Models of near-field spectroscopic studies: comparison between Finite-Element and Finite-Difference methods
Optics Express, Vol. 13, Issue 21, pp. 8483-8497 (2005)
http://dx.doi.org/10.1364/OPEX.13.008483
Acrobat PDF (544 KB)
Abstract
We compare the numerical results obtained by the Finite Element Method (FEM) and the Finite Difference Time Domain Method (FDTD) for near-field spectroscopic studies and intensity map computations. We evaluate their respective efficiencies and we show that an accurate description of the dispersion and of the geometry of the material must be included for a realistic modeling. In particular for the nano-objects, we show that a grid size around Δρa ≈ 4πa/λ (expressed in λ units) as well as a Drude-Lorentz’ model of dispersion for FDTD should be used in order to describe more accurately the confinement of the light around the nanostructures (i.e. the high gradients of the electromagnetic field) and to assure the convergence to the physical solution.
© 2005 Optical Society of America
1. Introduction
D. Barchiesi , C. Girard , O.J.F. Martin , D. Van Labeke , and D. Courjon , “ Computing the optical near-field distributions around complex subwavelength surface structures: A comparative study of different methods ,” Phys. Rev. E 54 , 4285 – 4292 ( 1996 ). [CrossRef]
B. Guizal , D. Barchiesi , and D. Felbacq , “ Electromagnetic beam diffraction by a finite lamellar structure ,” J. Opt. Soc. Am. A 20 , 2274 – 2280 ( 2003 ). [CrossRef]
W.A. Challener , I.K. Sendur , and C. Peng , “ Scattered field formulation of finite difference time domain for a focused light beam in dense media with lossy material ,” Opt. Express 11 , 3160 – 3170 ( 2003 ), http://www.opticsexpress.org/abstract.cfm?URI=OPEX-11-23-3160 [CrossRef] [PubMed]
R. Fikri , D. Barchiesi , F. H’Dhili , R. Bachelot , A. Vial , and P. Royer , “ Modeling recent experiments of aperture-less near-field optical microscopy using 2D finite element method ,” Opt. Commun. 221 , 13 – 22 ( 2003 ). [CrossRef]
R. Fikri , T. Grosges , and D. Barchiesi , “ Apertureless scanning near-field optical microscopy : On the need of the tip vibration modelling ,” Opt. Lett. 28 , 2147 – 2149 ( 2003 ). [CrossRef] [PubMed]
R. Fikri , T. Grosges , and D. Barchiesi , “ Apertureless scanning near-field optical microscopy: Numerical modeling of the lock-in detection ,” Opt. Commun. 232 , 15 – 23 ( 2004 ). [CrossRef]
A. Vial , A.S. Grimault , D. Macías , D. Barchiesi , and M. Lamy de la Chapelle , “ Improved analytical fit of gold dispersion: application to the modelling of extinction spectra with the FDTD method ,” Phys. Rev. B 71 , 085416 – 085422 ( 2005 ). [CrossRef]
W.A. Challener , I.K. Sendur , and C. Peng , “ Scattered field formulation of finite difference time domain for a focused light beam in dense media with lossy material ,” Opt. Express 11 , 3160 – 3170 ( 2003 ), http://www.opticsexpress.org/abstract.cfm?URI=OPEX-11-23-3160 [CrossRef] [PubMed]
2. The methods
2.1. Analytical model: Mie’s theory
G. Mie , “ Beiträge zur Optik trìber Medien, speziell kolloidaler Metallösungen ,” Ann. Phys. 25 , 377 – 445 ( 1908 ). [CrossRef]
C. Gréhan , G. Gouesbet , and F. Guilloteau , “ Comparison of the diffraction theory and the generalized lorenz-mie theory for a sphere arbitrarily located into a laser beam ,” Opt. Commun. 90 , 1 – 6 ( 1992 ). [CrossRef]
