Chapter XII Propagation of Optical Beams in Fibers

Slides:



Advertisements
Similar presentations
Guided Waves in Layered Media. Layered media can support confined electromagnetic propagation. These modes of propagation are the so-called guided waves,
Advertisements

Waveguides Part 2 Rectangular Waveguides Dielectric Waveguide
Chapter 2 Optical Fibers: Structures, Waveguiding & Fabrication
Notes 12 ECE Microwave Engineering Fall Surface Waves Prof. David R. Jackson Dept. of ECE Fall 2011.
Fiber Optics Communication
ENE 428 Microwave Engineering
Nonlinear Optics Lab. Hanyang Univ. Chapter 3. Propagation of Optical Beams in Fibers 3.0 Introduction Optical fibers  Optical communication - Minimal.
Lecture 3 Light Propagation In Optical Fiber
The Optical Fiber and Light Wave Propagation Xavier Fernando Ryerson Comm. Lab.
Microwave Engineering
MAXWELL’S EQUATIONS AND TRANSMISSION MEDIA CHARACTERISTICS
Dielectric Rod Waveguides Project for ELEC 590, UVIC, BC, Canada Session - September 2002 Directed Study Prepared by: Deepak Sarkar Student #
ECE 4853: Optical Fiber Communication Waveguide/Fiber Modes (Slides and figures courtesy of Saleh & Teich) (Modified, amended and adapted by R. Winton)
x z y 0 a b 0 0 a x EyEy z rectangular waveguides TE 10 mode.
Optical Fiber Basics Part-3
Chapter 2 Waveguide.
EE 230: Optical Fiber Communication Lecture 2 From the movie Warriors of the Net Fibers from the view of Geometrical Optics.
EE 230: Optical Fiber Communication Lecture 3 Waveguide/Fiber Modes From the movie Warriors of the Net.
Lecture 3 Optical fibers
5-4: SI Fiber Modes  Consider the cylindrical coordinates  Assume propagation along z,  Wave equation results  Using separation of variables  is integer.
Fiber Optics Defining Characteristics: Numerical Aperture Spectral Transmission Diameter.
OPTICAL FIBER WAVEGUIDE Optical Fiber Waveguides An Optical Fiber is a dielectric waveguide that operates at optical frequencies Normally cylindrical.
Fiber-Optic Communications
1 Stephen SchultzFiber Optics Fall Optical Fibers.
Prof. David R. Jackson Notes 19 Waveguiding Structures Waveguiding Structures ECE Spring 2013.
Prof. David R. Jackson ECE Dept. Spring 2014 Notes 10 ECE
Optical Fiber Basics-Part 2
Lecture 18 Chapter XI Propagation and Coupling of Modes in Optical Dielectric Waveguides – Periodic Waveguides Highlights (a) Periodic (corrugated) WG.
Lecture 6.
Prof. D. R. Wilton Notes 19 Waveguiding Structures Waveguiding Structures ECE 3317 [Chapter 5]
Chapter 4: Optical fibers and their parameters Graphic representation of three different types of how the refractive index change in the core of an optical.
Optical Fiber Communications
Objectives Understand the importance of fiber-optic technologies in the information society Identify the fundamental components of a fiber-optic cable.
Optical Fibre Dispersion By: Mr. Gaurav Verma Asst. Prof. ECE NIEC.
FIBER OPTICS. Increase in Bitrate-Distance Product Agrawal-Fiber Optic Communications.
UNIT 2 LIGHT PROPAGATION IN AN OPTICAL FIBER:. CONTENTS:  Structure of Optical Fiber Cable  Classification of Fibers  Based on fiber materials  Based.
§2 Optical Fibres – a brief introduction Anatomy of a Fiber Cable Fig. 2.1: Anatomy of a fiber.
Discrete optics v.s. Integrated optics
NATURE OF LIGHT Concept —Light can be explained as – Rays: using Optical Geometry – Waves: using Electromagnetic Theory – Photons: using Photoelectric.
Chapter 2: Transmission lines and waveguides
Lecture 5.
1 Waveguides. Copyright © 2007 Oxford University Press Elements of Electromagnetics Fourth Edition Sadiku2 Figure 12.1 Typical waveguides.
Chapter 2 Optical Fiber Waveguide in Signal Transmission
ENE 428 Microwave Engineering
Chapter 6 OPTICAL FIBERS AND GUIDING LAYERS
Chapter 2 Optical Fibers: Structures, Waveguiding & Fabrication.
UNIT-II Optical Fiber ECE – IV SEM Manav Rachna College of Engg.
OPTICAL FIBER COMMUNICATION
8. Wave Guides and Cavities 8A. Wave Guides Suppose we have a region bounded by a conductor We want to consider oscillating fields in the non-conducting.
Prof. David R. Jackson ECE Dept. Spring 2016 Notes 10 ECE
Except otherwise noted, this work is licensed under a Creative Commons Attribution 4.0 International License. Modes in infinite slab waveguides ELEC-E3240.
UPM, DIAC. Open Course. March FIBER 2.1 Nature of Light 2.2 Refractive Index 2.3 Fiber Structure 2.4 Waves 2.5 Rays.
Microwave Engineering
Prof. David R. Jackson Dept. of ECE Fall 2015 Notes 11 ECE 6340 Intermediate EM Waves 1.
Wave propagation in optical fibers Maxwell equations in differential form The polarization and electric field are linearly dependent.
Visit for more Learning Resources
GROUP DELAY Group delay per unit length can be defined as:
RF Cavities & Waveguides
ENE 428 Microwave Engineering
COMMUNICATION ENG. PROF. A.M.ALLAM
Microwave Engineering
INEL 5606 Dr. Sandra Cruz-Pol ECE, UPRM
Microwave Engineering
Summary of Lecture 18 导波条件 图解法求波导模式 边界条件 波导中模式耦合的微扰理论
Microwave Engineering
7e Applied EM by Ulaby and Ravaioli
Applied Electromagnetic Waves Rectangular Waveguides
Applied Electromagnetic Waves Waveguiding Structures
Transmission Lines and Waveguides
2nd Week Seminar Sunryul Kim Antennas & RF Devices Lab.
Presentation transcript:

