Formulation of Iterative Finite-Difference Method for Generating Large Spatially Variant Lattices

Authors

  • Manuel F. Martinez Department of Electrical and Computer Engineering, University of Texas at El Paso, El Paso, TX 79968, USA
  • Jesus J. Gutierrez Department of Electrical and Computer Engineering, University of Texas at El Paso, El Paso, TX 79968, USA
  • Jimmy E. Touma Air Force Research Laboratory, Integrated Sensing and Processing, Eglin Air Force Base, Eglin, FL 32542, USA
  • Raymond C. Rumpf Department of Electrical and Computer Engineering, University of Texas at El Paso, El Paso, TX 79968, USA

DOI:

https://doi.org/10.13052/2022.ACES.J.370201

Keywords:

Iterative finite-difference method, functionally graded, metamaterials, photonic crystals, spatial variance

Abstract

A new numerical method to generate spatially variant lattices (SVLs) is derived and implemented. The algorithm proposed solves the underlying partial differential equations iteratively with an update equation derived using the finite-difference method to obtain an SVL that is continuous, smooth, and free of unintended defects while maintaining the unit cell geometry throughout the lattice. This iterative approach is shown to be more memory-efficient when compared to the matrix-based approach and is, thus, suitable for the calculation of large-scale SVLs. The iterative nature of the solver allows it to be easily implemented in graphics processing unit to parallelize the computation of SVLs. Two spatially variant self-collimating photonic crystals are generated and simulated to demonstrate the functionality of the algorithm as a tool to generate fully three-dimensional photonic devices of realistic size.

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References

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Published

2022-07-09

How to Cite

[1]
M. F. . Martinez, J. J. . Gutierrez, J. E. . Touma, and R. C. . Rumpf, “Formulation of Iterative Finite-Difference Method for Generating Large Spatially Variant Lattices”, ACES Journal, vol. 37, no. 02, pp. 141–148, Jul. 2022.

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