Araştırma Makalesi

Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models

Cilt: 2 Sayı: 1 18 Temmuz 2019
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Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models

Öz

The new circuit element memristor is under inspection for new type of analogue applications. Memristors are already used in some oscillator circuits. Recently, it has been shown that a sawtooth signal generator with a memristor can be made using HP model of Ti02 memristor and its emulator. HP memristor model is obsolete now. In literature, there are ionic memristor models which uses window functions. In this paper, several well-known nonlinear drift memristor model’s usability to simulate such a sawtooth signal generator is examined. Analysis of the sawtooth signal generator is done using five different models. It has been shown solving circuit equations that some of the models have closed form solutions and some of the solutions are invalid at the memristor boundaries (when the state variable is equal to zero or one). Biolek’s window function and a modified Biolek’s window function, Zha’s window function are found to be the most useful ones to model the memristor throughout its whole operation using simulations made in Matlab. Low and high frequency behavior of the signal generator is also shown.  

Anahtar Kelimeler

Kaynakça

  1. [1] L. O. Chua, "Memristor - The Missing Circuit Element," IEEE Trans. Circuit Theory, pp. vol. 18, pp. 507-519, 1971.
  2. [2] L. O. Chua ve S. M. Kang, «Memrisive devices and systems,» Proc.IEEE, pp. vol. 64, pp. 209-223, 1976.
  3. [3] S. Williams, D. B. Strukov, G. S. Snider ve D. R. Stewart, «The missing memristor found,» Nature (London), pp. vol. 453, pp. 80-83, 2008.
  4. [4] S. Williams, «How we found the missing memristor,» IEEE Spectrum, pp. 45(12), 28–35, 2008.
  5. [5] O. Kavehei, A. Iqbal, Y.S. Kim, K. Eshraghian, S.F. Al-Sarawi and D. Abbott, “The Fourth Element: Characteristics, Modelling, and Electromagnetic Theory of the Memristor,” Proceedings of Royal Society A, 2010.
  6. [6] Mazumder, P., Kang, S. M., & Waser, R. (2012). Memristors: devices, models, and applications. Proceedings of the IEEE, 100(6), 1911-1919.
  7. [7] Kavehei, O., Kim, Y. S., Iqbal, A., Eshraghian, K., Al-Sarawi, S. F., & Abbott, D. (2009, July). The fourth element: Insights into the memristor. In Communications, Circuits and Systems, 2009. ICCCAS 2009. International Conference on (pp. 921-927). IEEE.
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Ayrıntılar

Birincil Dil

İngilizce

Konular

Mühendislik

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

18 Temmuz 2019

Gönderilme Tarihi

22 Mayıs 2019

Kabul Tarihi

16 Temmuz 2019

Yayımlandığı Sayı

Yıl 2019 Cilt: 2 Sayı: 1

Kaynak Göster

APA
Kurtdemir, A., & Mutlu, R. (2019). Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models. European Journal of Engineering and Applied Sciences, 2(1), 44-57. https://izlik.org/JA99WT36PW
AMA
1.Kurtdemir A, Mutlu R. Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models. EJEAS. 2019;2(1):44-57. https://izlik.org/JA99WT36PW
Chicago
Kurtdemir, Ayvaz, ve Reşat Mutlu. 2019. “Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models”. European Journal of Engineering and Applied Sciences 2 (1): 44-57. https://izlik.org/JA99WT36PW.
EndNote
Kurtdemir A, Mutlu R (01 Temmuz 2019) Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models. European Journal of Engineering and Applied Sciences 2 1 44–57.
IEEE
[1]A. Kurtdemir ve R. Mutlu, “Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models”, EJEAS, c. 2, sy 1, ss. 44–57, Tem. 2019, [çevrimiçi]. Erişim adresi: https://izlik.org/JA99WT36PW
ISNAD
Kurtdemir, Ayvaz - Mutlu, Reşat. “Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models”. European Journal of Engineering and Applied Sciences 2/1 (01 Temmuz 2019): 44-57. https://izlik.org/JA99WT36PW.
JAMA
1.Kurtdemir A, Mutlu R. Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models. EJEAS. 2019;2:44–57.
MLA
Kurtdemir, Ayvaz, ve Reşat Mutlu. “Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models”. European Journal of Engineering and Applied Sciences, c. 2, sy 1, Temmuz 2019, ss. 44-57, https://izlik.org/JA99WT36PW.
Vancouver
1.Ayvaz Kurtdemir, Reşat Mutlu. Modeling and Simulation of a Memristor-Based Sawtooth Signal Generator Using Nonlinear Dopant Drift Memristor Models. EJEAS [Internet]. 01 Temmuz 2019;2(1):44-57. Erişim adresi: https://izlik.org/JA99WT36PW