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December 13, 2006Physical Review Letters

Magnetic Plasmon Propagation Along a Chain of Connected Subwavelength Resonators at Infrared Frequencies

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Authors

HLHui LiuCollaborative Innovation Center of Advanced MicrostructuresDGDentcho A. GenovLouisiana Tech UniversityDWDong WuBeijing Institute of Technology

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Overview

Computational modeling demonstrates low-loss magnetic plasmon transfer along connected split-ring resonators, highlighting applications for nanoscale integrated optical transmission lines.

Key Points

  • Investigate the propagation characteristics and coupling efficiency of one-dimensional magnetic plasmons traveling across connected subwavelength split-ring resonators at infrared frequencies.
  • Developed an analytical theory to evaluate conduction-current-mediated coupling between directly connected resonators.
  • Performed three-dimensional finite-difference time-domain (FDTD) simulations to calculate wave attenuation and propagation velocity along the linear resonator chain.
  • Conduction-current exchange yielded significantly stronger inter-resonator coupling than conventional magneto-inductive interaction mechanisms.
  • Resonator chains achieved efficient infrared energy transfer with signal attenuation below 0.57 dB/µm and group velocities exceeding 0.25c.

Cite This Study

Liu et al. (2006) studied this question.

synapsesocial.com/papers/6a90dde7b24842dac47a6768https://doi.org/10.1103/physrevlett.97.243902
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