An 1 V Supply, 740 nW, 8.7 ppm/°C Bandgap Voltage Reference With Segmented Curvature Compensation

被引:5
|
作者
Chi-Wa, U. [1 ,2 ,3 ]
Liu, Cong [1 ,2 ,3 ]
Martins, Rui P. [1 ,2 ,3 ]
Lam, Chi-Seng [1 ,2 ,3 ]
机构
[1] Univ Macau, State Key Lab Analog & Mixed Signal VLSI, Macau 999078, Peoples R China
[2] Univ Macau, Inst Microelect, Macau 999078, Peoples R China
[3] Univ Macau, Fac Sci & Technol, Dept Elect & Comp Engn, Macau 999078, Peoples R China
关键词
Bandgap reference; segmented curvature compensation; temperature coefficient; REFERENCE CIRCUIT;
D O I
10.1109/TCSI.2023.3301736
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper presents a segmented curvature-compensated bandgap voltage reference (BGR) with low temperature coefficient (TC) and power consumption across a wide temperature range. In this work, we achieve temperature segmentation by comparing voltage instead of current, as in the conventional method, significantly reducing power consumption. Furthermore, we examine the trade-off between TC and power consumption, focusing on optimizing the number of temperature segments. In the core circuit, we utilize a regulated cascode current mirror to minimize channel length modulation induced error existing in the current-based BGR topology. We also introduce a replica structure to prevent oscillation and design comparators with the hysteresis characteristic to address noise influence. The proposed BGR, implemented in 65 nm CMOS, occupies an active area of 0.058 mm(2). Measurement results of 6 chips show that the achieved reference voltage of 431.3 mV under 1 V supply has the best TC of 8.7 ppm/degrees C over a temperature range of -40 degrees C to 90 degrees C, consuming 740 nW at 20 degrees C.
引用
收藏
页码:4755 / 4766
页数:12
相关论文
共 50 条
  • [41] Negative voltage bandgap reference with multilevel curvature compensation technique
    Liu Xi
    Liu Qian
    Jin Xiaoshi
    Zhao Yongrui
    Lee, Jong-Ho
    JOURNAL OF SEMICONDUCTORS, 2016, 37 (05)
  • [42] A 2.1-ppm/°C Current-Mode CMOS Bandgap Reference with Piecewise Curvature Compensation
    Wang, Ruocheng
    Lu, Wengao
    Niu, Yuze
    Liu, Zhaokai
    Zhao, Meng
    Zhang, Yacong
    Chen, Zhongjian
    2017 IEEE INTERNATIONAL SYMPOSIUM ON CIRCUITS AND SYSTEMS (ISCAS), 2017, : 254 - 257
  • [43] A 1.02 ppm/°C Precision Bandgap Reference with High-order Curvature Compensation for Fluorescence Detection
    Xiong, Bingjun
    Yan, Feng
    Mo, Wenji
    Guan, Jian
    Huang, Yuxuan
    Liu, Jingjing
    2024 IEEE INTERNATIONAL SYMPOSIUM ON CIRCUITS AND SYSTEMS, ISCAS 2024, 2024,
  • [44] Low voltage bandgap reference with closed loop curvature compensation
    Fan Tao
    Du Bo
    Zhang Zheng
    Yuan Guoshun
    JOURNAL OF SEMICONDUCTORS, 2009, 30 (03)
  • [45] Negative voltage bandgap reference with multilevel curvature compensation technique
    刘溪
    刘倩
    靳哓诗
    赵永瑞
    李宗昊
    Journal of Semiconductors, 2016, 37 (05) : 118 - 124
  • [46] A Curvature Compensation Technique for Low-Voltage Bandgap Reference
    Shen, Jie
    Chen, Houpeng
    Ni, Shenglan
    Song, Zhitang
    ENERGIES, 2021, 14 (21)
  • [47] A Compensated Bandgap Voltage Reference with Sub-1-V Supply Voltage
    Anton Pleteršek
    Analog Integrated Circuits and Signal Processing, 2005, 44 : 5 - 15
  • [48] A compensated bandgap voltage reference with sub-1-V supply voltage
    Pletersek, A
    ANALOG INTEGRATED CIRCUITS AND SIGNAL PROCESSING, 2005, 44 (01) : 5 - 15
  • [49] Untrimmed 6.2 ppm/°C bulk-isolated curvature-corrected bandgap voltage reference
    Basyurt, Pinar Basak
    Aksin, Devrim Yilmaz
    INTEGRATION-THE VLSI JOURNAL, 2014, 47 (01) : 30 - 37
  • [50] Sub-1 V, 5.5 ppm/°C, High PSRR all CMOS Bandgap Voltage Reference
    Khan, Sadeque Reza
    IETE JOURNAL OF RESEARCH, 2020, 66 (04) : 527 - 532