H. Du , “ Mie-scattering calculation ,” Appl. Opt. 43 , 1951 – 1956 ( 2004 ). [CrossRef] [PubMed]
H. Xu , “ Calculation of the near field of aggregates of arbitrary spheres ,” J. Opt. Soc. Am. A 21 , 804 – 809 ( 2004 ). [CrossRef]
2.2. The Finite-Element Method
R. Fikri , T. Grosges , and D. Barchiesi , “ Apertureless scanning near-field optical microscopy : On the need of the tip vibration modelling ,” Opt. Lett. 28 , 2147 – 2149 ( 2003 ). [CrossRef] [PubMed]
R. Fikri , T. Grosges , and D. Barchiesi , “ Apertureless scanning near-field optical microscopy: Numerical modeling of the lock-in detection ,” Opt. Commun. 232 , 15 – 23 ( 2004 ). [CrossRef]
2.3. The Finite-Difference Time-Domain method
W.A. Challener , I.K. Sendur , and C. Peng , “ Scattered field formulation of finite difference time domain for a focused light beam in dense media with lossy material ,” Opt. Express 11 , 3160 – 3170 ( 2003 ), http://www.opticsexpress.org/abstract.cfm?URI=OPEX-11-23-3160 [CrossRef] [PubMed]
W.M. Saj , “ FDTD simulations of 2D plasmon waveguide on silver nanorods in hexagonal lattice ,” Opt. Express 13 , 4818 – 4827 ( 2005 ), http://www.opticsexpress.org/abstract.cfm?URI=OPEX-13-13-4818 [CrossRef] [PubMed]
M.C. Beard and C.A. Schmuttenmaer , “ Using the finite-difference time-domain pulse propagation method to simulate time-resolved the experiments ,” J. Chem. Phys. 114 , 2903 – 2909 ( 2001 ). [CrossRef]
A. Vial , A.S. Grimault , D. Macías , D. Barchiesi , and M. Lamy de la Chapelle , “ Improved analytical fit of gold dispersion: application to the modelling of extinction spectra with the FDTD method ,” Phys. Rev. B 71 , 085416 – 085422 ( 2005 ). [CrossRef]
M.C. Beard and C.A. Schmuttenmaer , “ Using the finite-difference time-domain pulse propagation method to simulate time-resolved the experiments ,” J. Chem. Phys. 114 , 2903 – 2909 ( 2001 ). [CrossRef]
F.L. Teixeira , W.C. Chew , M. Straka , M.L. Oristaglio , and T. Wang , “ Finite-difference time-domain simulation of ground penetrating radar on dispersive, inhomogeneous, and conductive soils ,” IEEE Trans. Geosci. Remote Sens. 36 , 1928 – 1937 ( 1998 ). [CrossRef]
S.K. Gray and T. Kupka , “ Propagation of light in metallic nanowire arrays: Finite-difference time-domain studies of silver cylinders ,” Phys. Rev. B 68 , 045415 – 045425 ( 2003 ). [CrossRef]
M. Futamata , Y. Maruyama , and M. Ishikawa , “ Local electric field and scattering cross section of Ag nanoparticles under surface plasmon resonance by finite difference time domain method ,” J. Phys. Chem. B 107 , 7607 – 7617 ( 2003 ). [CrossRef]
J.T. Krug II , E.J. Sanchez , and X.S. Xie , “ Design of near-field optical probes with optimal field enhancement by finite difference time domain electromagnetic simulation ,” J. Chem. Phys. 116 , 10895 – 10901 ( 2002 ). [CrossRef]
N. Félidj , J. Aubard , G. Lévi , J.R. Krenn , M. Salerno , G. Schider , B. Lamprecht , A. Leitner , and F.R. Aussenegg , “ Controlling the optical response of regular arrays of gold particles for surface-enhanced Raman scattering ,” Phys. Rev. B 65 , 075419 – 075427 ( 2002 ). [CrossRef]
J. Grand , S. Kostcheev , J.L. Bijeon , M. Lamy de la Chapelle , P.M. Adam , A. Rumyantseva , G. Lérondel , and P. Royer , “ Optimization of SERS-active substrates for near-field raman spectroscopy ,” Syn. Metals 139 , 621 – 624 ( 2003 ). [CrossRef]
