Iterative Nonlinear Beam Propagation Method and Its Application in Nonlinear Devices

Iterative Nonlinear Beam Propagation Method and Its Application in Nonlinear Devices
Author: Hanhong Gao
Publisher:
Total Pages: 96
Release: 2011
Genre:
ISBN:

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In this thesis, an iterative nonlinear beam propagation method is introduced and applied to optical devices. This method is based on Hamiltonian ray tracing and the Wigner distribution function. First, wave propagation simulation using Hamiltonian ray tracing is illustrated and verified with different examples. Based on this, the iterative method is presented for beam propagation in nonlinear media, which is validated with common Kerr effect phenomena such as self-focusing and spatial solitons. As the application to the analysis of nonlinear optical devices, this method is applied to nonlinear Lineburg lens. It is found that the nonlinear Liineburg lens is able to compensate the focal shift caused by the diffraction of Gaussian illumination. The iterative nonlinear beam propagation method is computationally efficient and provides much physical insights into the wave propagation. Since it is based on Hamiltonian ray tracing, a ray diagram can be easily obtained which contains the evolution of generalized radiances. Besides bulk nonlinear media, this method provides a systematic approach to beam propagation problem in complex media such as nonlinear photonic crystals and metamaterials. Also, it is applicable to both coherent and partially coherent illumination. Therefore, this method has potential applications in the design and analysis of nonlinear optical devices and systems.

A Non-Iterative Bidirectional Beam Propagation Method

A Non-Iterative Bidirectional Beam Propagation Method
Author: Youngchul Chung
Publisher:
Total Pages: 2
Release: 1992
Genre:
ISBN:

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For the analysis and optimization of guided-wave optoelectronic devices, efficient modeling techniques are essential. For this purpose the Beam Propagation Method (BPM) is widely used. However, BPM has certain limitations, one of which is its applicability only to forward beam propagation. As a result, the BPM cannot handle structures with multiple discontinuities with strong reflections along the direction of propagation. To eliminate this difficulty a bidirectional BPM was introduced. This is essentially an iterative scheme, in which multiple reflections are kept track of until a self consistent steady state is reached. Although this approach can analyze structures with limited number of discontinuities, it is not very suitable to analyze structures with multiple discontinuities, such as gratings both due to difficulty of implementation as well as large computational effort. The most commonly used method that can naturally include the reflection from discontinuities is the finite-difference time-domain (FDTD) method. However, the FDTD method needs quite a lot of memory and computing time, which, are usually an order of magnitude larger than the BPM. Therefore, it is very desirable to develop a beam propagation technique which can model backward optical wave as well as forward going wave in a simple way. The aim of this paper is to introduce such a method.

Beam Propagation Method for Design of Optical Waveguide Devices

Beam Propagation Method for Design of Optical Waveguide Devices
Author: Ginés Lifante Pedrola
Publisher: John Wiley & Sons
Total Pages: 401
Release: 2015-10-20
Genre: Science
ISBN: 1119083397

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The basic of the BPM technique in the frequency domain relies on treating the slowly varying envelope of the monochromatic electromagnetic field under paraxial propagation, thus allowing efficient numerical computation in terms of speed and allocated memory. In addition, the BPM based on finite differences is an easy way to implement robust and efficient computer codes. This book presents several approaches for treating the light: wide-angle, scalar approach, semivectorial treatment, and full vectorial treatment of the electromagnetic fields. Also, special topics in BPM cover the simulation of light propagation in anisotropic media, non-linear materials, electro-optic materials, and media with gain/losses, and describe how BPM can deal with strong index discontinuities or waveguide gratings, by introducing the bidirectional-BPM. BPM in the time domain is also described, and the book includes the powerful technique of finite difference time domain method, which fills the gap when the standard BPM is no longer applicable. Once the description of these numerical techniques have been detailed, the last chapter includes examples of passive, active and functional integrated photonic devices, such as waveguide reflectors, demultiplexers, polarization converters, electro-optic modulators, lasers or frequency converters. The book will help readers to understand several BPM approaches, to build their own codes, or to properly use the existing commercial software based on these numerical techniques.

NBS Special Publication

NBS Special Publication
Author:
Publisher:
Total Pages: 398
Release: 1968
Genre: Weights and measures
ISBN:

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High-Performance Backbone Network Technology

High-Performance Backbone Network Technology
Author: Naoaki Yamanaka
Publisher: CRC Press
Total Pages: 1078
Release: 2020-04-01
Genre: Technology & Engineering
ISBN: 1351830562

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Compiling the most influential papers from the IEICE Transactions in Communications, High-Performance Backbone Network Technology examines critical breakthroughs in the design and provision of effective public service networks in areas including traffic control, telephone service, real-time video transfer, voice and image transmission for a content delivery network (CDN), and Internet access. The contributors explore system structures, experimental prototypes, and field trials that herald the development of new IP networks that offer quality-of-service (QoS), as well as enhanced security, reliability, and function. Offers many hints and guidelines for future research in IP and photonic backbone network technologies

Applied mechanics reviews

Applied mechanics reviews
Author:
Publisher:
Total Pages: 400
Release: 1948
Genre: Mechanics, Applied
ISBN:

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