3 resultados para C. Electrical properties

em Doria (National Library of Finland DSpace Services) - National Library of Finland, Finland


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In modern society, the body health is a very important issue to everyone. With the development of the science and technology, the new and developed body health monitoring device and technology will play the key role in the daily medical activities. This paper focus on making progress in the design of the wearable vital sign system. A vital sign monitoring system has been proposed and designed. The whole detection system is composed of signal collecting subsystem, signal processing subsystem, short-range wireless communication subsystem and user interface subsystem. The signal collecting subsystem is composed of light source and photo diode, after emiting light of two different wavelength, the photo diode collects the light signal reflected by human body tissue. The signal processing subsystem is based on the analog front end AFE4490 and peripheral circuits, the collected analog signal would be filtered and converted into digital signal in this stage. After a series of processing, the signal would be transmitted to the short-range wireless communication subsystem through SPI, this subsystem is mainly based on Bluetooth 4.0 protocol and ultra-low power System on Chip(SoC) nRF51822. Finally, the signal would be transmitted to the user end. After proposing and building the system, this paper focus on the research of the key component in the system, that is, the photo detector. Based on the study of the perovskite materials, a low temperature processed photo detector has been proposed, designed and researched. The device is made up of light absorbing layer, electron transporting and hole blocking layer, hole transporting and electron blocking layer, conductive substrate layer and metal electrode layer. The light absorbing layer is the important part of whole device, and it is fabricated by perovskite materials. After accepting the light, the electron-hole pair would be produced in this layer, and due to the energy level difference, the electron and hole produced would be transmitted to metal electrode and conductive substrate electrode through electron transporting layer and hole transporting layer respectively. In this way the response current would be produced. Based on this structure, the specific fabrication procedure including substrate cleaning; PEDOT:PSS layer preparation; pervoskite layer preparation; PCBM layer preparation; C60, BCP, and Ag electrode layer preparation. After the device fabrication, a series of morphological characterization and performance testing has been done. The testing procedure including film-forming quality inspection, response current and light wavelength analysis, linearity and response time and other optical and electrical properties testing. The testing result shows that the membrane has been fabricated uniformly; the device can produce obvious response current to the incident light with the wavelength from 350nm to 800nm, and the response current could be changed along with the light wavelength. When the light wavelength keeps constant, there exists a good linear relationship between the intensity of the response current and the power of the incident light, based on which the device could be used as the photo detector to collect the light information. During the changing period of the light signal, the response time of the device is several microseconds, which is acceptable working as a photo detector in our system. The testing results show that the device has good electronic and optical properties, and the fabrication procedure is also repeatable, the properties of the devices has good uniformity, which illustrates the fabrication method and procedure could be used to build the photo detector in our wearable system. Based on a series of testing results, the paper has drawn the conclusion that the photo detector fabricated could be integrated on the flexible substrate and is also suitable for the monitoring system proposed, thus made some progress on the research of the wearable monitoring system and device. Finally, some future prospect in system design aspect and device design and fabrication aspect are proposed.

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Stress is a phenomenon that on some level affects everyone’s lives on a daily basis. The autonomic nervous system controls the varying levels of stress at any given time. The responses of the autonomic nervous system adjust the body to cope with changing external and internal conditions. During high-stress situations the body is forced into a state of heightened alertness, which passes when the stressor is removed. The stressor can be any external or internal event that causes the body to respond. Stress is a very versatile phenomenon that can be both a cause and an indicator of other medical conditions, for example cardiovascular disease. Stress detection can therefore be helpful in identifying these conditions and monitoring the overall emotional state of a person. Electrodermal activity (EDA) is one of the most easily implemented ways to monitor the activity of the autonomic nervous system. EDA describes changes occurring in the various electrical properties of the skin, including skin conductivity and resistance. Increased emotional sweating has been proven to be one possible indication of stress. On the surface of the skin, increased sweating translates to increased skin conductivity, which can be observed through EDA measurements. This makes electrodermal activity a very useful tool in a wide range of applications where it is desirable to observe changes in a person’s stress level. EDA can be recorded by using specialized body sensors placed on specific locations on the body. Most commonly used recording sites are the palms of the hands due to the high sweat gland density on those areas. Measurement is done using at least two electrodes attached to the skin, and recording the electrical conductance between them. This thesis implements a prototype of a wireless EDA measurement system. The feasibility of the prototype is also verified with a small group of test subjects. EDA was recorded from the subjects while they were playing a game of Tetris. The goal was to observe variations in the measured EDA that would indicate changes in the subjects’ stress levels during the game. The analysis of the obtained measurement results confirmed the connection between stress and recorded EDA. During the game, random occurrences of lowered skin resistance were clearly observable, which indicates points in the game where the player felt more anxious. A wireless measurement system has the potential of offering more flexible and comfortable long-term measuring of EDA, and could be utilized in a wide range of applications.

