322 research outputs found

    System level design of a full-duplex wireless transceiver for brain-machine interfaces

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    We propose a new wireless communication architecture for implanted systems that simultaneously stimulates neurons and record neural responses. This architecture can support large numbers of electrodes (>500), providing 100 Mb/s for the downlink of stimulation signals, and gigabits per second for the uplink of neural recordings. We propose a full-duplex transceiver architecture that shares one antenna for both the ultrawideband (UWB) and the 2.45-GHz industrial, scientific, and medical band. A new pulse shaper is used for the gigabits per second uplink to simplify the transceiver design, while supporting several modulation formats with high data rates. To validate our system-level design for brain-machine interfaces, we present an ex-vivo experimental demonstration of the architecture. While the system design is for an integrated solution, the proof-of-concept demonstration uses discrete components. Good bit error rate performance over a biological channel at 0.5-, 1-, and 2-Gb/s data rates for uplink telemetry (UWB) and 100 Mb/s for downlink telemetry (2.45-GHz band) are achieved

    High-performance wireless interface for implant-to-air communications

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    Nous Ă©laborons une interface cerveau-machine (ICM) entiĂšrement sans fil afin de fournir un systĂšme de liaison directe entre le cerveau et les pĂ©riphĂ©riques externes, permettant l’enregistrement et la stimulation du cerveau pour une utilisation permanente. Au cours de cette thĂšse, nous explorons la modĂ©lisation de canal, les antennes implantĂ©es et portables en tant que propagateurs appropriĂ©s pour cette application, la conception du nouveau systĂšme d’un Ă©metteur-rĂ©cepteur UWB implantable, la conception niveau systĂšme du circuit et sa mise en oeuvre par un procĂ©dĂ© CMOS TSMC 0.18 um. En plus, en collaboration avec UniversitĂ© McGill, nous avons conçu un rĂ©seau de seize antennes pour une dĂ©tection du cancer du sein Ă  l’aide d’hyperfrĂ©quences. Notre premiĂšre contribution calcule la caractĂ©risation de canal de liaison sans fil UWB d’implant Ă  l’air, l’absorption spĂ©cifique moyennĂ©e (ASAR), et les lignes directrices de la FCC sur la densitĂ© spectrale de puissance UWB transmis. La connaissance du comportement du canal est nĂ©cessaire pour dĂ©terminer la puissance maximale permise Ă  1) respecter les lignes directrices ANSI pour Ă©viter des dommages aux tissus et 2) respecter les lignes directrices de la FCC sur les transmissions non autorisĂ©es. Nous avons recours Ă  un modĂšle rĂ©aliste du canal biologique afin de concevoir les antennes pour l’émetteur implantĂ© et le rĂ©cepteur externe. Le placement des antennes est examinĂ© avec deux scĂ©narios contrastĂ©s ayant des contraintĂ©s de puissance. La performance du systĂšme au sein des tissus biologiques est examinĂ©e par l’intermĂ©diaire des simulations et des expĂ©riences. Notre deuxiĂšme contribution est dĂ©diĂ©e Ă  la conception des antennes simples et Ă  double polarisation pour les systĂšmes d’enregistrement neural sans fil Ă  bande ultra-large en utilisant un modĂšle multicouches inhomogĂšne de la tĂȘte humaine. Les antennes fabriquĂ©es Ă  partir de matĂ©riaux flexibles sont plus facilement adaptĂ©es Ă  l’implantation ; nous Ă©tudions des matĂ©riaux Ă  la fois flexibles et rigides et examinons des compromis de performance. Les antennes proposĂ©es sont conçues pour fonctionner dans une plage de frĂ©quence de 2-11 GHz (ayant S11-dessous de -10 dB) couvrant Ă  la fois la bande 2.45 GHz (ISM) et la bande UWB 3.1-10.6 GHz. Des mesures confirment les rĂ©sultats de simulation et montrent que les antennes flexibles ont peu de dĂ©gradation des performances en raison des effets de flexion (en termes de correspondance d’impĂ©dance). Finalement, une comparaison est rĂ©alisĂ©e entre quatre antennes implantables, couvrant la gamme 2-11 GHz : 1) une rigide, Ă  la polarisation simple, 2) une rigide, Ă  double polarisation, 3) une flexible, Ă  simple polarisation et 4) une flexible, Ă  double polarisation. Dans tous les cas une antenne rigide est utilisĂ©e Ă  l’extĂ©rieur du corps, avec une polarisation appropriĂ©e. Plusieurs avantages ont Ă©tĂ© confirmĂ©s pour les antennes Ă  la polarisation double : 1) une taille plus petite, 2) la sensibilitĂ© plus faible aux dĂ©salignements angulaires, et 3) une plus grande fidĂ©litĂ©. Notre troisiĂšme contribution fournit la conception niveau systĂšme de l’architecture de communication sans fil pour