Title :
Modeling of charge switching in ferroelectric capacitors
Author :
Sun, Shunming ; Kalkur, Thottam S.
Author_Institution :
Dept. of Electr. & Comput. Eng., Colorado Univ., Colorado Springs, CO, USA
fDate :
7/1/2004 12:00:00 AM
Abstract :
To simulate charge switching in ferroelectric capacitors, a pair of exponential growth and decay currents is mapped to the process of polarization reversal. This is based on the fact that these exponential currents [i.e., i = I/sub m/e/sup t///sup /spl tau//(t /spl les/ 0) and i = I/sub m/e/sup -t///sup /spl tau//(t /spl ges/ 0)], are completely specified by two constants I/sub m/ and /spl tau/ and each accommodates an integral charge Q = I/sub m//spl middot//spl tau/. Equating this charge to the remanent spontaneous polarization allows for the modeling of switching current. For practical circuit simulations for charge switching, this modeling of switching current is simplified to an exponential decay current whose integral charge is set equal to the total reversed spontaneous polarization. This is because an exponential decay current can be conveniently implemented by charging a series resistor and capacitor (RC) circuit with a pulse-voltage source. The voltage transitions of the pulse source are associated with the polarization reversal and can be controlled with a noninverting Schmitt trigger that toggles at the positive and negative coercive voltages of a ferroelectric capacitor. The final circuit model incorporates such electrical and geometrical parameters as capacitance, remanent spontaneous polarization, coercive field, electrode area, and film thickness of a ferroelectric, thin-film capacitor.
Keywords :
SPICE; dielectric hysteresis; dielectric polarisation; ferroelectric capacitors; ferroelectric switching; thin film capacitors; trigger circuits; Schmitt trigger; capacitance; charge switching; circuit model; coercive voltages; current response; exponential growth-decay currents; ferroelectric capacitors; ferroelectric switching; hysteresis loops; integrated ferroelectric circuit; polarization reversal; pulse source; remanent spontaneous polarization; thin-film capacitor; total reversed spontaneous polarization; voltage transitions; Circuit simulation; Ferroelectric materials; Polarization; Pulse circuits; Resistors; Switched capacitor circuits; Switching circuits; Thick film circuits; Trigger circuits; Voltage control;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2004.1320737