Title :
A 1.6-V 25-
A 5-ppm/
C Curvature-Compensated Bandgap Reference
Author :
Zhou, Ze-kun ; Shi, Yue ; Huang, Zhi ; Zhu, Pei-Sheng ; Ma, Ying-Qian ; Wang, Yong-Chun ; Chen, Zao ; Ming, Xin ; Zhang, Bo
Author_Institution :
State Key Lab. of Electron. Thin Films & Integrated Devices, Univ. of Electron. Sci. & Technol. of China, Chengdu, China
fDate :
4/1/2012 12:00:00 AM
Abstract :
A high precision high-order curvature-compensated bandgap reference (BGR) compatible with standard BiCMOS process is presented in this paper that is capable of working down to input voltages of 1.6 V with 1.285 V output voltage. High-order curvature correction for this reference is accomplished by a novel piecewise technique, which realizes exponential curvature compensation in temperature range, and a logarithmic compensation term proportional to VT In T in higher temperature range through simple structures. Experimental results of the proposed BGR implemented in 0.5-μm BiCMOS process demonstrate that a temperature coefficient (TC) of 5 ppm/°C is realized at 3.6 V power supply, a power-supply noise attenuation (PSNA) of 70 dB is achieved without filtering capacitors, and the line regulation is better than 0.47 mV/V from 1.6 V to 5 V supply voltage while dissipating a maximum supply current of 25 μA. The active area of the presented BGR is 180 μm × 220 μm.
Keywords :
BiCMOS integrated circuits; energy gap; integrated circuit noise; BGR; PSNA; current 25 muA; exponential curvature compensation; high precision high-order curvature-compensated bandgap reference; high-order curvature correction; line regulation; logarithmic compensation; noise figure 70 dB; piecewise technique; power-supply noise attenuation; size 0.5 mum; standard BiCMOS process; temperature coefficient; temperature range; voltage 1.285 V; voltage 1.6 V; voltage 3.6 V; Photonic band gap; Resistors; Temperature dependence; Temperature distribution; Temperature measurement; Transistors; Exponential curvature compensation; PSNA without filtering capacitors; high-order curvature compensation; logarithmic compensation term; piecewise compensation technique; temperature coefficient;
Journal_Title :
Circuits and Systems I: Regular Papers, IEEE Transactions on
DOI :
10.1109/TCSI.2011.2169732