Title :
Design and Implementation of an Integrated Magnetic Spectrometer for Multiplexed Biosensing
Author :
Sideris, C. ; Hajimiri, Ali
Author_Institution :
Dept. of Electr. Eng., California Inst. of Technol., Pasadena, CA, USA
Abstract :
Magnetic spectroscopy allows for characterization of the magnetic susceptibility of magnetic beads across a broad frequency range. This enables differentiation and quantification of multiple beads of varying types concurrently present in the active volume of a sensor´s surface. A magnetic spectrometer can be used for multi-probe tagging and identification akin to multi-color fluorescent bio-sensing. We propose a new sensing methodology to perform magnetic spectroscopy and analyze various important design parameters such as SNR and gain uniformity. We present a proof-of-concept design of a fully integrated CMOS magnetic spectrometer that can detect, quantify, and characterize magnetic materials in the 1.1 GHz to 3.3 GHz frequency range, where we demonstrate magnetic multiplexing capability using a mixture of two different kinds of magnetic beads. The sensor consumes less than 2 mW of DC power within the whole frequency range, requires no external biasing magnetic fields, is implemented in a standard CMOS process, and can be powered and operated completely from a USB interface. The magnetic spectrometer not only increases the throughput and multiplexing of biosensing experiments for a given sensor area, but also can enable additional applications, such as magnetic flow cytometry and signal-collocation assays of multiple probes.
Keywords :
CMOS integrated circuits; biomagnetism; biomedical equipment; biosensors; fluorescence; magnetic susceptibility; magneto-optical sensors; multiplexing; patient diagnosis; DC power; USB interface; biosensing experiments; broad frequency range; design parameters; frequency 1.1 GHz to 3.3 GHz; fully integrated CMOS magnetic spectrometer; gain uniformity; identification akin; integrated magnetic spectrometer design; integrated magnetic spectrometer implementation; magnetic beads; magnetic flow cytometry; magnetic materials; magnetic multiplexing capability; magnetic spectroscopy; magnetic susceptibility; mixture; multicolor fluorescent biosensing; multiple bead differentiation; multiple bead quantification; multiple probes; multiplexed biosensing; multiprobe tagging; proof-of-concept design; sensing methodology; sensor surface; signal-collocation assays; standard CMOS process; Biosensors; Frequency measurement; Inductance; Magnetic domains; Magnetic susceptibility; Resonant frequency; Signal to noise ratio; CMOS integrated circuits; Chemical and biological sensors; magnetic sensors; medical diagnosis; multi-probe; multiplexed detection;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2013.2297514