Limits on the amplification of evanescent waves of left-handed materials
arXiv:cond-mat/0504349 · doi:10.1364/JOSAB.23.000485
Abstract
We investigate the transfer function of the discretized perfect lens in finite-difference time-domain (FDTD) and transfer matrix (TMM) simulations; the latter allow to eliminate the problems associated with the explicit time dependence in FDTD simulations. We argue that the peak observed in the FDTD transfer function near the maximum parallel momentum is due to finite time artifacts. We also find the finite discretization mesh acts like imaginary deviations from and leads to a cross-over in the transfer function from constance to exponential decay around limiting the attainable super-resolution. We propose a simple qualitative model to describe the impact of the discretization. is found to depend logarithmically on the mesh constant in qualitative agreement with the TMM simulations.
4 pages, 3 figures
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- Dual-band, double-negative, polarization-independent metamaterial for the visible spectrum
- Bringing the 'perfect lens' into focus by near-perfect compensation of losses without gain media
- On Negative Index Metamaterial Spacers and Their Unusual Optical Properties