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A CMOS-based Temperature Sensor with Subthreshold Operation for Low-voltage and Low-power On-chip Thermal Monitoring

  • Na, Jun-Seok (Department of Electronics Engineering, Hanyang University) ;
  • Shin, Woosul (Department of Electronics Engineering, Hanyang University) ;
  • Kwak, Bong-Choon (Department of Electronics Engineering, Hanyang University) ;
  • Hong, Seong-Kwan (Department of Electronics Engineering, Hanyang University) ;
  • Kwon, Oh-Kyong (Department of Electronics Engineering, Hanyang University)
  • Received : 2016.10.17
  • Accepted : 2017.01.15
  • Published : 2017.02.28

Abstract

A CMOS-based temperature sensor is proposed for low-voltage and low-power on-chip thermal monitoring applications. The proposed temperature sensor converts a proportional to absolute temperature (PTAT) current to a PTAT frequency using an integrator and hysteresis comparator. In addition, it operates in the subthreshold region, allowing reduced power consumption. The proposed temperature sensor was fabricated in a standard 90 nm CMOS technology. Measurement results of the proposed temperature sensor show a temperature error of between -0.81 and $+0.94^{\circ}C$ in the temperature range of 0 to $70^{\circ}C$ after one-point calibration at $30^{\circ}C$, with a temperature coefficient of $218Hz/^{\circ}C$. Moreover, the measured energy of the proposed temperature sensor is 36 pJ per conversion, the lowest compared to prior works.

Keywords

References

  1. J. Long, S. O. Memik, G. Memik, and R. Mukherjee, "Thermal monitoring mechanisms for chip multiprocessors," ACM Trans. Archit. Code Optim., vol. 5, no. 2, pp. 1-33, Aug. 2008.
  2. C.-C. Chung and C.-R. Yang, "An autocalibrated all-digital temperature sensor for on-chip thermal monitoring," IEEE Trans. Circuits Syst. II, Exp. Briefs, vol. 58, no. 2, pp. 105-109, Feb. 2011. https://doi.org/10.1109/TCSII.2010.2104016
  3. H. Lakdawala, Y. W. Li, A. Raychowdhury, G. Taylor, and K. Soumyanath, "A 1.05 V 1.6 mW, $0.45^{\circ}C$ $3{\sigma}$ resolution ${\Sigma}{\Delta}$ based temperature sensor with parasitic resistance compensation in 32 nm digital CMOS process," IEEE J. Solid-State Circuits, vol. 44, no. 12, pp. 3621-3630, Dec. 2009. https://doi.org/10.1109/JSSC.2009.2035553
  4. M. Sasaki, M. Ikeda, and K. Asada, "A temperature sensor with an inaccuracy of -1/+$0.8^{\circ}C$ using 90-nm 1-V CMOS for online thermal monitoring of VLSI circuits," IEEE Trans. Semicond. Manuf., vol. 21, no. 2, pp. 201-208, May 2008. https://doi.org/10.1109/TSM.2008.2000424
  5. L. Lu, S. Block, D. E. Duarte, and C. Li, "A 0.45-V MOSFETs-based temperature sensor front-end in 90 nm CMOS with a noncalibrated ${\pm}3.5^{\circ}C$ $3{\sigma}$ relative inaccuracy from $-55^{\circ}C$ to $105^{\circ}C$," IEEE Trans. Circuits Syst. II, Exp. Briefs, vol. 60, no. 11, pp. 771-775, Nov. 2013. https://doi.org/10.1109/TCSII.2013.2281746
  6. P. Chen, T.-K. Chen, Y.-S. Wang, and C.-C. Chen, "A time-domain sub-micro Watt temperature sensor with digital set-point programing," IEEE Sens. J., vol. 9, no. 12, pp. 1639-1646, Dec. 2009. https://doi.org/10.1109/JSEN.2009.2029035
  7. S. S. Chouhan and K. Halonen, "Design and implementation of micro-power temperature to duty cycle converter using differential temperature sensing," Microelectronics J., vol. 46, no. 6, pp. 482-489, June 2015. https://doi.org/10.1016/j.mejo.2015.03.014
  8. B. Wang, M.-K. Law, A. Bermak, and H. C. Luong, "A passive RFID tag embedded temperature sensor with improved process spreads immunity for a $-30^{\circ}C$ to $60^{\circ}C$ sensing range," IEEE Trans. Circuits Syst. I, Reg. Papers, vol. 61, no. 2, pp. 337-346, Feb. 2014. https://doi.org/10.1109/TCSI.2013.2278388
  9. J. Yin et al., "A system-on-chip EPC Gen-2 passive UHF RFID tag with embedded temperature sensor," IEEE J. Solid-State Circuits, vol. 45, no. 11, pp. 2404-2420, Nov. 2010. https://doi.org/10.1109/JSSC.2010.2072631
  10. F. Deng, Y. He, B. Li, L. Zhang, X. Wu, Z. Fu, and L. Zuo, "Design of an embedded CMOS temperature sensor for passive RFID tag chips," Sensors, vol. 15, no. 5, pp. 11442-11453, May 2015. https://doi.org/10.3390/s150511442
  11. V. Szekely, C. Marta, Z. Kohari, and M. Rencz, "CMOS sensors for on-line thermal monitoring of VLSI circuits," IEEE Trans. Very Large Scale Integr. (VLSI) Syst., vol. 5, no. 3, pp. 270-276, Sep. 1997. https://doi.org/10.1109/92.609869
  12. G. Nenna, et al., "A study on thermal degradation of organic LEDs using IR imaging," Macromol. Symp., vol. 247, no. 1, pp. 326-332, Feb. 2007. https://doi.org/10.1002/masy.200750137
  13. B. Razavi, Design of Analog CMOS Integrated Circuits. Boston, MA, USA: McGraw-Hill, 2001.
  14. A. Wang, B. H. Calhoun, and A. P. Chandrakasan, Sub-threshold Design for Ultra Low-Power Systems. New York, NY, USA: Springer-Verlag, 2006.
  15. G. Giustolisi, G. Palumbo, M. Criscione, and F. Cutri, "A low-voltage low-power voltage reference based on subthreshold MOSFETs," IEEE J. Solid-State Circuits, vol. 38, no. 1, pp. 151-154, Jan. 2003. https://doi.org/10.1109/JSSC.2002.806266
  16. X. Cai, L. Luo, and Z. Li. "The design of subthreshold reference circuit using resistor temperature compensation," in Proc. IEEE Int. Midwest Symp. Circuits Syst., pp. 78-81, Aug. 2009.