Title :
A New Compact Low-Power High-Speed Rail-to-Rail Class-B Buffer for LCD Applications
Author :
Marano, Davide ; Palumbo, Gaetano ; Pennisi, Salvatore
Author_Institution :
Dipt. di Ing. Elettr., Elettron. e dei Sist. (DIEES), Univ. of Catania, Catania, Italy
fDate :
5/1/2010 12:00:00 AM
Abstract :
This paper addresses a very compact low-power class-B buffer amplifier topology for large-size liquid crystal display applications. The proposed buffer achieves high-speed driving performance, draws a small quiescent current during static operation and offers a rail-to-rail common-mode input range. The circuit provides enhanced slewing capabilities with a limited power consumption by exploiting two current comparators embodied in the input stage, which sense the input signal transients to turn on the output stage transistors. A rail-to-rail stacked mirror differential amplifier is used to amplify the input signal difference and supply the bias voltages for the output stage. Post-layout simulations show that the proposed buffer can drive a 1-nF column line load within 1.8-¿s settling time under a full voltage swing, while drawing only 3.5-¿A static current from a 3-V power supply. Monte Carlo results finally confirm an excellent degree of robustness of the proposed topology.
Keywords :
current comparators; current mirrors; liquid crystal displays; power consumption; transistors; LCD applications; Monte Carlo results; bias voltages; capacitance 1 nF; current 3.5 muA; current comparators; degree of robustness; high-speed driving performance; input signal transients; low-power class-B buffer amplifier topology; low-power high-speed rail-to-rail class-B buffer; output stage transistors; post-layout simulations; power consumption; quiescent current; rail-to-rail common-mode input range; rail-to-rail stacked mirror differential amplifier; slewing capabilities; static operation; time 1.8 mus; voltage swing; Circuit topology; Differential amplifiers; Energy consumption; Liquid crystal displays; Mirrors; Power supplies; Rail to rail inputs; Rail to rail operation; Rail to rail outputs; Voltage; High-speed; liquid crystal display; output driver; rail-to-rail; settling time; slew rate; stability;
Journal_Title :
Display Technology, Journal of
DOI :
10.1109/JDT.2010.2042566