les systĂšmes implantĂ©s qui stimulent simultanĂ©ment les neurones et enregistrent les rĂ©ponses de neurones. Cette architecture prend en charge un grand nombre d’électrodes (> 500), fournissant 100 Mb/s pour des signaux de stimulation de liaison descendante, et Gb/s pour les enregistrements de neurones de liaison montante. Nous proposons une architecture d’émetteur-rĂ©cepteur qui partage une antenne ultra large bande, un Ă©metteur-rĂ©cepteur simplifiĂ©, travaillant en duplex intĂ©gral sur les deux bandes, et un nouveau formeur d’impulsions pour la liaison montante du Gb/s soutenant plusieurs formats de modulation. Nous prĂ©sentons une dĂ©monstration expĂ©rimentale d’ex vivo de l’architecture en utilisant des composants discrets pour la rĂ©alisation les taux Gb/s en liaison montante. Une bonne performance de taux d’erreur de bit sur un canal biologique Ă  0,5, 1 et 2 Gb/s des dĂ©bits de donnĂ©es pour la tĂ©lĂ©mĂ©trie de liaison montante (UWB) et 100 Mb/s pour la tĂ©lĂ©mĂ©trie en liaison descendante (bande 2.45 GHz) est atteinte. Notre quatriĂšme contribution prĂ©sente la conception au niveau du circuit d’un dispositif d’émission en duplex total qui est prĂ©sentĂ©e dans notre troisiĂšme contribution. Ce dispositif d’émission en duplex total soutient les applications d’interfaçage neural multimodal et en haute densitĂ© (les canaux de stimulant et d’enregistrement) avec des dĂ©bits de donnĂ©es asymĂ©triques. L’émetteur (TX) et le rĂ©cepteur (RX) partagent une seule antenne pour rĂ©duire la taille de l’implant. Le TX utilise impulse radio ultra-wide band (IR-UWB) basĂ© sur une approche alliant des bords, et le RX utilise un nouveau 2.4 GHz rĂ©cepteur on-off keying (OOK).Une bonne isolation (> 20 dB) entre le trajet TX et RX est mis en oeuvre 1) par mise en forme des impulsions transmises pour tomber dans le spectre UWB non rĂ©glementĂ© (3.1-7 GHz), et 2) par un filtrage espace-efficace du spectre de liaison descendante OOK dans un amplificateur Ă  faible bruit RX. L’émetteur UWB 3.1-7 GHz peut utiliser soit OOK soit la modulation numĂ©rique binaire Ă  dĂ©placement de phase (BPSK). Le FDT proposĂ© offre une double bande avec un taux de donnĂ©es de liaison montante de 500 Mbps TX et un taux de donnĂ©es de liaison descendante de 100 Mb/s RX, et il est entiĂšrement en conformitĂ© avec les standards TSMC 0.18 um CMOS dans un volume total de 0,8 mm2. Ainsi, la mesure de consommation d’énergie totale en mode full duplex est de 10,4 mW (5 mW Ă  100 Mb/s pour RX, et de 5,4 mW Ă  500 Mb/s ou 10,8 PJ / bits pour TX). Notre cinquiĂšme contribution est une collaboration avec l’UniversitĂ© McGill dans laquelle nous concevons des antennes simples et Ă  double polarisation pour les systĂšmes de dĂ©tection du cancer du sein Ă  l’aide d’hyperfrĂ©quences sans fil en utilisant un modĂšle multi-couche et inhomogĂšne du sein humain. Les antennes fabriquĂ©es Ă  partir de matĂ©riaux flexibles sont plus facilement adaptĂ©es Ă  des applications portables. Les antennes flexibles miniaturisĂ©es monopĂŽles et spirales sur un 50 um Kapton polyimide sont conçus, en utilisant high frequency structure simulator (HFSS), Ă  ĂȘtre en contact avec des tissus biologiques du sein. Les antennes proposĂ©es sont conçues pour fonctionner dans une gamme de frĂ©quences de 2 Ă  4 GHz. Les mesures montrent que les antennes flexibles ont une bonne adaptation d’impĂ©dance dans les diffĂ©rentes positions sur le sein. De Plus, deux antennes Ă  bande ultralarge flexibles 4 × 4 (simple et Ă  double polarisation), dans un format similaire Ă  celui d’un soutien-gorge, ont Ă©tĂ© dĂ©veloppĂ©s pour un systĂšme de dĂ©tection du cancer du sein basĂ© sur le radar.We are working on a fully wireless brain-machine-interface to provide a communication link between the brain and external devices, enabling recording and stimulating the brain for permanent usage. In this thesis we explore channel modeling, implanted and wearable antennas as suitable propagators for this application, system level design of an implantable UWB transceiver, and circuit level design and implementing it by TSMC 0.18 um CMOS process. Also, in a collaboration project with McGill University, we designed a flexible sixteen antenna array for microwave breast cancer detection. Our first contribution calculates channel characteristics of implant-to-air UWB wireless link, average specific absorption rate (ASAR), and FCC guidelines on transmitted UWB power spectral density. Knowledge of channel behavior is required to determine the maximum allowable power to 1) respect ANSI guidelines for avoiding tissue damage and 2) respect FCC guidelines on unlicensed transmissions. We