ABSTRACT
An integrated biosensor with magnetic tunnel juntions (MTJs) and spin valve (SV) sensor was used for particle detection. A platform drives an external magnet generating an in-plane magnetic field on the sensor at frequencies up to , provides a current to bias the sensor, and performs the signal acquisition and treatment. The signal-to-noise ratio of the SV and MTJ was characterized. Bead detection ( in diameter) was performed using both sensors leading to a detection limit of for SV and for MTJ.
ACKNOWLEDGMENTS
This study was partially supported by the projects POSC/EEA-ESE/58523/2004, POCTI/CTM/59411/2004, NMP4-CT-2005-016833 (SNIP2CHIP), and NMP4-CT-2005-017210 (Biomagsense). F.A.C., J.G., R.F., and V.C.M. are grateful to FCT for a doctoral grant (SFRH/BD/23756/2005, SFRH/BD/30421/2006, SFRH/BD/6501/2001, and SFRH/BD/13725/2003). INESC MN acknowledges FCT funding through the Associated Lab—Instituto de Nanotecnologias.
- 1. P. P. Freitas, H. A. Ferreira, D. L. Graham, L. A. Clarke, M. D. Amaral, V. Martins, L. Fonseca, and J. M. S. Cabral, in Magnetoelectronics, edited by M. Johnson (Academic, New York, 2004). Google ScholarCrossref
- 2. D. L. Graham, H. A. Ferreira, and P. P. Freitas, Trends Biotechnol. https://doi.org/10.1016/j.tibtech.2004.06.006 22, 455 (2004). Google ScholarCrossref
- 3. J. C. Rife, M. M. Miller, P. E. Sheehan, C. R. Tamanha, M. Tondra, and L. J. Whitman, Sens. Actuators, A https://doi.org/10.1016/S0924-4247(03)00380-7 107, 209 (2003). Google ScholarCrossref
- 4. J. Schotter, P. B. Kamp, A. Becker, A. Pühler, G. Reiss, and H. Brückl, Biosens. Bioelectron. https://doi.org/10.1016/j.bios.2003.11.007 19, 1149 (2004). Google ScholarCrossref
- 5. H. A. Ferreira, D. L. Graham, N. Feliciano, L. A. Clarke, M. D. Amaral, and P. P. Freitas, IEEE Trans. Magn. https://doi.org/10.1109/TMAG.2005.855340 41, 4140 (2005). Google ScholarCrossref
- 6. G. Li, V. Joshi, R. L. White, S. Wang, J. T. Kemp, C. Webb, R. W. Davis, and S. Sun, J. Appl. Phys. https://doi.org/10.1063/1.1540176 93, 7557 (2003). Google ScholarScitation, ISI
- 7. W. Shen, X. Liu, D. Mazumdar, and G. Xiao, Appl. Phys. Lett. https://doi.org/10.1063/1.1952582 86, 253901 (2005). Google ScholarScitation, ISI
- 8. F. A. Cardoso, H. A. Ferreira, J. P. Conde, V. Chu, P. P. Freitas, D. Vidal, J. Germano, L. Sousa, M. S. Piedade, B. Andrade, and J. M. Lemos, J. Appl. Phys. https://doi.org/10.1063/1.2165148 99, 08B307 (2006). Google ScholarScitation
- 9. M. S. Piedade, L. Sousa, T. Almeida, J. Germano, B. Costa, J. M. Lemos, P. P. Freitas, H. A. Ferreira, and F. Cardoso, IEEE Trans. Circuits Syst., I: Regul. Pap. 53, 2384 (2006). Google ScholarCrossref
- 10. B. M. de Boer, J. A. H. M. Kahlman, T. P. G. H. Jansen, H. Duric, and J. Veen, Biosens. Bioelectron. https://doi.org/10.1016/j.bios.2006.09.020 22, 2366 (2007). Google ScholarCrossref
- 11. P. P. Freitas, R. Ferreira, S. Cardoso, and F. Cardoso, J. Phys.: Condens. Matter https://doi.org/10.1088/0953-8984/19/16/165221 19, 165221 (2007). Google ScholarCrossref
- 12. S. X. Wang, S.-Y. Bae, G. Li, S. Sun, R. L. White, J. T. Kemp, and C. D. Webb, J. Magn. Magn. Mater. https://doi.org/10.1016/j.jmmm.2005.02.054 293, 731 (2005). Google ScholarCrossref
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