19 resultados para On-Chip Balun


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En el presente proyecto se ha procedido a implantar la herramienta de procesado software GNU Radio en la tarjeta EVMK2H, que es un módulo de evaluación fabricado por Texas Instruments que incorpora un System on Chip (SoC) 66AK2H14 de la familia Keystone II, el cual dispone de 4 núcleos ARM y 8 núcleos DSP. Previamente a la instalación de GNU Radio, hubo que configurar la tarjeta, así como instalar el software necesario. De igual manera, se realizó una primera aproximación para comprender el funcionamiento de los sistemas de comunicación entre núcleos de que hace uso la tarjeta, y de los que se hizo uso posteriormente en el proyecto. Tras el portado de GNU Radio se ha comprobado el correcto funcionamiento del mecanismo de comunicación entre núcleos ARM y DSP con un par de aplicaciones de prueba. ABSTRACT. In the present project it was performed the implementation of the software processing toolkit GNU Radio into the EVMK2H board, which is an evaluation module from Texas Instruments that includes a 66AK2H14 System on Chip (SoC) from the Keystone II family, that provides 4 ARM cores and 8 DSP cores. Before installing GNU Radio, it was necessary to configure the board, and as well installing other needed software. Also, a first approach was performed to understand the way the communication system between cores included in the board works, which was used later in the project. After porting GNU Radio, some test applications have been written to test the correct operation of the communication mechanism between ARM and DSP cores.

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Development of PCB-integrateable microsensors for monitoring chemical species is a goal in areas such as lab-on-a-chip analytical devices, diagnostics medicine and electronics for hand-held instruments where the device size is a major issue. Cellular phones have pervaded the world inhabitants and their usefulness has dramatically increased with the introduction of smartphones due to a combination of amazing processing power in a confined space, geolocalization and manifold telecommunication features. Therefore, a number of physical and chemical sensors that add value to the terminal for health monitoring, personal safety (at home, at work) and, eventually, national security have started to be developed, capitalizing also on the huge number of circulating cell phones. The chemical sensor-enabled “super” smartphone provides a unique (bio)sensing platform for monitoring airborne or waterborne hazardous chemicals or microorganisms for both single user and crowdsourcing security applications. Some of the latest ones are illustrated by a few examples. Moreover, we have recently achieved for the first time (covalent) functionalization of p- and n-GaN semiconductor surfaces with tuneable luminescent indicator dyes of the Ru-polypyridyl family, as a key step in the development of innovative microsensors for smartphone applications. Chemical “sensoring” of GaN-based blue LED chips with those indicators has also been achieved by plasma treatment of their surface, and the micrometer-sized devices have been tested to monitor O2 in the gas phase to show their full functionality. Novel strategies to enhance the sensor sensitivity such as changing the length and nature of the siloxane buffer layer are discussed in this paper.

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Evolvable Hardware (EH) is a technique that consists of using reconfigurable hardware devices whose configuration is controlled by an Evolutionary Algorithm (EA). Our system consists of a fully-FPGA implemented scalable EH platform, where the Reconfigurable processing Core (RC) can adaptively increase or decrease in size. Figure 1 shows the architecture of the proposed System-on-Programmable-Chip (SoPC), consisting of a MicroBlaze processor responsible of controlling the whole system operation, a Reconfiguration Engine (RE), and a Reconfigurable processing Core which is able to change its size in both height and width. This system is used to implement image filters, which are generated autonomously thanks to the evolutionary process. The system is complemented with a camera that enables the usage of the platform for real time applications.

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The negative epoxy-based SU-8 photoresist has a wide variety of applications within the semiconductor industry, photonics and lab-on-a-chip devices, and it is emerging as an alternative to silicon-based devices for sensing purposes. In the present work, biotinylation of the SU-8 polymer surface promoted by light is reported. As a result, a novel, efective, and low-cost material, focusing on the immobilization of bioreceptors and consequent biosensing, is developed. This material allows the spatial discrimination depending on the irradiation of desired areas. The most salient feature is that the photobiotin may be directly incorporated into the SU-8 curing process, consequently reducing time and cost. The potential use of this substrate is demonstrated by the immunoanalytical detection of the synthetic steroid gestrinone, showing excellent performances. Moreover, the naked eye biodetection due to the transparent SU-8 substrate, and simple instrumental quantication are additional advantages.