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Työssä selvitettiin sähkötoimisten käsiproteesien nykyteknologian taso. Selvitettäviä asioita olivat keskushermoston ja proteesin välisen hermokytkennän toteutustapa, sähkötoimisten käsiproteesien keskeiset tekniset ominaisuudet sekä käsiproteesin mekaaniset toteutustavat. Tutkimus suoritettiin kirjallisuustutkimuksena. Työhön valittiin esimerkkejä kaupallisesti saatavilla olevista käsiproteeseista jotka löytyivät internetistä hakemalla kaikkein edisty-neintä käsiproteesia. Työstä rajattiin pois proteesin suora kytkeminen keskushermostoon. Liikeinformaation välitys aivoilta proteesille onnistuu mittaamalla lihassähkökäyrä erilaisilla ihon ja lihasten päälle, ihon alle lihaksien yhteyteen tai suoraan hermojen yhteyteen asete-tuilla elektrodeilla. Lihassähkökäyrän mittaamisessa ihon pinnalta on ongelmana sähkömag-neettinen säteily, hiki, joka muuttaa ihon impedanssia ja elektrodien meneminen pois paikal-taan. Ihon alle asetettavat elektrodit kapseloituvat, mikä heikentää niiden toimintaa ja nii-den ihon läpi kulkevat johdot voivat altistaa kohdan infektioille tai takertua johonkin. Her-moihin suorassa kosketuksissa olevat elektrodit aiheuttavat lisäksi hermopinteen. Kohden-netulla uudelleenhermotuksella voidaan hermosyyt johtaa lihaksiin, jolloin lihaksista saa-daan biologiset vahvistimet lihassähkökäyrää varten tai korvaavalle ihoalueelle, johon koh-distuva kosketus tuottaa tuntemuksen käteen kohdistuvasta kosketuksesta. Käden menet-tämisen myötä menetettävät hermo-ohjaustiedot voivat osittain korvautua aivojen mukau-tuvuuden ansiosta, mikä mahdollistaa tekokäden käyttämisen oppimisen samalla tavoin kuin polkupyörällä ajon. Hermotakaisinkytkentä mahdollistaa proteesin paremman hallin-nan. On mahdollista valmistaa keinoihoa johon kohdistuva paine saa aikaan muutoksen sen sähköisissä ominaisuuksissa, mitä voidaan sitten käyttää varsinaisen hermoärsytyksen luo-van laitteen, kuten tynkää ärsyttävän täryttimen, ohjaamisessa. On mahdollista valmistaa keinolihaksia joiden avulla nivelten liike voidaan toteuttaa luonnollisen kaltaisilla rakenteilla ja jotka ovat jopa kymmeniä kertoja voimakkaampia kuin aidot lihakset. Nykyteknologian avulla on mahdollista rakentaa käsiproteesi joka liikeradoiltaan, voimal-taan ja hermotakaisinkytkennän osalta vastaa lähes täydellisesti aitoa ihmiskättä. Haasteena on vielä kokeiluasteella oleva teknologian taso sekä korkea hinta.