utilize a realistic model of the biological channel to inform the design of antennas for the implanted transmitter and the external receiver. Antennas placement is examined under two scenarios having contrasting power constraints. Performance of the system within the biological tissues is examined via simulations and experiments. Our second contribution deals with designing single and dual-polarization antennas for wireless ultra-wideband neural recording systems using an inhomogeneous multi-layer model of the human head. Antennas made from flexible materials are more easily adapted to implantation; we investigate both flexible and rigid materials and examine performance trade-offs. The proposed antennas are designed to operate in a frequency range of 2–11 GHz (having S11 below -10 dB) covering both the 2.45 GHz (ISM) band and the 3.1–10.6 GHz UWB band. Measurements confirm simulation results showing flexible antennas have little performance degradation due to bending effects (in terms of impedance matching). Finally, a comparison is made of four implantable antennas covering the 2-11 GHz range: 1) rigid, single polarization, 2) rigid, dual polarization, 3) flexible, single polarization and 4) flexible, dual polarization. In all cases a rigid antenna is used outside the body, with an appropriate polarization. Several advantages were confirmed for dual polarization antennas: 1) smaller size, 2) lower sensitivity to angular misalignments, and 3) higher fidelity. Our third contribution provides system level design of wireless communication architecture for implanted systems that simultaneously stimulate neurons and record neural responses. This architecture supports large numbers of electrodes (> 500), providing 100 Mb/s for the downlink of stimulation signals, and Gb/s for the uplink neural recordings. We propose a transceiver architecture that shares one ultra-wideband antenna, a streamlined transceiver working at full-duplex on both bands, and a novel pulse shaper for the Gb/s uplink supporting several modulation formats. We present an ex-vivo experimental demonstration of the architecture using discrete components achieving Gb/s uplink rates. Good bit error rate performance over a biological channel at 0.5, 1, and 2 Gbps data rates for uplink telemetry (UWB) and 100 Mbps for downlink telemetry (2.45 GHz band) is achieved. Our fourth contribution presents circuit level design of the novel full-duplex transceiver (FDT) which is presented in our third contribution. This full-duplex transceiver supports high-density and multimodal neural interfacing applications (high-channel count stimulating and recording) with asymmetric data rates. The transmitter (TX) and receiver (RX) share a single antenna to reduce implant size. The TX uses impulse radio ultra-wide band (IR-UWB) based on an edge combining approach, and the RX uses a novel 2.4-GHz on-off keying (OOK) receiver. Proper isolation (> 20 dB) between the TX and RX path is implemented 1) by shaping the transmitted pulses to fall within the unregulated UWB spectrum (3.1-7 GHz), and 2) by spaceefficient filtering (avoiding a circulator or diplexer) of the downlink OOK spectrum in the RX low-noise amplifier. The UWB 3.1-7 GHz transmitter can use either OOK or binary phase shift keying (BPSK) modulation schemes. The proposed FDT provides dual band 500-Mbps TX uplink data rate and 100 Mbps RX downlink data rate, and it is fully integrated into standard TSMC 0.18 um CMOS within a total size of 0.8 mm2. The total measured power consumption is 10.4 mW in full duplex mode (5 mW at 100 Mbps for RX, and 5.4 mW at 500 Mbps or 10.8 pJ/bit for TX). Our fifth contribution is a collaboration project with McGill University which we design single and dual-polarization antennas for wireless ultra-wideband breast cancer detection systems using an inhomogeneous multi-layer model of the human breast. Antennas made from flexible materials are more easily adapted to wearable applications. Miniaturized flexible monopole and spiral antennas on a 50 um Kapton polyimide are designed, using a high frequency structure simulator (HFSS), to be in contact with biological breast tissues. The proposed antennas are designed to operate in a frequency range of 2–4 GHz (with reflection coefficient (S11) below -10 dB). Measurements show that the flexible antennas have good impedance matching while in different positions with different curvature around the breast. Furthermore, two flexible conformal 4×4 ultra-wideband antenna arrays (single and dual polarization), in a format similar to that of a bra, were developed for a radar-based breast cancer detection system

