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2 - Theoretical foundations

Published online by Cambridge University Press:  05 November 2012

Lukas Novotny
Affiliation:
University of Rochester, New York and ETH Zürich, Switzerland
Bert Hecht
Affiliation:
Julius-Maximilians-Universität Würzburg, Germany
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Summary

Light embraces the most fascinating spectrum of electromagnetic radiation. This is mainly due to the fact that the energy of light quanta (photons) lies within the energy range of electronic transitions in matter. This gives us the beauty of color and is the reason why our eyes adapted to sense the optical spectrum.

Light is also fascinating because it manifests itself in the forms of waves and particles. In no other range of the electromagnetic spectrum are we more confronted with the wave-particle duality than in the optical regime. While long wavelength radiation (radiofrequencies, microwaves) is well described by wave theory, short wavelength radiation (X-rays) exhibits mostly particle properties. The two worlds meet in the optical regime.

To describe optical radiation in nano-optics it is mostly sufficient to adopt the wave picture. This allows us to use classical field theory based on Maxwell's equations. Of course, in nano-optics the systems with which the light fields interact are small (single molecules, quantum dots), which necessitates a quantum description of the material properties. Thus, in most cases we can use the framework of semiclassical theory, which combines the classical picture of fields and the quantum picture of matter. However, occasionally, we have to go beyond the semiclassical description. For example the photons emitted by a quantum system can obey non-classical photon statistics in the form of photon-antibunching (no two photons arriving simultaneously).

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Publisher: Cambridge University Press
Print publication year: 2012

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References

[1] J. D., Jackson, Classical Electrodynamics, 2nd edn. New York: Wiley (1975).Google Scholar
[2] J. A., Stratton, Electromagnetic Theory. New York: McGraw-Hill (1941).Google Scholar
[3] L., Mandel and E., Wolf, Optical Coherence and Quantum Optics. New York: Cambridge University Press (1995).Google Scholar
[4] M., Born and E., Wolf, Principles of Optics, 7th edn. New York: Cambridge University Press (1999).Google Scholar
[5] F. S. S., Rosa, D. A. R., Dalvit, and P. W., Milonni, “Electromagnetic energy, absorption, and Casimir forces: Uniform dielectric media in thermal equilibrium,” Phys. Rev.A 81, 033812 (2010);Google Scholar
Electromagnetic energy, absorption, and Casimir forces. II. Inhomogeneous dielectric media,” Phys. Rev.A 84, 053813 (2011).
[6] L. D., Landau, E. M., Lifshitz, and L. P., Pitaevskii, Electrodynamics of Continuous Media, 2nd edn. Amsterdam: Elsevier (1984).Google Scholar
[7] A. D., Yaghjian, “Electric dyadic Green's functions in the source region,” Proc. IEEE 68, 248–263 (1980).Google Scholar
[8] J. V., Bladel, “Some remarks on Green's dyadic for infinite space,” IRE Trans. Antennas Propag. 9, 563–566 (1961).Google Scholar
[9] C. T., Tai, Dyadic Green's Functions in Electromagnetic Theory, 2nd edn. New York: IEEE Press (1993).Google Scholar
[10] H. A., Lorentz, Versl. Gewone Vergad. Afd. Natuurkd. Koninkl. Ned. Akad. Wetenschap 4, 176–188 (1896);
H. A., Lorentz, “The theorem of Poynting concerning the energy in the electromagnetic field and two general propositions concerning the propagation of light,” in Collected Papers, vol. III. Den Haag: Martinus Nijhoff, pp. 1–11 (1936).Google Scholar
[11] R., Carminati, M., Nieto-Vesperinas, and J.-J., Greffet, “Reciprocity of evanescent electromagnetic waves,” J. Opt. Soc. Am.A 15, 706–712 (1998).Google Scholar
[12] E., Wolf and M., Nieto-Vesperinas, “Analyticity of the angular spectrum amplitude of scattered fields and some of its consequences,” J. Opt. Soc. Am.A 2, 886–889 (1985).Google Scholar
[13] S., Sund, J., Swanson, and D., Axelrod, “Cell membrane orientation visualized by polarized total internal reflection fluorescence,” Biophys. J. 77, 2266–2283 (1999).Google Scholar
[14] A., Meixner, M., Bopp, and G., Tarrach, “Direct measurement of standing evanescent waves with a photon scanning tunneling microscope,” Appl. Opt. 33, 7995–8000 (1994).Google Scholar
[15] D., Axelrod, N., Thompson, and T., Burghardt, “Total internal reflection fluorescent microscopy,” J. Microsc. 129, 19–28 (1983).Google Scholar
[16] H., Weyl, “Ausbreitung elektromagnetischer Wellen über einem ebenen Leiter,” Ann. Phys. 60, 481–500 (1919).Google Scholar

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  • Theoretical foundations
  • Lukas Novotny, Bert Hecht, Julius-Maximilians-Universität Würzburg, Germany
  • Book: Principles of Nano-Optics
  • Online publication: 05 November 2012
  • Chapter DOI: https://doi.org/10.1017/CBO9780511794193.004
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  • Theoretical foundations
  • Lukas Novotny, Bert Hecht, Julius-Maximilians-Universität Würzburg, Germany
  • Book: Principles of Nano-Optics
  • Online publication: 05 November 2012
  • Chapter DOI: https://doi.org/10.1017/CBO9780511794193.004
Available formats
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Save book to Google Drive

To save content items to your account, please confirm that you agree to abide by our usage policies. If this is the first time you use this feature, you will be asked to authorise Cambridge Core to connect with your account. Find out more about saving content to Google Drive.

  • Theoretical foundations
  • Lukas Novotny, Bert Hecht, Julius-Maximilians-Universität Würzburg, Germany
  • Book: Principles of Nano-Optics
  • Online publication: 05 November 2012
  • Chapter DOI: https://doi.org/10.1017/CBO9780511794193.004
Available formats
×