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Articles

Efficient Evaluation of Convolution Integrals Arising in Fdtd Formulations of Electromagnetic Dispersive Media

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Pages 101-117 | Published online: 03 Apr 2012

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Song Liu, Sheng Chen, Zhifang He, Shuangying Zhong & Huiqin Wang. (2015) Study on the polarization properties of electromagnetic waves with arbitrary magnetic declination in magnetized plasma. Waves in Random and Complex Media 25:3, pages 393-404.
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S. M. Cossmann & E. J. Rothwell. (2007) Transient Reflection of Plane Waves from a Lorentz Medium Half Space. Journal of Electromagnetic Waves and Applications 21:10, pages 1289-1302.
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Guoda Xie, Ming Fang, Zhixiang Huang, Xianliang Wu, Xingang Ren & Naixing Feng. (2023) A Numerical Study of Lossy Multipole Debye Dispersive Media Using a Recursive Integral-FDTD Method. IEEE Transactions on Microwave Theory and Techniques 71:3, pages 1009-1018.
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Ludmila J. Prokopeva, Samuel Peana & Alexander V. Kildishev. (2022) Gaussian dispersion analysis in the time domain: Efficient conversion with Padé approximants. Computer Physics Communications 279, pages 108413.
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Shihong Wu, Yunyun Dong, Lining Liu, Feng Su & Xiangguang Chen. (2021) Implicit approximate decoupling procedure with Crank–Nicolson scheme for bandpass symmetric rotationally geophysical problems . International Journal of RF and Microwave Computer-Aided Engineering 32:2.
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Jun Shibayama, Hiroki Kawai, Junji Yamauchi & Hisamatsu Nakano. (2019) Analysis of a 3D MIM waveguide-based plasmonic demultiplexer using the TRC-FDTD method. Optics Communications 452, pages 360-365.
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Xiao Ma, Dinghui Yang, Xijun HeXueyuan Huang & Jiaxing Song. (2019) Nonsplit complex-frequency-shifted perfectly matched layer combined with symplectic methods for solving second-order seismic wave equations — Part 2: Wavefield simulations. GEOPHYSICS 84:3, pages T167-T179.
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F. Daneshmandian, A. Abdipour & A. N. Askarpour. (2019) Full wave analysis of terahertz dispersive and lossy plasmonic HEMT using hydrodynamic model. Journal of the Optical Society of America B 36:4, pages 1138.
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Jianxiong Li, Wei Jiao & Xiaoming Zhao. (2018) Unconditionally Stable CFS-PML Based on CNAD-BOR-FDTD for Truncating Unmagnetized Plasma. IEEE Transactions on Electromagnetic Compatibility 60:6, pages 2069-2072.
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Xiao Ma, Dinghui Yang, Xueyuan Huang & Yanjie Zhou. (2018) Nonsplit complex-frequency shifted perfectly matched layer combined with symplectic methods for solving second-order seismic wave equations — Part 1: Method. GEOPHYSICS 83:6, pages T301-T311.
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Kazuhiro Fujita. (2018) Frequency-Dependent MNL-FDTD Scheme for Wideband Analysis of Printed Circuit Boards With Debye Dispersive Media. IEEE Transactions on Antennas and Propagation 66:10, pages 5349-5358.
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Sinan Fang, Heping Pan, Ting Du, Ahmed Amara Konaté, Chengxiang Deng, Zhen Qin, Bo Guo, Ling Peng, Huolin Ma, Gang Li & Feng Zhou. (2016) Crosswell electromagnetic modeling from impulsive source: Optimization strategy for dispersion suppression in convolutional perfectly matched layer. Scientific Reports 6:1.
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Didier Dragna, Pierre Pineau & Philippe Blanc-Benon. (2015) A generalized recursive convolution method for time-domain propagation in porous media. The Journal of the Acoustical Society of America 138:2, pages 1030-1042.
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Iraklis Giannakis & Antonios Giannopoulos. (2015) Time-Synchronized Convolutional Perfectly Matched Layer for Improved Absorbing Performance in FDTD. IEEE Antennas and Wireless Propagation Letters 14, pages 690-693.
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Iraklis Giannakis & Antonios Giannopoulos. (2014) A Novel Piecewise Linear Recursive Convolution Approach for Dispersive Media Using the Finite-Difference Time-Domain Method. IEEE Transactions on Antennas and Propagation 62:5, pages 2669-2678.
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Krzysztof A. Michalski. (2013) On the Low-Order Partial-Fraction Fitting of Dielectric Functions at Optical Wavelengths. IEEE Transactions on Antennas and Propagation 61:12, pages 6128-6135.
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Song Liu & Shuang Ying Zhong. (2013) Analysis on polarization characteristics of electromagnetic propagation in anisotropic magnetized plasma media. Optik 124:5, pages 389-392.
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Jun Shibayama, Junji Yamauchi & Hisamatsu Nakano. (2012) Efficient time-domain techniques for the wideband analysis of plasmonic antennas. Efficient time-domain techniques for the wideband analysis of plasmonic antennas.
Jun SHIBAYAMA, Keisuke WATANABE, Ryoji ANDO, Junji YAMAUCHI & Hisamatsu NAKANO. (2012) Frequency-Dependent Formulations of a Drude-Critical Points Model for Explicit and Implicit FDTD Methods Using the Trapezoidal RC Technique. IEICE Transactions on Electronics E95.C:4, pages 725-732.
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Jun Shibayama, Junji Yamauchi & Hisamatsu Nakano. (2011) Analysis of Plasmonic Waveguides and Gratings Using Implicit Finite-Difference Methods. Advances in OptoElectronics 2011, pages 1-6.
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Song Liu, Sanqiu Liu & Shaobin Liu. (2010) Analysis for scattering of conductive objects covered with anisotropic magnetized plasma by trapezoidal recursive convolution finite-difference time-domain method. International Journal of RF and Microwave Computer-Aided Engineering 20:4, pages 465-472.
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Song Liu, Sanqiu Liu & Shaobin Liu. (2010) Finite-difference Time-domain Algorithm for Plasma Based on Trapezoidal Recursive Convolution Technique. Journal of Infrared, Millimeter, and Terahertz Waves.
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Jun Shibayama, Akifumi Nomura, Ryoji Ando, Junji Yamauchi & Hisamatsu Nakano. (2010) A Frequency-Dependent LOD-FDTD Method and Its Application to the Analyses of Plasmonic Waveguide Devices. IEEE Journal of Quantum Electronics 46:1, pages 40-49.
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J. Shibayama, R. Ando, A. Nomura, J. Yamauchi & H. Nakano. (2009) Simple Trapezoidal Recursive Convolution Technique for the Frequency-Dependent FDTD Analysis of a Drude–Lorentz Model. IEEE Photonics Technology Letters 21:2, pages 100-102.
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G. Antonini, A. Orlandi & N. Caporale. (2001) On the incorporation of frequency dependent dielectric losses in FDTD formulation for differential transmission lines. On the incorporation of frequency dependent dielectric losses in FDTD formulation for differential transmission lines.
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H.H. Abdullah, F.M. El-Hefnawi & A.Z. Elsherbeni. (2000) A FDTD scattered field formulation for dispersive media. A FDTD scattered field formulation for dispersive media.
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