A. Vial , A.S. Grimault , D. Macías , D. Barchiesi , and M. Lamy de la Chapelle , “ Improved analytical fit of gold dispersion: application to the modelling of extinction spectra with the FDTD method ,” Phys. Rev. B 71 , 085416 – 085422 ( 2005 ). [CrossRef]
H. Du , “ Mie-scattering calculation ,” Appl. Opt. 43 , 1951 – 1956 ( 2004 ). [CrossRef] [PubMed]
T.O. Körner and W. Fichtner , “ Auxiliary differential equation: efficient implementation in the finite-difference time-domain method ,” Opt. Lett. 22 , 1586 – 1588 ( 1997 ). [CrossRef]
A. Vial , A.S. Grimault , D. Macías , D. Barchiesi , and M. Lamy de la Chapelle , “ Improved analytical fit of gold dispersion: application to the modelling of extinction spectra with the FDTD method ,” Phys. Rev. B 71 , 085416 – 085422 ( 2005 ). [CrossRef]
3. Comparison of the methods
T. Laroche , F.I. Baida , and D. Van Labeke , “ Three-dimensional time-difference time-domain study of enhanced second harmonic generation at the end of a apertureless scanning near-field optical microscope metal tip ,” J. Opt. Soc. Am. B 22 , 1045 – 1051 ( 2005 ). [CrossRef]
3.1. Case of the circular cylinder
A. Vial , A.S. Grimault , D. Macías , D. Barchiesi , and M. Lamy de la Chapelle , “ Improved analytical fit of gold dispersion: application to the modelling of extinction spectra with the FDTD method ,” Phys. Rev. B 71 , 085416 – 085422 ( 2005 ). [CrossRef]
S. Dey and R. Mittra , “ A conformal finite-difference time-domain technique for modeling cylindrical dielectric resonators ,” IEEE Trans. Microwave Theory Tech. 47 , 1737 – 1739 ( 1999 ). [CrossRef]
W.H. Yu and R. Mittra , “ A conformal finite difference time domain technique for modeling curved dielectric surfaces ,” IEEE Microw. Wirel. Compon. Lett. 11 , 25 – 27 ( 2001 ). [CrossRef]
C. Ropers , D.J. Park , G. Stibenz , G. Steinmeyer , J. Kim , D.S. Kim , and C. Lienau , “ Femtosecond Light Transmission and Subradiant Damping in Plasmonic Crystals ,” Phys. Rev. Lett. 94 , 113901 –4 ( 2005 ). [CrossRef] [PubMed]
T.A. Davis and I.S. Duff , “ A combined unifrontal multifrontal method for unsymmetric sparse matrices ,” ACM T. Math Software 25 , 1 – 20 ( 1999 ). [CrossRef]
3.2. Case of the gold nano-square
4. Conclusion
References and links
D. Barchiesi , C. Girard , O.J.F. Martin , D. Van Labeke , and D. Courjon , “ Computing the optical near-field distributions around complex subwavelength surface structures: A comparative study of different methods ,” Phys. Rev. E 54 , 4285 – 4292 ( 1996 ). [CrossRef] | |
B. Guizal , D. Barchiesi , and D. Felbacq , “ Electromagnetic beam diffraction by a finite lamellar structure ,” J. Opt. Soc. Am. A 20 , 2274 – 2280 ( 2003 ). [CrossRef] | |
A. Taflove and S.C. Hagness , Computational Electrodynamics: The Finite-Difference Time-Domain Method ( Artech House, Norwood , 2000 ). | |
W.A. Challener , I.K. Sendur , and C. Peng , “ Scattered field formulation of finite difference time domain for a focused light beam in dense media with lossy material ,” Opt. Express 11 , 3160 – 3170 ( 2003 ), http://www.opticsexpress.org/abstract.cfm?URI=OPEX-11-23-3160 [CrossRef] [PubMed] | |
R. Fikri , D. Barchiesi , F. H’Dhili , R. Bachelot , A. Vial , and P. Royer , “ Modeling recent experiments of aperture-less near-field optical microscopy using 2D finite element method ,” Opt. Commun. 221 , 13 – 22 ( 2003 ). [CrossRef] | |
