Title :
A Programmable Double Supply Filter&Drive Block for Telecommunication Applications
Author :
De Matteis, M. ; D´Amico, S. ; Giandomenico, A. Di ; Hauptman, J. ; Baschirotto, A.
Author_Institution :
Dept. of Innovation, Lecce Univ.
Abstract :
A Butterworth 2nd-order programmable filter for telecommunication applications is presented. In order to operate with signals in a programmable bandwidth, the block exhibits two cut-off frequencies (in the 2MHz-to-20MHz range). A programmable gain (in the -15dB-to-9dB range) is required in order to optimize the channel performances in terms of signal-to-noise ratio. Power reduction is achieved embedding the output stage in the filter and operating the filter with two supply-voltages for the input stage (1.5V) and for the output stage (3.3V). An input common-mode feedback circuit compensates the difference between the input and output commode mode voltages. The power consumption varies from 29mW to 38mW (when the filter dc gain is -15dB), because for dc gains lower than one the input CMFB circuit is needed and his contribution in terms of power consumption has to be considered. The filter is designed in a 0.13 mum CMOS technology, and performs a THD of -80dBc for a 3Vpp,diff output signal with a load of 500Omega and 10pF in parallel. The maximum output referred noise is -142dBm for a 100Omega reference-load and a 9dB dc-gain
Keywords :
Butterworth filters; CMOS integrated circuits; circuit feedback; harmonic distortion; integrated circuit noise; programmable filters; telecommunication equipment; -15 to 9 dB; 0.13 micron; 1.5 V; 10 pF; 2 to 20 MHz; 29 to 38 mW; 3.3 V; 500 ohm; Butterworth filter; CMOS technology; common-mode feedback circuit; drive block; maximum output referred noise; programmable bandwidth; programmable double supply filter; programmable gain; second-order programmable filter; signal-to-noise ratio; telecommunication applications; Bandwidth; CMOS technology; Cutoff frequency; Energy consumption; Feedback circuits; Filters; Performance gain; Signal design; Signal to noise ratio; Voltage;
Conference_Titel :
Research in Microelectronics and Electronics 2006, Ph. D.
Conference_Location :
Otranto
Print_ISBN :
1-4244-0157-7
DOI :
10.1109/RME.2006.1689886