Chapter XII Propagation of Optical Beams in Fibers Lecture 20 Chapter XII Propagation of Optical Beams in Fibers Highlights Optical guide modes in fibers Step-index Circular Waveguide  HE modes and EH modes Linearly Polarized Modes  LP modes Optical Pulse Propagation and Pulse Spreading  Compensation methods Attenuation in Silica Fibers Several kinds of Fibers

§12.1 Wave Equations in Cylindrical Coordinates Geometric Optics Analysis (For multimode analysis) Propagation Ray in Fibers TE and TM modes Critical angle of confined mode HE and EH modes Numerical Aperture (NA) The ability to receive optical beam  the bigger the better, however enlarges mode dispersion

§12.1 Wave Equations in Cylindrical Coordinates Electromagnetic Theory Analysis (For singlemode analysis) Cylindrical coordinate system For z component

§12.1 Wave Equations in Cylindrical Coordinates Bessel function’s asymptotic features can be found in textbook. arguments < 1 corresponding to the inner core case arguments > 1 corresponding to the cladding layer case Once Ez, Hz are determined, can then be obtained from Maxwell curl equations.

§12.2 The Step-Index Circular Waveguide Wave Components Recall for confined mode propagation Cladding (r>a) region (evanescent) Core (r<a) region (finite at the center) The other component in different region can then be obtained

§12.2 The Step-Index Circular Waveguide Boundary condition requires be continous at r=a

§12.2 The Step-Index Circular Waveguide Once the eigenvalues have been found, we can solve for the ratios of B/A, C/A and D/A that determined six field components of the mode corresponding to each propagation constant. (see textbook for detail)

§12.2 The Step-Index Circular Waveguide Mode Characteristics and Cutoff Conditions Slab waveguide modes TE and TM Circular waveguide modes EH and HE

§12.2 The Step-Index Circular Waveguide EH modes HE modes Recall

§12.2 The Step-Index Circular Waveguide TEom and TMom modes TE0m mode TM0m mode

§12.2 The Step-Index Circular Waveguide Graphic solutions Cutoff condition Normalized frequency

§12.2 The Step-Index Circular Waveguide Graphic solutions No longer TE or TM but the EH or HE modes For EH modes Cutoff condition

§12.2 The Step-Index Circular Waveguide For HE modes No cutoff for HE11 Cutoff condition Fundamental mode

§12.2 The Step-Index Circular Waveguide Normalized propagation constant as a function of V Near cutoff the modes are poorly confined; far above cutoff, the mode is tightly confined to the core. Again, HE11 is the fundamental mode can propagate in any wavelength.