage according to the second and third reference voltages. Wherein, the first temperature coefficient and the second temperature coefficient are complementary.
Accordingly, the voltage generator provided by present disclosure generates the output voltage according to the second current with the first temperature coefficient and the third current with the second temperature coefficient, wherein, the first and second temperature coefficients are complementary. The proposed voltage generator may reduce the device mismatch factor and the performance is promoted. Beside, the voltage generator provided by the disclosure is quite simple and save more size for reducing the prime cost.
It is to be understood that both the foregoing general description and the following detailed description are exemplary, and are intended to provide further explanation of the invention as claimed.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Reference will now be made in detail to the present preferred embodiment of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
Referring to
Since the first and the second temperature coefficient are complementary, a voltage VREF on the common end CT may be independent to the environment temperature.
The reference voltage generator 130 is coupled to the common end CT, and the reference voltage generator 130 receives the second current I2 and the third current I3 through the common end CT. Moreover, the reference voltage generator 130 generates a first reference voltage VR1 and a second reference voltage VR2 according to the second current I2 and the third current I3. The amplifier AMP1 is coupled to the reference voltage generator 130, and a first input end of the amplifier AMP1 receives the first reference voltage VR1, and a second input end of the amplifier AMP1 receives the second reference voltage VR2. The amplifier AMP1 generates the first bias voltage VBIAS1, and provides the first bias voltage VBIAS1 to the current source 110. A first input end of the amplifier AMP2 receives the second reference voltage VR2, and a second input end of the amplifier AMP2 is coupled to the connection end of the resistor R2 and the current source 120. The amplifier AMP2 generates the second bias voltage VBIAS2 according to the second reference voltage VR2 and a voltage on the connection end of the resistor R2 and the current source 120.
The resistor R1 is coupled between the current source 110 and the reference ground GND. The resistor R1 receives the first current I1 and generates the output voltage VPTAT accordingly. If the first temperature coefficient is positive temperature coefficient, a voltage level of the output voltage VPTAT is direct proportion to the environment temperature. Beside, the resistor R2 is coupled between the second input end of the amplifier AMP2 and the reference ground. The voltage level on the second input end of the amplifier AMP2 is equal to a current level of the fourth current I4 times a resistance of the resistor R2.
By adding the third current I3 which has negative temperature coefficient to the reference voltage generator 130. A slope of a relationship curve between the first current I1 and a temperature variation is increased. When the voltage generator 100 is used to be a temperature detector, a comparing action between the voltage VREF and the output voltage VPTAT is easily to be achieved. Moreover, the output voltage VPTAT can suffer less devices mismatch to gain more accuracy.
Referring to
The current source 220 includes transistors M3 and M4. The control ends of the transistors M3 and M4 are coupled to the amplifier AMP2 for receiving the second bias voltage VBIAS2. The first ends of the transistors M3 and M4 are coupled to the reference power VDD. The second ends of the transistors M3 and M4 respectively generate a third current I3 and a fourth current I4. The third current I3 is provided to the common end CT, and the fourth current I4 is provided to an end E3. The end E3 is the connection end of the resistor R2, current source 220 and the amplifier AMP2.
The reference voltage generator 230 includes resistors R3, R4 and R5 and transistor T1 and T2. The resistor R3 is coupled between the common end CT and an end E1, wherein, the end E1 is coupled to a first input end of the amplifier AMP1. The resistor R1 is coupled between the common end CT and an end E2, the end E2 is coupled to a second input end of the amplifier AMP2. A first end of the resistor R5 is coupled to the end E2, and a second end of the resistor R5 is coupled to the transistor T2. A first end of the transistor T1 is coupled to the end E1, a second and a control end of the transistor T1 are coupled to the reference ground GND. A second and a control end of the transistor T2 are coupled to the reference ground GND.
The transistors T1 and T2 are configured to be diodes. The first end of the transistor T1 and T2 may be anodes of the diodes, and cathodes of the diodes are coupled to the reference ground GND.
Referring to
Referring to
Referring to
To sum up the discussion above, the present disclosure provides current sources to provide currents with different temperature coefficients to the reference voltage generator. A slope of a relationship curve between the first current and a temperature variation is increased accordingly. Moreover, the output voltage can suffer less devices mismatch to gain more accuracy.
Number | Name | Date | Kind |
---|---|---|---|
7224210 | Garlapati et al. | May 2007 | B2 |
7286002 | Jackson | Oct 2007 | B1 |
7915947 | Liu et al. | Mar 2011 | B2 |
20070052473 | McLeod | Mar 2007 | A1 |
20080224682 | Haiplik | Sep 2008 | A1 |
20090096510 | Ogiwara et al. | Apr 2009 | A1 |
20110169561 | Chu et al. | Jul 2011 | A1 |