116
Views
2
CrossRef citations to date
0
Altmetric
Articles

Low-power analogue computational blocks based on high-performance floating-gate MOSFET resistor

, &
Pages 663-678 | Received 21 Nov 2017, Accepted 14 Jul 2018, Published online: 11 Jan 2019

References

  • Acosta, L., Jiménez, M., Carvajal, R., Lopez- Marin, A. J., & Angulo, J. R. 2009 .Highly linear tunable CMOS Gm-C low-pass filter. IEEE Transactions on Circuits and Systems-I: Regular Papers, 56: 2145–2158
  • Elwan, H., Mahmoud, S., & Soliman, M. (1996). CMOS voltage controlled floating resistor. International Journal of Electronics, 81, 571–576.
  • Fayomi, C. J. B., Sawan, M., & Roberts, G. W. (2004). Reliable circuit techniques for low-voltage analog design in deep submicron standard CMOS: A tutorial, analog integr. Circuits Signalling Processing, 39, 21–38.
  • Gevel., V. D., & Kuenen, J. C. (1994). Simple low voltage weak inversion MOS 1/X circuit. Electronic Letters, 30, 163–1640.
  • Herencsar, N., & Koton, J. (2016). New tunable resistorless CM first-order filter based on single CBTA and grounded capacitor. IEEE 59th International Midwestern Symposium on Circuits and Systems (MWSCAS).
  • Khateb, F., Dabbous, S. V., & Vlassis., S. (2013). A survey of non-conventional techniques for low-voltage low-power analog circuit design. Radioengineering, 22, 415–427.
  • Lee., B. W., Sheu., B. J., & Yang., J. (1991). Analog floating gate-synapses for general purpose VLSI neural computation. IEEE Transactions Circuits Systems, 38, 654–657.
  • Liu, W., & Liu, S. (2003). CMOS tunable 1/x circuit and its applications. IEICE Transactions on Fundamentals, 89, 1896–1899.
  • Lopez-Delgadillo, E. (2015). A digitally programmable active resistor with CMOS technology. IEICE Electronics. Express, 12, 1–10.
  • Maundy., B., Gift, S., & Aronhime, P. (2008). Practical voltage/current controlled grounded resistor with dynamic range extension. IET Circuits, Devices & Systems, 2, 201–206.
  • Naderi, A., Khoei, A., & Hadidi, K. 2007. High speed low power four quadrant CMOS current-mode multiplier, In Proceeding of the IEEE International Conference on Electronics, Circuits and Systems (pp. 1308–1311).
  • Navarro, I., Lopez-Martin, A. J., & De La Cruz, C. A. (2004). A compact four-quadrant floating-gate MOS multiplier. Analog Integrated Circuits & Signal Processing, 41, 159–166.
  • Pandey, N., & Paul, S. K. (2004). All-pass filters based on CCII− and CCCII. International Journal of Electronics, 81, 485–489.
  • Pandey, R., & Gupta, M. (2010). FGMOS based voltage-controlled grounded resistor. Radioengineering, 19, 455–459.
  • Razavi, B. (2002). Design of analog CMOS integrated circuits. India: Tata McGraw-Hill.
  • Rodriguez-Villegas, E. 2006. Low power and low voltage circuit design with the FGMOS transistor, IET Circuits, Devices and Systems Series.
  • Sawigun, C., & Mahattanakul, J. 2008. A 1.5 V wide input range, high-bandwidth, CMOS four-quadrant analog multiplier, In Proceeding of the IEEE International Symposium on Circuits and Systems, (pp. 2318–2321).
  • Shesharaman, K., & Kittur, H. (2012). An OTA based band pass filter for NMR applications. International Journal of Electronics, 99, 1635–1649.
  • Verma, B. K., Akasheb, S., & Sharma, S. (2015). Enhanced ground bounce noise reduction in a low leakage CMOS multiplier. International Journal of Electronics, 102, 1486–1501.
  • Vlassis, S., & Siskos, S. (2001). Differential-voltage attenuator based on floating-gate MOS transistors and its applications. IEEE Transactions on Circuits and Systems-I. Fundamental Theory and Applications, 52, 1372–1378.
  • Wang, Z. (1990). Novel voltage-controlled grounded resistor. Electronics Letters, 26, 1711–1712.
  • Wilson, G., & Chan, P. K. (1996). Novel voltage-controlled grounded resistor. Electronics Letters, 25, 1725–1726.
  • Yuce, E., Tokat, S., & Yucel., F. (2016). A new wideband electronically tunable grounded resistor employing only three MOS transistors. Turkish Journal of Elect Engg & Comparative Science, 24, 2442–2453.
  • Yuce., E., & Minaei, S. (2008). Universal current-mode filters and parasitic impedance effects on the filter performances. International Journal of Circuit Theory and Applications, 36, 161–171.
  • Zhang., W., Hu., Y., & Zheng., L. (2016). Design and simulation of a standing wave oscillator based PLL. Frontiers of Information Technology & Electronic Engineering, 17, 258–264.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.