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9780792396215: Integrated Optics, Microstructures, and Sensors: 332
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Controlling the mechanical, electrical, magnetic, and optical properties of materials by advanced fabrication methods (Le. ; Molecular Beam Epitaxy and Metal-Organic Chemical Vapor Deposition) has become the new paradigm in our research era. Sensors, being the most vital part of the electronic data processing and decision making machines, stand to gain the most from engineering of the properties of materials. Microfabrication technology has already contributed significantly to the batch fabrication of micro-sensors with higher over all qualities compared to their counterparts that are fabricated using other methods. Batch fabrication of micro-sensors i) results in more uniform properties of co-fabricated devices, ii) nearly eliminates the need for characterization of individual sensors, and iii) eliminates a need for laborious alignment procedures. A less obvious benefit of using microfabrication methods is the possibility of precise control over the dimensions of the sensor. This control enables engineering of some of the properties of the material which affect the sensor's operation. There are many examples of this in the literature. Optical sensors are known to have superior properties over their counterparts that use other (i. e. ; electrostatic and magnetic) means of detection. To name a few, these advantages are: i) immunity to electromagnetic interferences, ii) higher sensitivities compared to the other types of sensors, iii) simplicity of operation principles, and iv) simplicity of overall construction.

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Contenuti:
Preface. Introduction. Section 1: Integrated optics. Introduction. 1. Two and one dimensional optical wave guides; M. Tabib-Azar. 2. Optical properties of materials; M.J. Wu. 3. Passive optical devices; M. Tabib-Azar. 4. Active optical devices; M. Tabib-Azar. 5. Complete waveguide structures; M.J. Wu. Section II: Microstructures and fabrication methods. Introduction. 1. Fabrication of microstructures; M. Tabib-Azar. 2. Fabrication of integrated optics; M. Tabib-Azar. 3. Mechanics of deformable silicon microstructures; M. Tabib-Azar. Section III: Optical sensors. 1. Sensing means and sensor shells; A. Garcia-Valenzuela, M. Tabib-Azar. 2. Integrated and fiber optic sensors; M. Tuma. 3. Force, displacement, and acceleration sensors; A. Garcia-Valenzuela, M. Tabib-Azar. 4. Temperature sensors; G. Beheim. 5. Optical chemical sensors; S. Amartur, et al. 6. Sensor design examples and additional considerations; M.J. Wu, M. Tabib-Azar. 7. Comparison between electrostatic, magnetic, and optical sensors; A. Garcia-Valenzuela, M. Tabib-Azar. Index.
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Book by TabibAzar Massood

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  • EditoreKluwer Academic Pub
  • Data di pubblicazione1995
  • ISBN 10 0792396219
  • ISBN 13 9780792396215
  • RilegaturaCopertina rigida
  • Numero di pagine424

Altre edizioni note dello stesso titolo

9781461359586: Integrated Optics, Microstructures, and Sensors (The Springer International Series in Engineering and Computer Science): 332

Edizione in evidenza

ISBN 10:  1461359589 ISBN 13:  9781461359586
Casa editrice: Springer, 2014
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  • 9781461522744: Integrated Optics, Microstructures, and Sensors

    Springer, 2011
    Brossura

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Descrizione libro Gebunden. Condizione: New. Dieser Artikel ist ein Print on Demand Artikel und wird nach Ihrer Bestellung fuer Sie gedruckt. Controlling the mechanical, electrical, magnetic, and optical properties of materials by advanced fabrication methods (Le. Molecular Beam Epitaxy and Metal-Organic Chemical Vapor Deposition) has become the new paradigm in our research era. Sensors, being . Codice articolo 5971627

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Descrizione libro Buch. Condizione: Neu. Druck auf Anfrage Neuware - Printed after ordering - Controlling the mechanical, electrical, magnetic, and optical properties of materials by advanced fabrication methods (Le. ; Molecular Beam Epitaxy and Metal-Organic Chemical Vapor Deposition) has become the new paradigm in our research era. Sensors, being the most vital part of the electronic data processing and decision making machines, stand to gain the most from engineering of the properties of materials. Microfabrication technology has already contributed significantly to the batch fabrication of micro-sensors with higher over all qualities compared to their counterparts that are fabricated using other methods. Batch fabrication of micro-sensors i) results in more uniform properties of co-fabricated devices, ii) nearly eliminates the need for characterization of individual sensors, and iii) eliminates a need for laborious alignment procedures. A less obvious benefit of using microfabrication methods is the possibility of precise control over the dimensions of the sensor. This control enables engineering of some of the properties of the material which affect the sensor's operation. There are many examples of this in the literature. Optical sensors are known to have superior properties over their counterparts that use other (i. e. ; electrostatic and magnetic) means of detection. To name a few, these advantages are: i) immunity to electromagnetic interferences, ii) higher sensitivities compared to the other types of sensors, iii) simplicity of operation principles, and iv) simplicity of overall construction. Codice articolo 9780792396215

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Descrizione libro Buch. Condizione: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -Controlling the mechanical, electrical, magnetic, and optical properties of materials by advanced fabrication methods (Le. ; Molecular Beam Epitaxy and Metal-Organic Chemical Vapor Deposition) has become the new paradigm in our research era. Sensors, being the most vital part of the electronic data processing and decision making machines, stand to gain the most from engineering of the properties of materials. Microfabrication technology has already contributed significantly to the batch fabrication of micro-sensors with higher over all qualities compared to their counterparts that are fabricated using other methods. Batch fabrication of micro-sensors i) results in more uniform properties of co-fabricated devices, ii) nearly eliminates the need for characterization of individual sensors, and iii) eliminates a need for laborious alignment procedures. A less obvious benefit of using microfabrication methods is the possibility of precise control over the dimensions of the sensor. This control enables engineering of some of the properties of the material which affect the sensor's operation. There are many examples of this in the literature. Optical sensors are known to have superior properties over their counterparts that use other (i. e. ; electrostatic and magnetic) means of detection. To name a few, these advantages are: i) immunity to electromagnetic interferences, ii) higher sensitivities compared to the other types of sensors, iii) simplicity of operation principles, and iv) simplicity of overall construction. 424 pp. Englisch. Codice articolo 9780792396215

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