Oscillatory circuits with real memristors have attracted a lot of interest in recent years. The vast majority of circuits involve volatile memristors, while less explored is the use of non-volatile memristors. This paper considers a Chua's circuit with a non-volatile memristor that obeys the Stanford model. Exploiting the fact that such a memristor can be modeled as a programmable nonlinear resistor within some voltage range, a procedure based on the Harmonic Balance (HB) method is derived to select the circuit parameters in order to generate a family of periodic solutions via a supercritical Hopf bifurcation. These oscillatory behaviors can be programmed by using the estimations of the period and magnitude provided by the procedure, as shown in the numerical example.

On the Design of Oscillatory Circuits Based on Stanford Memristor Model / Di Marco, Mauro; Forti, Mauro; Pancioni, Luca; Innocenti, Giacomo; Tesi, Alberto. - ELETTRONICO. - (2024), pp. 1-4. (Intervento presentato al convegno 2023 18th International Workshop on Cellular Nanoscale Networks and their Applications (CNNA) tenutosi a Xanthi, Greece nel 28-30 September 2023) [10.1109/cnna60945.2023.10652778].

On the Design of Oscillatory Circuits Based on Stanford Memristor Model

Innocenti, Giacomo;Tesi, Alberto
2024

Abstract

Oscillatory circuits with real memristors have attracted a lot of interest in recent years. The vast majority of circuits involve volatile memristors, while less explored is the use of non-volatile memristors. This paper considers a Chua's circuit with a non-volatile memristor that obeys the Stanford model. Exploiting the fact that such a memristor can be modeled as a programmable nonlinear resistor within some voltage range, a procedure based on the Harmonic Balance (HB) method is derived to select the circuit parameters in order to generate a family of periodic solutions via a supercritical Hopf bifurcation. These oscillatory behaviors can be programmed by using the estimations of the period and magnitude provided by the procedure, as shown in the numerical example.
2024
2023 18th International Workshop on Cellular Nanoscale Networks and their Applications (CNNA)
2023 18th International Workshop on Cellular Nanoscale Networks and their Applications (CNNA)
Xanthi, Greece
28-30 September 2023
Di Marco, Mauro; Forti, Mauro; Pancioni, Luca; Innocenti, Giacomo; Tesi, Alberto
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1400066
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