A High-Order Temperature Compensated CMOS Bandgap Reference
Jianghua Chen, Xuewen Ni, Bangxian Mo
Abstract
Jianghua Chen, Xuewen Ni, Bangxian Mo
Abstract
A high-order temperature compensated bandgap reference (BGR) based on CSMC 0.5-μm 2P3M n-well mixed signal CMOS process is presented. This novel proposed CMOS bandgap reference takes advantage of both a Buck's voltage transfer cell and a temperature independent current, to provide a high-order temperature compensation of the base-emitter voltage V(subscript BE). Cascode structures are also introduced in this CMOS bandgap reference to improve the power supply rejection ratio (PSRR). This circuit achieves 5.6ppm/℃ of temperature coefficient with temperature range from-20 to 100℃ at 5 V power supply. The variation in the output voltage of the bandgap reference is 0.4 mV when power supply changes from 4 V to 6 V.
A significance statement is not available in the OpenAlex record.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
A high-order temperature compensated bandgap reference (BGR) based on CSMC 0.5-μm 2P3M n-well mixed signal CMOS process is presented. This novel proposed CMOS bandgap reference takes advantage of both a Buck's voltage transfer cell and a temperature independent current, to provide a high-order temperature compensation of the base-emitter voltage V(subscript BE). Cascode structures are also introduced in this CMOS bandgap reference to improve the power supply rejection ratio (PSRR). This circuit achieves 5.6ppm/℃ of temperature coefficient with temperature range from-20 to 100℃ at 5 V power supply. The variation in the output voltage of the bandgap reference is 0.4 mV when power supply changes from 4 V to 6 V.
Key concepts: Bandgap voltage reference, Power supply rejection ratio, Silicon bandgap temperature sensor, Voltage reference, CMOS, Temperature coefficient, Materials science, Cascode