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Research Article

Electronically tunable grounded immittance simulators using an EX-CCCII

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Pages 1625-1648 | Received 22 May 2019, Accepted 04 Jan 2020, Published online: 20 Feb 2020

References

  • Abaci, A., & Yuce, E. (2019). Single DDCC based new immittance function simulators employing only grounded passive elements and their applications. Microelectronics Journal, 83, 94–103.
  • Abuelma’atti, M. T., & Dhar, S. K. (2016). New CFOA-based floating immittance emulators. International Journal of Electronics, 103(12), 1984–1997.
  • Agrawal, D., & Maheshwari, S. (2017). Current-mode precision full-wave rectifier circuits. Circuits, Systems, and Signal Processing, 36(11), 4293–4308.
  • Biolek, D., Vavra, J., & Keskin, A. Ü. (2019). CDTA-based capacitance multipliers. Circuits, Systems, and Signal Processing, 38(4), 1466–1481.
  • Cicekoglu, M. O. (1998). Active simulation of grounded inductors with CCII+ s and grounded passive elements. International Journal of Electronics, 85(4), 455–462.
  • Dogan, M., & Yuce, E. (2019). CFOA based a new grounded inductor simulator and its applications. Microelectronics Journal, 90, 297–305.
  • Faseehuddin, M., Sampe, J., Shireen, S., & Ali, S. H. M. (2018). Lossy and lossless inductance simulators and universal filters employing a new versatile active block. Informacije MIDEM, 48(2), 97–113.
  • Gift, S. J. (2004). New simulated inductor using operational conveyors. International Journal of Electronics, 91(8), 477–483.
  • İbrahim, M. A., Minaei, S., Yüce, E., Herencsar, N., & Koton, J. (2012). Lossy/lossless floating/grounded inductance simulation using one DDCC. Radioengineering, 21(1), 3–10.
  • Kaçar, F., Yeşil, A., Minaei, S., & Kuntman, H. (2014). Positive/negative lossy/lossless grounded inductance simulators employing single VDCC and only two passive elements. AEU-International Journal of Electronics and Communications, 68(1), 73–78.
  • Khan, I. A., Ahmed, M. T., & Mimhaj, N. (1992). Novel technique for immittance simulation—realisation of some all-active simulators. International Journal of Electronics, 72(3), 431–441.
  • Khan, I. A., Ahmed, M. T., & Parveen, T. (1988, June). Novel wide-range electronically tunable ideal grounded inductance. In IEE Proceedings G-Electronic Circuits and Systems, 135(3), 104–106.
  • Maheshwari, S. (2013). Current conveyor all-pass sections: Brief review and novel solution. The Scientific World Journal, 2013, Article ID 429391, 6.
  • Maheshwari, S. (2018). Tuning approach for first-order filters and new current-mode circuit example. IET Circuits, Devices & Systems, 12(4), 478–485.
  • Maheshwari, S., & Agrawal, D. (2015). High performance voltage-mode tunable all-pass section. Journal of Circuits, Systems and Computers, 24(06), 1550080.
  • Maheshwari, S., & Khan, I. A. (2007). Novel voltage/current-mode translinear-C quadrature oscillator. Journal of Active and Passive Electronic Devices, 2(3), 235–239.
  • Maundy, B., & Gift, S. J. (2011). Active grounded inductor circuit. International Journal of Electronics, 98(5), 555–567.
  • Metin, B. (2012). Canonical inductor simulators with grounded capacitors using DCCII. International Journal of Electronics, 99(7), 1027–1035.
  • Metin, B., Herencsar, N., Koton, J., & Horng, J. W. (2014). DCCII-based novel lossless grounded inductance simulators with no element matching constrains. Radioengineering, 23(1), 532–539.
  • Mohammad, F., Sampe, J., Shireen, S., & Ali, S. H. M. (2017). Minimum passive components based lossy and lossless inductor simulators employing a new active block. AEU-International Journal of Electronics and Communications, 82, 226–240.
  • Myderrizi, I., Minaei, S., & Yuce, E. (2011). DXCCII-based grounded inductance simulators and filter applications. Microelectronics Journal, 42(9), 1074–1081.
  • Nagar, B. C., & Paul, S. K. (2019). Lossless grounded admittance simulator using OTRA. Analog Integrated Circuits and Signal Processing, 1–11. doi:10.1007/s10470-019-01410-4
  • Pathak, J. K., Singh, A. K., & Senani, R. (2016). New canonic lossy inductor using a single CDBA and its application. International Journal of Electronics, 103(1), 1–13.
  • Prasad, D., Bhaskar, D. R., & Pushkar, K. L. (2011). Realization of new electronically controllable grounded and floating simulated inductance circuits using voltage differencing differential input buffered amplifiers. Active and Passive Electronic Components, 2011, Article ID 101432, 8.
  • Sedef, H., Sagbas, M., & Acar, C. (2008). Current-controllable fully-integrated inductor simulator using CCCIIs. International Journal of Electronics, 95(5), 425–429.
  • Singh, A., Jain, M. K., & Wairya, S. (2019). Novel lossless grounded and floating inductance simulators employing a grounded capacitor based on CC-CFA. Journal of Circuits, Systems and Computers, 28(06), 1950093.
  • Singh, A. K., Kumar, P., & Senani, R. (2018). Electronically tunable grounded/floating inductance simulators using Z-copy CFCCC. Turkish Journal of Electrical Engineering & Computer Sciences, 26(2), 1041–1055.
  • Siripongdee, S., & Jaikla, W. (2017). Electronically controllable grounded inductance simulators using single commercially available IC: LT1228. AEU-International Journal of Electronics and Communications, 76, 1–10.
  • Tangsrirat, W. (2017). Synthetic grounded lossy inductance simulators using single VDIBA. IETE Journal of Research, 63(1), 134–141.
  • Tangsrirat, W. (2018). Actively floating lossy inductance simulators using voltage differencing buffered amplifiers. IETE Journal of Research, 1–14. doi:10.1080/03772063.2018.1433082
  • Yuce, E. (2007). Inductor implementation using a canonical number of active and passive elements. International Journal of Electronics, 94(4), 317–326.
  • Yuce, E., Minaei, S., & Cicekoglu, O. (2005). A novel grounded inductor realization using a minimum number of active and passive components. Etri Journal, 27(4), 427–432.

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