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Download e-book for kindle: A CMOS Self-Powered Front-End Architecture for Subcutaneous by Jordi Colomer-Farrarons, Pere MIRIBEL

By Jordi Colomer-Farrarons, Pere MIRIBEL

ISBN-10: 9400706855

ISBN-13: 9789400706859

A CMOS Self-Powered Front-End structure for Subcutaneous Event-Detector units provides the notion and prototype cognizance of a Self-Powered structure for subcutaneous detector units. The structure is designed to paintings as a true/false (event detector) or threshold point alarm of a few elements, ions, etc... which are detected via a three-electrodes amperometric BioSensor strategy. The gadget is envisaged as a Low-Power subcutaneous implantable software powered through an inductive hyperlink, one emitter antenna on the exterior aspect of the outside and the receiver antenna lower than the surface. The sensor is managed with a Potentiostat circuit after which, a post-processing unit detects the specified degrees and prompts the transmission through a backscattering strategy via the inductive hyperlink. the entire instrumentation, other than the facility module, is applied within the so known as BioChip. Following the assumption of the powering hyperlink to reap power of the magnetic brought about hyperlink on the implanted machine, a Multi-Harvesting energy Chip (MHPC) has been additionally designed.

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Extra info for A CMOS Self-Powered Front-End Architecture for Subcutaneous Event-Detector Devices: Three-Electrodes Amperometric Biosensor Approach

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In Proceedings of the 14th IEEE International Conference on 11–14 Dec. (2007) pp. 403–406 76. X. Huang, S. Li, J. Schultz, Q. Wang, Q. Lin, A capacitively based MEMS affinity glucose sensor”, Proceedings of the International Solid-State Sensors, Actuators and Microsystems Conference, TRANSDUCERS 2009, (21–25 June 2009), pp. 1457–1460 77. P, Rodrigues, H. Kimura, Y Sakai, T. Fujii, Cell-based Microfluidic biochip for electrochemical real-time monitoring of glucose and oxygen Solid-State Sensors, Actuators and Microsystems Conference.

Ekanayake, D. Preethichandra, K. Kaneto, Fabrication and characterization of nanostructured conducting polymer electrodes for glucose biosensor applications. Industrial and information systems, 2007. ICIIS 2007. International conference, 9–11 Aug 2007, pp. 63–66 81. U. M. Nur, M. Willander, B. Danielsson, Glucose detection with a commercial MOSFET using a ZnO nanowires extended gate. IEEE Trans. Nanotechnol. 8(6), 678–683 (Nov 2009) 82. Bender, Sadik, Direct electrochemical immunosensor for polychlorinated biphenyls.

Furthermore, it is also possible to recollect energy from an Inductive power link (MI). All the energy obtained from these four sources is then transformed into electrical energy and stored in one or more storage devices (SD). J. L. V. 2011 37 38 2 Energy Harvesting (Multi Harvesting Power Chip) Fig. 1 Multi Harvesting Power Chip (MHPC) architecture The objective is to combine all the energy sources at the same time [3–12]. In that way, all individual energies are added with the other ones obtaining a summation of energies.

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A CMOS Self-Powered Front-End Architecture for Subcutaneous Event-Detector Devices: Three-Electrodes Amperometric Biosensor Approach by Jordi Colomer-Farrarons, Pere MIRIBEL


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