Title :
An Energy-Efficient All-Digital UWB Transmitter Employing Dual Capacitively-Coupled Pulse-Shaping Drivers
Author :
Mercier, Patrick P. ; Daly, Denis C. ; Chandrakasan, Anantha P.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Massachusetts Inst. of Technol., Cambridge, MA
fDate :
6/1/2009 12:00:00 AM
Abstract :
This paper presents an all-digital, non-coherent, pulsed-UWB transmitter. By exploiting relaxed center frequency tolerances in non-coherent wideband communication, the transmitter synthesizes UWB pulses from an energy-efficient, single-ended digital ring oscillator. Dual capacitively coupled digital power amplifiers (PAs) are used in tandem to attenuate low frequency content typically associated with single-ended digital circuits driving single-ended antennas. Furthermore, four level digital pulse shaping is employed to attenuate RF sidelobes, resulting in FCC compliant operation in the 3.5, 4.0, and 4.5 GHz IEEE 802.15.4a bands without the use of any off-chip filters or large passive components. The transmitter is fabricated in a 90 nm CMOS process and occupies a core area of 0.07 mm2 . The entirely digital architecture consumes zero static bias current, resulting in an energy efficiency of 17.5 pJ/pulse at data rates up to 15.6 Mb/s.
Keywords :
microwave circuits; microwave oscillators; microwave power amplifiers; pulse shaping; transmitters; ultra wideband communication; CMOS; FCC compliant operation; IEEE 802.15.4a; RF sidelobes; bit rate 15.6 Mbit/s; digital ring oscillator; dual capacitively coupled digital power amplifiers; dual capacitively-coupled pulse-shaping drivers; energy-efficient all-digital UWB transmitter; four level digital pulse shaping; frequency 3.5 GHz; frequency 4.0 GHz; frequency 4.5 GHz; non-coherent wideband communication; off-chip filters; relaxed center frequency tolerances; single-ended antennas; single-ended digital circuits; size 90 nm; Broadband amplifiers; Circuit synthesis; Coupling circuits; Driver circuits; Energy efficiency; Frequency synthesizers; Pulse amplifiers; Ring oscillators; Transmitters; Wideband; All-digital; IR-UWB; RF; capacitive combining; capacitive coupling; pulse-based; transmitter; ultra-wideband (UWB); wireless;
Journal_Title :
Solid-State Circuits, IEEE Journal of
DOI :
10.1109/JSSC.2009.2020466