Title :
Comparison of Two CMOS Front-End Transimpedance Amplifiers for Optical Biosensors
Author :
Trabelsi, Amine ; Boukadoum, Mounir
Author_Institution :
Comput. Sci. Dept., Univ. du Quebec a Montreal, Montréal, QC, Canada
Abstract :
This paper compares two complementary-metal-oxide semiconductor front-end transimpedance amplifiers (TIA) intended for use in optical biosensors. They are the shunt-feedback and current-mode circuits, the most widely used topologies for wideband operation. The former consists of a three-stage nested-Miller-compensated amplifier in noninverting mode with a photodiode bootstrapping and a controlled voltage gain; the latter comprises a wideband common-gate feedback current mirror coupled to a current-to-voltage conversion stage and two common-source gain stages. The post-layout simulation results show that the shunt-feedback TIA achieves a maximal gain of 112 dBΩ over a 2-MHz bandwidth, whereas the current-mode TIA has a flat gain of roughly 83 dBΩ over a 115-MHz bandwidth. The overall input rms noise of each circuit was 185 pA/√Hz and 53 nA/√Hz, respectively, with power consumptions of 0.5 and 28.6 mW. We find that the shunt-feedback TIA is a better choice for high-resolution low- to mid-frequency applications.
Keywords :
CMOS analogue integrated circuits; biosensors; operational amplifiers; optical sensors; photodiodes; CMOS front-end TIA; bandwidth 115 MHz; bandwidth 2 MHz; common-source gain stages; complementary-metal-oxide semiconductor front-end transimpedance amplifiers; controlled voltage gain; current-mode TIA; current-mode circuits; current-to-voltage conversion stage; noninverting mode; optical biosensors; photodiode bootstrapping; post-layout simulation; power 0.5 mW; power 28.6 mW; shunt-feedback TIA; shunt-feedback circuits; three-stage nested-Miller-compensated amplifier; wideband common-gate feedback current mirror; Bandwidth; Impedance; Mirrors; Noise; Resistors; Topology; Transistors; Complementary-metal-oxide semiconductor (CMOS) transimpedance amplifiers (TIA); current mode; noise; optical biosensors; photodiode; shunt-feedback;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2012.2225141