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Design considerations of microcavity ring resonators

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Design considerations of microcavity ring resonators. / Abujnah, N.; Letizia, R.; Obayya, S. S. A.
In: IET Optoelectronics, Vol. 5, No. 4, 08.2011, p. 158-164.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Abujnah, N, Letizia, R & Obayya, SSA 2011, 'Design considerations of microcavity ring resonators', IET Optoelectronics, vol. 5, no. 4, pp. 158-164. https://doi.org/10.1049/iet-opt.2010.0023

APA

Abujnah, N., Letizia, R., & Obayya, S. S. A. (2011). Design considerations of microcavity ring resonators. IET Optoelectronics, 5(4), 158-164. https://doi.org/10.1049/iet-opt.2010.0023

Vancouver

Abujnah N, Letizia R, Obayya SSA. Design considerations of microcavity ring resonators. IET Optoelectronics. 2011 Aug;5(4):158-164. doi: 10.1049/iet-opt.2010.0023

Author

Abujnah, N. ; Letizia, R. ; Obayya, S. S. A. / Design considerations of microcavity ring resonators. In: IET Optoelectronics. 2011 ; Vol. 5, No. 4. pp. 158-164.

Bibtex

@article{f11ac7227294405db92b99326084d472,
title = "Design considerations of microcavity ring resonators",
abstract = "This study presents an accurate numerical analysis of a microcavity ring resonator based on high-index-contrast waveguide. The analysis is carried out using a multiresolution time domain (MRTD) scheme that provides high numerical precision without the strict limitation on the space discretisation as compared to the commonly used finite-difference time domain (FDTD). By relying on higher-order approximation of discretisation in space, the proposed MRTD approach outperforms the FDTD method and is thus a more suitable candidate for large-scale simulations. The uniaxial perfectly matched layer is carefully applied to truncate the computational domain. The analysed parameters are the coupling coefficients between the input/output waveguides and the ring, the resonance frequencies and the free spectral range. The effect of the structure geometry parameters such as the gap between the ring and input/output waveguides, the ring radius and the width of the input/output waveguide and the ring resonator is thoroughly investigated. The numerical results reveal that the suggested MRTD allows using about twice the spatial step size required by FDTD yet providing same level of accuracy.",
author = "N. Abujnah and R. Letizia and Obayya, {S. S. A.}",
year = "2011",
month = aug,
doi = "10.1049/iet-opt.2010.0023",
language = "English",
volume = "5",
pages = "158--164",
journal = "IET Optoelectronics",
issn = "1751-8768",
publisher = "Institution of Engineering and Technology",
number = "4",

}

RIS

TY - JOUR

T1 - Design considerations of microcavity ring resonators

AU - Abujnah, N.

AU - Letizia, R.

AU - Obayya, S. S. A.

PY - 2011/8

Y1 - 2011/8

N2 - This study presents an accurate numerical analysis of a microcavity ring resonator based on high-index-contrast waveguide. The analysis is carried out using a multiresolution time domain (MRTD) scheme that provides high numerical precision without the strict limitation on the space discretisation as compared to the commonly used finite-difference time domain (FDTD). By relying on higher-order approximation of discretisation in space, the proposed MRTD approach outperforms the FDTD method and is thus a more suitable candidate for large-scale simulations. The uniaxial perfectly matched layer is carefully applied to truncate the computational domain. The analysed parameters are the coupling coefficients between the input/output waveguides and the ring, the resonance frequencies and the free spectral range. The effect of the structure geometry parameters such as the gap between the ring and input/output waveguides, the ring radius and the width of the input/output waveguide and the ring resonator is thoroughly investigated. The numerical results reveal that the suggested MRTD allows using about twice the spatial step size required by FDTD yet providing same level of accuracy.

AB - This study presents an accurate numerical analysis of a microcavity ring resonator based on high-index-contrast waveguide. The analysis is carried out using a multiresolution time domain (MRTD) scheme that provides high numerical precision without the strict limitation on the space discretisation as compared to the commonly used finite-difference time domain (FDTD). By relying on higher-order approximation of discretisation in space, the proposed MRTD approach outperforms the FDTD method and is thus a more suitable candidate for large-scale simulations. The uniaxial perfectly matched layer is carefully applied to truncate the computational domain. The analysed parameters are the coupling coefficients between the input/output waveguides and the ring, the resonance frequencies and the free spectral range. The effect of the structure geometry parameters such as the gap between the ring and input/output waveguides, the ring radius and the width of the input/output waveguide and the ring resonator is thoroughly investigated. The numerical results reveal that the suggested MRTD allows using about twice the spatial step size required by FDTD yet providing same level of accuracy.

U2 - 10.1049/iet-opt.2010.0023

DO - 10.1049/iet-opt.2010.0023

M3 - Journal article

VL - 5

SP - 158

EP - 164

JO - IET Optoelectronics

JF - IET Optoelectronics

SN - 1751-8768

IS - 4

ER -