    Modulation Techniques for Biomedical Implanted Devices and Their Challenges

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    Implanted medical devices are very important electronic devices because of their usefulness in monitoring and diagnosis, safety and comfort for patients. Since 1950s, remarkable efforts have been undertaken for the development of bio-medical implanted and wireless telemetry bio-devices. Issues such as design of suitable modulation methods, use of power and monitoring devices, transfer energy from external to internal parts with high efficiency and high data rates and low power consumption all play an important role in the development of implantable devices. This paper provides a comprehensive survey on various modulation and demodulation techniques such as amplitude shift keying (ASK), frequency shift keying (FSK) and phase shift keying (PSK) of the existing wireless implanted devices. The details of specifications, including carrier frequency, CMOS size, data rate, power consumption and supply, chip area and application of the various modulation schemes of the implanted devices are investigated and summarized in the tables along with the corresponding key references. Current challenges and problems of the typical modulation applications of these technologies are illustrated with a brief suggestions and discussion for the progress of implanted device research in the future. It is observed that the prime requisites for the good quality of the implanted devices and their reliability are the energy transformation, data rate, CMOS size, power consumption and operation frequency. This review will hopefully lead to increasing efforts towards the development of low powered, high efficient, high data rate and reliable implanted devices

    Low power CMOS IC, biosensor and wireless power transfer techniques for wireless sensor network application

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    The emerging field of wireless sensor network (WSN) is receiving great attention due to the interest in healthcare. Traditional battery-powered devices suffer from large size, weight and secondary replacement surgery after the battery life-time which is often not desired, especially for an implantable application. Thus an energy harvesting method needs to be investigated. In addition to energy harvesting, the sensor network needs to be low power to extend the wireless power transfer distance and meet the regulation on RF power exposed to human tissue (specific absorption ratio). Also, miniature sensor integration is another challenge since most of the commercial sensors have rigid form or have a bulky size. The objective of this thesis is to provide solutions to the aforementioned challenges

