992 research outputs found

    A Wearable 1.6GHz Non-Invasive Midfield Wave-Based Blood Glucose Sensor

    Get PDF
    A non-invasive glucose sensor has been sought after by millions of Americans living with diabetes and scientists alike. Current blood glucose sensors approved by the FDA involve an invasive collection technique coupled with costly chemical analysis materials, which continue to bring pain to the growing diabetic population in America. Previous research of non-invasive sensing methods has shown promise, but the difficulty of transmitting power through tissue has degraded the sensing consistency and accuracy needed to reach the consumer market. This has been overcome with recent research in midfield wave power transmission at Stanford University, which has provided an opportunity for investigating a new, non-invasive glucose sensing technique. The design proposed in this thesis uses a slot array antenna transmitting through the human arm in the UHF (Ultra High Frequency) range at a wavelength absorbed by glucose to investigate the relationship between blood glucose levels and received power from a loop antenna receiver. The complete system incorporates an RF mixer, a Wilkinson power divider, and an RF detector to enable use with Cal Poly’s lab equipment. Changes in blood glucose levels are tracked within an R value of 0.91 when the testing setup maintains consistency in physical placement of the transmitter and receiver. Ten measurements over the course of seven hours accurately sensed changes in the subject’s blood glucose levels with two outlier data points. The system provides a vehicle for further investigation into a new, non-invasive blood glucose sensing method to improve the quality of life for millions around the world

    The 2017 Terahertz Science and Technology Roadmap

    Get PDF
    Science and technologies based on terahertz frequency electromagnetic radiation (100GHz-30THz) have developed rapidly over the last 30 years. For most of the 20th century, terahertz radiation, then referred to as sub-millimeter wave or far-infrared radiation, was mainly utilized by astronomers and some spectroscopists. Following the development of laser based terahertz time-domain spectroscopy in the 1980s and 1990s the field of THz science and technology expanded rapidly, to the extent that it now touches many areas from fundamental science to “real world” applications. For example THz radiation is being used to optimize materials for new solar cells, and may also be a key technology for the next generation of airport security scanners. While the field was emerging it was possible to keep track of all new developments, however now the field has grown so much that it is increasingly difficult to follow the diverse range of new discoveries and applications that are appearing. At this point in time, when the field of THz science and technology is moving from an emerging to a more established and interdisciplinary field, it is apt to present a roadmap to help identify the breadth and future directions of the field. The aim of this roadmap is to present a snapshot of the present state of THz science and technology in 2016, and provide an opinion on the challenges and opportunities that the future holds. To be able to achieve this aim, we have invited a group of international experts to write 17 sections that cover most of the key areas of THz Science and Technology. We hope that The 2016 Roadmap on THz Science and Technology will prove to be a useful resource by providing a wide ranging introduction to the capabilities of THz radiation for those outside or just entering the field as well as providing perspective and breadth for those who are well established. We also feel that this review should serve as a useful guide for government and funding agencies

    Development and Experimental Analysis of Wireless High Accuracy Ultra-Wideband Localization Systems for Indoor Medical Applications

    Get PDF
    This dissertation addresses several interesting and relevant problems in the field of wireless technologies applied to medical applications and specifically problems related to ultra-wideband high accuracy localization for use in the operating room. This research is cross disciplinary in nature and fundamentally builds upon microwave engineering, software engineering, systems engineering, and biomedical engineering. A good portion of this work has been published in peer reviewed microwave engineering and biomedical engineering conferences and journals. Wireless technologies in medicine are discussed with focus on ultra-wideband positioning in orthopedic surgical navigation. Characterization of the operating room as a medium for ultra-wideband signal transmission helps define system design requirements. A discussion of the first generation positioning system provides a context for understanding the overall system architecture of the second generation ultra-wideband positioning system outlined in this dissertation. A system-level simulation framework provides a method for rapid prototyping of ultra-wideband positioning systems which takes into account all facets of the system (analog, digital, channel, experimental setup). This provides a robust framework for optimizing overall system design in realistic propagation environments. A practical approach is taken to outline the development of the second generation ultra-wideband positioning system which includes an integrated tag design and real-time dynamic tracking of multiple tags. The tag and receiver designs are outlined as well as receiver-side digital signal processing, system-level design support for multi-tag tracking, and potential error sources observed in dynamic experiments including phase center error, clock jitter and drift, and geometric position dilution of precision. An experimental analysis of the multi-tag positioning system provides insight into overall system performance including the main sources of error. A five base station experiment shows the potential of redundant base stations in improving overall dynamic accuracy. Finally, the system performance in low signal-to-noise ratio and non-line-of-sight environments is analyzed by focusing on receiver-side digitally-implemented ranging algorithms including leading-edge detection and peak detection. These technologies are aimed at use in next-generation medical systems with many applications including surgical navigation, wireless telemetry, medical asset tracking, and in vivo wireless sensors
    • …
    corecore