Title :
A Dual-Mode Highly Efficient Class-E Stimulator Controlled by a Low-Q Class-E Power Amplifier Through Duty Cycle
Author :
Hung-Wei Chiu ; Chien-Chi Lu ; Jia-min Chuang ; Wei-Tso Lin ; Chii-Wann Lin ; Ming-Chien Kao ; Mu-Lien Lin
Author_Institution :
Dept. of Electron. Eng., Nat. Taipei Univ. of Technol., Taipei, Taiwan
Abstract :
This paper presents the design flow of two high-efficiency class-E amplifiers for the implantable electrical stimulation system. The implantable stimulator is a high-Q class-E driver that delivers a sine-wave pulsed radiofrequency (PRF) stimulation, which was verified to have a superior efficacy in pain relief to a square wave. The proposed duty-cycle-controlled class-E PRF driver designed with a high-Q factor has two operational modes that are able to achieve 100% DC-AC conversion, and involves only one switched series inductor and an unchanged parallel capacitor. The measured output amplitude under low-voltage (LV) mode using a 22% duty cycle was 0.98 V with 91% efficiency, and under high-voltage (HV) mode using a 47% duty cycle was 2.95 V with 92% efficiency. These modes were inductively controlled by a duty-cycle detector, which can detect the duty-cycle modulated signal generated from the external complementary low-Q class-E power amplifier (PA). The design methodology of the low-Q inductive interface for a non-50% duty cycle is presented. The experimental results exhibits that the 1.5-V PA that consumes DC power of 14.21 mW was able to deliver a 2.9-V sine wave to a 500 Ω load. The optimal 60% drain efficiency of the system from the PA to the load was obtained at a 10-mm coupling distance.
Keywords :
DC-AC power convertors; Q-factor; biomedical electronics; inductors; neuromuscular stimulation; power amplifiers; power capacitors; waveform generators; DC power; DC-AC conversion; coupling distance; design flow; design methodology; distance 10 mm; dual-mode highly efficient class-E stimulator; duty-cycle detector; duty-cycle modulated signal; duty-cycle-controlled class-E PRF driver; efficiency 91 percent; efficiency 92 percent; external complementary low-Q class-E power amplifier; high-Q class-E driver; high-Q factor; high-voltage mode; implantable electrical stimulation system; low-Q inductive interface; low-voltage mode; optimal drain efficiency; output amplitude; pain relief; power 14.21 mW; resistance 500 ohm; sine-wave pulsed radiofrequency stimulation; square wave; switched series inductor; unchanged parallel capacitor; voltage 0.98 V; voltage 1.5 V; voltage 2.9 V; voltage 2.95 V; Equations; Inductors; MOSFET circuits; Pain; Radio frequency; Rats; Switches; Class-E; dorsal root ganglion; implantable; inductive coupling; pulsed radio-frequency; Amplifiers, Electronic; Animals; Electric Capacitance; Electric Power Supplies; Electric Stimulation Therapy; Electrodes, Implanted; Equipment Design; Hyperalgesia; Myelin Sheath; Neurons; Pain Management; Pain Measurement; Radio Waves; Rats; Signal Processing, Computer-Assisted; Temperature; Wireless Technology;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2012.2205245