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Présentation Optical And Electronic Fibers Format Relié
- Livre Encyclopédies, Dictionnaires
Résumé : Understand the cutting edge of fiber technology with this comprehensive guide Because of their sensitivity and flexible capabilities, functional fibers have an enormous range of applications across many industries. In particular, advanced optical and electronic fibers have been integrated into numerous cutting-edge technologies, and their applications are growing year on year. There is an expanding need for scientists and professionals, particularly in the healthcare and sensor industries, to be familiar with the complex web of factors underlying functional fibers. Optical and Electronic Fibers builds this familiarity with an up-to-date, highly readable presentation. It introduces both the characteristics and applications of different functional fiber materials before moving to future opportunities for research and development. The result is an accessible overview of an emerging technology with boundless potential. Optical and Electronic Fibers readers will also find: Optical and Electronic Fibers is a useful reference for materials scientists, electrical engineers, and semiconductor and sensor professionals....
Biographie: Lei Wei, PhD, is an Associate Professor in the School of Electrical and Electronic Engineering and the Director of the Centre for Optical Fibre Technology at Nanyang Technological University, Singapore. He is also the Chair of the Singapore sections of both the Optica (formerly OSA) and the IEEE Photonics Society, and has published very widely on fiber-based devices and related research subjects.
Sommaire: Preface xi 1 Optical Fiber with Two-dimensional Materials Integration for Photonic and Optoelectronic Applications 1 1.1 Introduction 1 1.2 Fiber-integrated 2D Materials for Photonics and Optoelectronics 3 1.2.1 Basic Properties of 2D Materials 3 1.2.1.1 Graphene 3 1.2.1.2 Transition Metal Dichalcogenides 4 1.2.1.3 Black Phosphorus 6 1.2.1.4 Other 2D Materials and the Heterostructures 7 1.2.2 Optical Fiber-2D-material Integrations 7 1.2.3 Photonic and Optoelectronic Applications 9 1.2.3.1 Polarimetric Devices 9 1.2.3.2 Light Sources 10 1.2.3.3 Modulators 12 1.2.3.4 Photodetectors 14 1.2.3.5 Nonlinear Optics 17 1.2.3.6 Fiber-optic Sensors 20 1.3 Conclusion 24 References 24 2 Postprocessing of Semiconductor Optical Fibers 29 2.1 Introduction 29 2.2 Semiconductor Optical Fibers 29 2.2.1 Heat Treatments of Semiconductor Optical Fibers 29 2.2.1.1 Thermal Annealing 30 2.2.1.2 Rapid Thermal Annealing 31 2.2.2 Laser Processing of Semiconductor Optical Fibers 32 2.2.2.1 Electronic Absorption via the Core 32 2.2.2.2 Conductive Core Heating via Laser Absorption by the Cladding 33 2.2.3 Applications of Laser?processed Optical Fibers 34 2.2.3.1 Electronic Bandgap Modulation 34 2.2.3.2 Compositional Microstructuring 35 2.2.3.3 Capillary Instabilities 35 2.2.4 Tapering of Semiconductor Optical Fibers 38 2.2.4.1 Applications of Tapered Optical Fiber 39 2.2.4.2 Dispersion Tailoring 41 2.2.4.3 Mode-matched Coupling 41 2.3 Conclusion 42 References 42 3 Processed Optical Fiber-based Wearable Sensors for Healthcare 45 3.1 Introduction 45 3.2 Performance Features of Wearable Sensors 46 3.2.1 Sensitivity 47 3.2.2 Linearity and Range of Operation 50 3.2.3 Response Time and Dynamic Durability 51 3.2.4 Biocompatibility 52 3.2.5 Integrability 53 3.3 Processed Fiber-based Wearable Optical Sensors 54 3.3.1 Intensity Interrogation-based Sensing Mechanism 55 3.3.1.1 Micro-/Macro-bend Fiber-based Sensor Probe 55 3.3.1.2 Hetero-core Fiber-based Sensor Probe 56 3.3.1.3 Plastic Optical Fiber (POF)-based Sensor Probe 57 3.3.1.4 Silica Micro-/Nanofiber (MNF)-based Sensor Probe 60 3.3.2 Wavelength Interrogation-based Sensing Mechanism 61 3.3.2.1 Processed Fiber Interferometers 61 3.3.2.2 Fiber Bragg Grating (FBG) Structures 62 3.3.2.3 Polymer Optical Fiber Bragg Gratings (POFBGFs) 63 3.3.2.4 Micro/Nano Fiber Structures 65 3.4 Scope of Optical Wearable Sensors 65 3.4.1 2D Materials for Miniaturized Wearable Sensors 65 3.4.2 Computational Modalities for Analytical Augmentation 66 3.4.3 Additional Utilities of Processed Fiber Wearable Optical Sensors 67 3.5 Conclusions 68 References 69 4 Electrochemical Plasmonic Fibers for Operando Monitoring of Renewable Energy 75 4.1 Introduction 75 4.2 Sensing Principle 78 4.2.1 TFBG-assisted Plasmonic Excitation by Thin Metal Film Coating 78 4.2.2 Electrochemical Surface Plasmon Resonance (EC-SPR) Sensing Method 80 4.3 Recent Progress of Operando Monitoring of Renewable Energy 81 4.3.1 Ultrafast and Repeatable Hydrogen Monitoring 81 4.3.2 In-situ Monitoring of State of Charge (SOC) of Battery 84 4.3.3 In-situ Monitoring of I...
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