Title :
Accurate, wide range analog sine shaping circuits
Author :
Tsung-Hsueh Lee ; Abshire, Pamela A.
Author_Institution :
Dept. of Electr. & Comp Eng., Univ. of Maryland, College Park, MD, USA
Abstract :
Sine shaping functionality is important in many applications. Existing circuit implementations are typically restricted in input voltage or input angular range, limiting their usefulness in real-world applications. In this contribution we introduce resistive source degeneration and transconductance attenuation so that sine shaping circuits can accept an arbitrary input range and achieve high accuracy. We present detailed analysis including accuracy and efficiency of the circuits using approximation with the sum of multiple hyperbolic tangent like functions. We also describe a design methodology that satisfies specific requirements for a sine shaping circuit. The design was verified with two examples in simulation using a BSIM3.3 model and nearly perfect sine function circuit was demonstrated. The applicability of this circuit for a triangle-to-sine converter was also verified using Monte Carlo simulation. Compared to other sine waveform generators this circuit has an extended frequency range and requires the lowest power.
Keywords :
analogue circuits; network synthesis; BSIM3.3 model; Monte Carlo simulation; accurate wide range analog sine shaping circuits; input angular range; input voltage; multiple hyperbolic tangent; resistive source degeneration; sine function circuit; sine shaping functionality; sine waveform generators; transconductance attenuation; triangle-to-sine converter; Accuracy; Approximation methods; Attenuation; CMOS integrated circuits; Integrated circuit modeling; Signal generators; Transconductance; SFDR; design methodology; hyperbolic tangent; sine shaping circuit; triangle to sine;
Conference_Titel :
New Circuits and Systems Conference (NEWCAS), 2014 IEEE 12th International
Conference_Location :
Trois-Rivieres, QC
DOI :
10.1109/NEWCAS.2014.6934038