    Wireless body sensor networks for health-monitoring applications

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    This is an author-created, un-copyedited version of an article accepted for publication in Physiological Measurement. The publisher is not responsible for any errors or omissions in this version of the manuscript or any version derived from it. The Version of Record is available online at http://dx.doi.org/10.1088/0967-3334/29/11/R01

    A low-power/low-voltage CMOS wireless interface at 5.7 GHz with dry electrodes for cognitive networks

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    This paper describes a low-power/low-voltage CMOS wireless interface (CMOS-WiI) at 5.7 GHz with dry electrodes for congnitive networks. The electrodes are 4 x 4 microtip arrays and acquire electroencephalogram (EEG) signals in key- points for processing. The CMOS-WiI was fabricated in a UMC 0.18 ”m RF CMOS process and its total power consumption is 23mW with a voltage-supply of only 1.5 V. The carrier frequency is digitally selectable and it can be one of 16 possible values in the range 5.42–5.83 GHz, with 27.12 MHz steps. These multiple carriers allow a better spectrum allocation as well as the acquisition, processing and transmission of high-quality EEG signals from 16 electrode arrays. The microtips array was fabricated through bulk micromachining of a -type silicon substrate in a potassium hydroxide solution and avoids long subject preparations for EEG data acquisition. The reactive sputtering of iridium dioxide (IrO) on the surface of the array guarantees its biocompatibility. The fabrication process was trimmed in a way that each microtip presents solid angles of 54.7 , a width in the range 150–200 ”m, a height of 100–200 ”m, and a microtip interspacing of 2 ”m. The microtips array coated with IrO together with the CMOS-WiI permit the remote monitoring of EEG signals from freely-moving subjects

    Bidirectional Wireless Telemetry for High Channel Count Optogenetic Microsystems

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    In the past few decades, there has been a significant progress in the development of wireless data transmission systems, from high data rate to ultra-low power applications, and from G-b per second to RFID systems. One specific area, in particular, is in wireless data transmission for implantable bio-medical applications. To understand how brain functions, neural scientists are in pursuit of high-channel count, high-density recordings for freely moving animals; yet wire tethering issue has put the mission on pause. Wireless data transmission can address this tethering problem, but there are still many challenges to be conquered. In this work, an ultra-low power ultra-wide band (UWB) transmitter with feedforward pulse generation scheme is proposed to resolve the long-existing problem in UWB transmitter. It provides a high-data rate capability to enable 1000 channels in broadband neural recording, assuming 10-bit resolution with a sampling rate of 20 kHz to accommodate both action potential (AP) and local field potential (LFP) recording, while remaining in ultra- low power consumption at 4.32 pJ/b. For the bi-directional communication between the wireless and recording/ stimulating module, a bit-wise time-division (B-TDD) duplex transceiver without cancellation scheme is presented. The receiver works at U-NII band (5.2GHz) and shares the same antenna with UWB transmitter. This significantly reduces the area consumption as well as power consumption for implantable systems. The system can support uplink at 200 Mbps for 1000 recording channels and downlink at 10 Mbps for 36 stimulation channels. With a 3.7 Volt 25mAh rechargeable battery, the system should be able to operate more than 1.5 hours straight for both recording and stimulation, assuming 1 LED channel with 100 ”A, 10% duty-cycled stimulating current. The B-TDD transceiver is integrated with a dedicated recording/ stimulation optogenetic IC chip to demonstrate as a complete wireless system for implantable broadband optogenetic neural modulation and recording. The fully integrated system is less than 5 gram, which is suitable for rodent experiments.PHDElectrical EngineeringUniversity of Michigan, Horace H. Rackham School of Graduate Studieshttps://deepblue.lib.umich.edu/bitstream/2027.42/155242/1/yujulin_1.pd
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