Title :
An integrated high efficiency ultra-low power single chip DC/AC inverter for driving liquid crystal electro-optic lenses
Author :
Xiaomin Li ; Huang, Alex
Author_Institution :
Dept. of Electr. & Comput. Eng., North Carolina State Univ., Raleigh, NC, USA
Abstract :
An integrated high efficiency, ultra-low power liquid crystal driver for electro-optic diffractive lenses is presented in this paper. The proposed LC driver provides an adjustable 3V to 15V RMS square wave output voltage to drive a liquid crystal in the electro-optic lens, which can be modeled as a 5nF capacitive load. This application is powered by a 3V lithium button cell or energy harvest devices. A reconfigurable hysteretic 2×/3×/4×/5× switched capacitor charge pump is developed for DC-DC conversion to maintain high power efficiency over the entire output power range. An improved H-bridge driving scheme is used to reduce the DC/AC inversion power loss. In addition, an auto-sink scheme is developed to speed up output transaction from high to low in different output modes. Implemented in a 0.25μm 5V VGS, 12-45V VDS BCD technology, the proposed LC driver achieves peak power efficiency of 98%. The transaction time of LC driver output from high to low is 48us, which is 219 times faster than that when auto-sink scheme is disabled.
Keywords :
DC-AC power convertors; DC-DC power convertors; LC circuits; charge pump circuits; driver circuits; electro-optical devices; invertors; lenses; liquid crystal devices; switched capacitor networks; DC-AC inversion power loss; DC-DC conversion; H-bridge driving scheme; LC driver; VDS BCD technology; VGS; autosink scheme; capacitive load; electrooptic diffractive lenses; energy harvest devices; integrated high efficiency DC-AC inverter; liquid crystal electrooptic lenses; lithium button cell; power efficiency; reconfigurable hysteretic switched capacitor charge pump; size 0.25 mum; time 48 mus; ultra-low power liquid crystal driver; ultra-low power single chip DC-AC inverter; voltage 12 V to 45 V; voltage 3 V to 15 V; Capacitors; Charge pumps; Inverters; Lenses; Regulators; Switches; Voltage control; H-bridge inverter; Reconfigurable charge pumps; liquid crystal driver; power management integrated circuits; series-parallel topology;
Conference_Titel :
Applied Power Electronics Conference and Exposition (APEC), 2015 IEEE
Conference_Location :
Charlotte, NC
DOI :
10.1109/APEC.2015.7104811