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Topology Visualization of the Optical Power Flow through a Novel C-Shaped Nano-Aperture

Published: 10 October 2004 Publication History

Abstract

We recently discovered that C-shaped sub-wavelength (nano) metallic apertures when irradiated at specific resonance frequencies have extraordinary power transmission five to six orders of magnitude beyond what is observed for conventional round or square apertures. These apertures produce optical spot sizes as small as 25-50 nm using visible light in the near-field of the aperture with a brightness 10-100 times higher than that of the illuminating beam. A proper understanding into this remarkable phenomenon can aid in the development and understanding of a multitude of applications of these apertures including dense data storage, particle manipulation, and nano-scale photonic devices. Current scalar visualization approaches typically are insufficient to significantly aid in the understanding of these complex near-field optical problems. For example, two common approaches involving either visualization of scalar electromagnetic wave amplitudes in 2-D or rudimentary arrow plots of the vector fields produced in Finite-Difference-Time- Domain simulations are clearly inadequate. Both techniques provide only partial insight into the problem, as only specific planes can be visualized and therefore the global structure of the fields cannot be readily inferred. Understanding of the three-dimensional electromagnetic vector fields and energy flows related to the illumination of nano-sized apertures is critically important in near-field applications, as simple scalar analysis is not suitable at these small dimensions [8]. An ideal visualization tool that has not been used before in studying the optical behavior of near-field apertures is three-dimensional vector field topology. The global view of the vector field structure is deduced by locating singularities (critical points) within the field and augmenting these points with nearby streamlines. We have used for the first time, to the best of our knowledge, three-dimensional topology to analyze the topological differences between a resonant C-shaped nano-aperture and various non-resonant conventional apertures. The topological differences between these apertures are related to the superiority in power throughput of the C-aperture versus conventional round and square sub-wavelength apertures. We demonstrate how topological visualization techniques provide significant insight into the energy enhancement mechanism of the C aperture, and also shed light on critical issues related to the interaction between multiple apertures located in close proximity to each other, which gives rise to cross-talk, for example as a function of distance. Topological techniques allow us to develop design rules for the geometry of these apertures and their desired spot sizes and brightness. The performance of various sub-wavelength apertures can also be compared quantitatively based on their topology. Since topological methods are generically applicable to tensor and vector fields, our approach can be readily extended to provide insight into the broader category of Finite-Difference-Time-Domain nano-photonics and nano-science problems.

References

[1]
{1} Rajesh Batra and Yingmei Lavin and Lambertus Hesselink, Topology Based Comparison Technique for Vector Fields Using Earth Mover's Distance, Scientific Computing in Chemical Engineering II, Vol. 1, p 181-195, (Springer Verlag May 1998), International Workshop at Technical University Hamburg-Harburg at Hamburg, Germany. Invited paper.
[2]
{2} Rajesh Batra and Lambertus Hesselink, Feature Comparisons Of 3- D Vector Fields Using Earth Mover's Distance, Proc. IEEE Visualization '99, p 105-114, (IEEE Computer Society Press, Los Alamitos, CA 1999).
[3]
{3} William E. Boyce and Richard C. DiPrima, Elemetrary Differential Equations and Boundary Value Problems, 4th. Ed., (John Wiley & Sons, 1986).
[4]
{4} M. S. Chong and A. E. Perry and B. J. Cantwell, A general classification of three-dimensional flow fields, Physics of Fluids A, Vol 2, No. 5, p 765-777, (1990).
[5]
{5} Hagness et al. J. Lightwave Technology, pp. 2154-2165, (1997).
[6]
{6} J. Helman; L. Hesselink, Representation And Display of Vector Field Topology In Fluid Flow Data Sets, IEEE Computers; special issue on Visualization and Scientific Data, Vol. 22, p 27-36, No. 8, (August 1989).
[7]
{7} J. Helman, L. Hesselink, Visualizing Vector Field Topology in Fluid Flows, IEEE Computer Graphics and Applications, Vol. 11, No. 3, p 36-46., (May 1991).
[8]
{8} John D. Jackson, Classical Electrodynamics 3rd Ed. (John Wiley & Sons, Inc), Chapter 10.5. (1998)
[9]
{9} Yingmei Lavin, Topology based methods for vector field comparisons, Stanford University (2000).
[10]
{10} H.K. Moffatt The Topological (as opposed to the analytical) approach to fluid and plasma flow problems, Topological Fluid Mechanics, Proceedings of the IUTAM Symposium, (August 1989).
[11]
{11} O. Painter et al., Science, pp. 1819-1821, (June 11, 1999).
[12]
{12} A.E. Perry and B.D. Fairlie Critical Points in Flow Patterns,
[13]
{13} John W. Reyn, Classification and Description of the Singular Points of a System of Three Linear Differential Equations, Zeitschrift für angewandte Mathematik und Physik (ZAMP), Vol. 15, p 540-557 (July 1964).
[14]
{14} Laurent Salomon et al. Near-field Distribution of Optical Transmission of Periodic Subwavelength Holes in a Metal Film, Physical Review Letters, Vol. 86, No. 6, (February 2001)
[15]
{15} Xiaolei Shi, Robert Thornton, Lambertus Hesselink, A Nanoaperture with 1000x Power Throughput Enhancement for Very Small Aperture Laser system (VSAL), Proc. of SPIE, Vol. 4342, p 320, (2001).
[16]
{16} Xiaolei Shi, Lambertus Hesselink, Design of a C aperture to achieve ¿/10 resolution and resonant transmission, Journal of Optical Society of America, Vol 21 N. 7, p 1305 (July 2004).
[17]
{17} Xiaolei Shi, Resonant optical transmission through a single sub-wavelength aperture for near field applications, Ph.D dissertation, Stanford University, (2003).
[18]
{18} Scheuermann, Hamann, joy, Kollmann. Visulizing Local Vector Field Topology. SPIE Journal of Electronic Imaging, Vol 9, No. 4, p 356-367, (October, 2000)
[19]
{19} A. Taflove, S.C. Hagness, Computational Electrodynamics the finite-different-time-domain method, 2nd Ed. (Artech House 2000).
[20]
{20} R. Wannemacher, Plasmon-supported transmission of light through nanometric holes in metallic thin films, Optics Communications, (August 2001)

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cover image ACM Conferences
VIS '04: Proceedings of the conference on Visualization '04
October 2004
667 pages
ISBN:0780387880

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IEEE Computer Society

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Published: 10 October 2004

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  1. C-aperture
  2. Finite-Difference-Time-Domain (fdtd)
  3. energy flow topology
  4. vector field visualization

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