1. Honl, H., A. W. Maue, and K. Westpfahl, Diffraction Theory, Springer, 1961 (in German).
2. Noble, B., Methods Based on the Wiener-Hopf Technique for the Solution of Partial Differential Equations, Pergamon, 1958.
3. Weinstein, L. A., The Theory of Diffraction and the Factorization Method, Golem, 1969.
4. Ufimtsev, P. Ya., Theory of Edge Diffraction in Electromagnetics, Tech Science, 2003.
5. Hurd, R. A. and B. K. Sachdeva, "Scattering by a dielectric-loaded slit in a conducting plane," Radio Science, Vol. 10, No. 5, 565-572, 1975. Google Scholar
6. Nesterenko, M. V., V. A. Katrich, and Yu. M. Penkin, "Analytical methods in theory of slot-hole coupling of electrodynamics volumes," Progress In Electromagnetic Research, Vol. 70, 79-174, 2007. Google Scholar
7. Brooker, G., "Diffraction at a single ideally conducting slit," Journal of Modern Optics, Vol. 55, No. 3, 423-445, 2008. Google Scholar
8. Naveed, M., Q. A. Naqvi, and K. Hongo, "Diffraction of EM plane wave by a slit in an impedance plane using Maliuzhinets function," Progress In Electromagnetics Research B, Vol. 5, 265-273, 2008. Google Scholar
9. Tsalamengas, J. L., "Direct singular integral equation methods in scattering and propagation in strip- or slot-loaded structures," IEEE Trans. Antennas Propag., Vol. 46, No. 10, 1560-1570, 1998. Google Scholar
10. Li, J., "Rigorous method to solute the slit diffraction," Journal of Laser Applications, Vol. 26, 032006, 2014. Google Scholar
11. Mittra, R. and S. W. Lee, Analytical Techniques in the Theory of Guided Waves, Macmillan, 1971.
12. Kashyap, S. C. and M. A. Hamid, "Diffraction characteristics of a slit in a thick conducting screen," IEEE Trans. Antennas and Propag., Vol. 19, No. 4, 499-507, 1971. Google Scholar
13. Litvinenko, L. N., S. L. Prosvirnin, and V. P. Shestopalov, "Diffraction of a plane H-polarized electromagnetic wave by a slot in a conducting screen of finite thickness," Radiotechn. & Electron., Vol. 22, No. 3, 474-484, 1977 (in Russian). Google Scholar
14. Kim, J. H. and H. J. Eom, "Radiation from multiple annular slots on a circular cavity," Journal of Electromagnetic Waves and Applications, Vol. 21, No. 1, 47-56, 2007. Google Scholar
15. Garcia-Vidal, F. J., L. Martin-Moreno, T. W. Ebbesen, and L. Kuipers, "Light passing through subwavelength apertures," Reviews of Modern Physics, Vol. 82, No. 1, 729-787, 2010. Google Scholar
16. Serdyuk, V. M., "Exact solutions for electromagnetic wave diffraction by a slot and strip," Int. J. Electron. Commun. (AEU), Vol. 65, No. 3, 182-189, 2011. Google Scholar
17. Tikhonov, A. N. and V. Ya. Arsenin, Solutions of Ill-Posed Problems, Halsted Press, 1977.
18. Serdyuk, V. M., "Diffraction of a plane electromagnetic wave by a slot in a conducting screen of arbitrary thickness," Technical Physics, Vol. 50, No. 8, 1076-1083, 2005. Google Scholar
19. Rudnitsky, A. S. and V. M. Serdyuk, "Diffraction of a plane electromagnetic wave by a slot in a conducting screen of finite thickness placed in front of a half-infinite dielectric," Progress In Electromagnetics Research, Vol. 86, 277-290, 2008. Google Scholar
20. Born, M. and E. Wolf, Principles of Optics, 7th Ed., Cambridge University Press, 1999.
21. Chew, W. C., Waves and Fields in Inhomogeneous Media, IEEE Press, 1995.
22. Adams, M. J., An Introduction to Optical Waveguides, Wiley, 1981.
23. Chow, T. L., Mathematical Methods for Physicists: A Concise Introduction, Cambridge University Press, 2000.
24. Taflove, A. and S. Hagness, Computational Electrodynamics: The Finite-Difference Time-Domain Method, Artech House, 2000.
25. Wei, X., H. P. Urbach, and A. J. H. Wachters, "Finite element model for three-dimensional optical scattering problems," J. Opt. Soc. Am. A, Vol. 24, 866-881, 2007. Google Scholar
26. Yang, K. and K.-L. Wu, "Generalized partial-element equivalent-circuit analysis for planar circuits with slotted ground," IEEE Trans. Microwave Theory Techn., Vol. 57, No. 7, 1734-1742, 2009. Google Scholar
27. Hewett, D., N. Chandler-Wilde, and S. Langdon, "A frequency-independent boundary element method for scattering by two-dimensional screens and apertures," Journal of Numerical Analysis, Vol. 35, No. 4, 1698-1728, 2015. Google Scholar
28. Nosich, A. I., "Radiation condition, limiting absorption principle, and relations in open waveguide scattering," Journal of Electromagnetic Waves and Applications, Vol. 8, No. 3, 329-353, 1994. Google Scholar
29. Davis, P. J. and P. Rabinowitz, Methods of Numerical Integration, Academic Press, 1992.
30. Amari, S. and J. Bornemann, "Efficient numerical computation of singular integrals with applications to electromagnetics," IEEE Trans. Antennas and Propag., Vol. 43, No. 11, 1343-1348, 1995. Google Scholar
31. Serdyuk, V. M. and J. A. Titovitsky, "A rigorous theoretical model of guided waves excitation in a plane dielectric layer under electromagnetic diffraction by a conducting strip," Optics and Laser Technology, Vol. 58, 43-51, 2014. Google Scholar
32. Betzig, E., A. Harootunian, A. Lewis, and M. Isaacson, "Near-field diffraction by a slit: Implications for superresolution microscopy," Applied Optics, Vol. 25, No. 12, 1857-2024, 1986. Google Scholar
33. Park, Q.-H., "Optical antennas and plasmonics," Contemporary Physics, Vol. 50, No. 2, 407-423, 2009. Google Scholar
34. Sukhija, S. and R. K. Sarin, "A U-shaped meandered slot antenna for biomedical applications," Progress In Electromagnetics Research B, Vol. 62, 65-77, 2017. Google Scholar
35. Shrivastava, P. and T. Rama Rao, "Investigations of SAR distributions and temperature elevation on human body at 60GHz with corrugated antipodal linear tapered slot antenna," Progress In Electromagnetics Research M, Vol. 59, 111-121, 2017. Google Scholar
36. Muhammad, O. A., Y. Sabry, M. Sadek, I. Nassar, and D. Khalil, "Transmission-enabled fiber Fabry-Perot cavity based on a deeply etched slotted micromirror," Applied Optics, Vol. 57, No. 16, 4610-4617, 2018. Google Scholar
37. Kantorovich, L. V. and V. I. Krylov, Approximate Methods of Higher Analysis, Wiley, 1964.