R. Fikri , T. Grosges , and D. Barchiesi , “ Apertureless scanning near-field optical microscopy : On the need of the tip vibration modelling ,” Opt. Lett. 28 , 2147 – 2149 ( 2003 ). [CrossRef] [PubMed] | |
R. Fikri , T. Grosges , and D. Barchiesi , “ Apertureless scanning near-field optical microscopy: Numerical modeling of the lock-in detection ,” Opt. Commun. 232 , 15 – 23 ( 2004 ). [CrossRef] | |
A. Vial , A.S. Grimault , D. Macías , D. Barchiesi , and M. Lamy de la Chapelle , “ Improved analytical fit of gold dispersion: application to the modelling of extinction spectra with the FDTD method ,” Phys. Rev. B 71 , 085416 – 085422 ( 2005 ). [CrossRef] | |
G. Mie , “ Beiträge zur Optik trìber Medien, speziell kolloidaler Metallösungen ,” Ann. Phys. 25 , 377 – 445 ( 1908 ). [CrossRef] | |
C. Gréhan , G. Gouesbet , and F. Guilloteau , “ Comparison of the diffraction theory and the generalized lorenz-mie theory for a sphere arbitrarily located into a laser beam ,” Opt. Commun. 90 , 1 – 6 ( 1992 ). [CrossRef] | |
H. Du , “ Mie-scattering calculation ,” Appl. Opt. 43 , 1951 – 1956 ( 2004 ). [CrossRef] [PubMed] | |
H. Xu , “ Calculation of the near field of aggregates of arbitrary spheres ,” J. Opt. Soc. Am. A 21 , 804 – 809 ( 2004 ). [CrossRef] | |
C.F. Bohren and D.R. Huffman , Absorption and scattering of light by small particles ( John Wiley and Sons, New York , 1983 ). | |
M. Born and E. Wolf , Principle of Optics ( Pergamon Press, Oxford , 1993 ). | |
J. Jin , The Finite Element Method in Electromagnetics ( John Wiley and Sons, New York , 1993 ). | |
K.S. Yee , “ Numerical solution of initial boundary value problems involving Maxwell’s equations in isotropic media ,” IEEE Trans. Antennas Propag. 16 , 302 – 307 ( 1966 ). | |
K. Kunz and R. Luebbers , The Finite Difference Time Domain Method for Electromagnetics ( CRC Press , 1993 ). | |
A. Taflove , Advances in Computational Electrodynamics, the Finite-Difference Time-Domain Method ( Artech House, Norwood , 1998 ). | |
W.M. Saj , “ FDTD simulations of 2D plasmon waveguide on silver nanorods in hexagonal lattice ,” Opt. Express 13 , 4818 – 4827 ( 2005 ), http://www.opticsexpress.org/abstract.cfm?URI=OPEX-13-13-4818 [CrossRef] [PubMed] | |
M.C. Beard and C.A. Schmuttenmaer , “ Using the finite-difference time-domain pulse propagation method to simulate time-resolved the experiments ,” J. Chem. Phys. 114 , 2903 – 2909 ( 2001 ). [CrossRef] | |
F.L. Teixeira , W.C. Chew , M. Straka , M.L. Oristaglio , and T. Wang , “ Finite-difference time-domain simulation of ground penetrating radar on dispersive, inhomogeneous, and conductive soils ,” IEEE Trans. Geosci. Remote Sens. 36 , 1928 – 1937 ( 1998 ). [CrossRef] | |
S.K. Gray and T. Kupka , “ Propagation of light in metallic nanowire arrays: Finite-difference time-domain studies of silver cylinders ,” Phys. Rev. B 68 , 045415 – 045425 ( 2003 ). [CrossRef] | |
M. Futamata , Y. Maruyama , and M. Ishikawa , “ Local electric field and scattering cross section of Ag nanoparticles under surface plasmon resonance by finite difference time domain method ,” J. Phys. Chem. B 107 , 7607 – 7617 ( 2003 ). [CrossRef] | |
J.T. Krug II , E.J. Sanchez , and X.S. Xie , “ Design of near-field optical probes with optimal field enhancement by finite difference time domain electromagnetic simulation ,” J. Chem. Phys. 116 , 10895 – 10901 ( 2002 ). [CrossRef] | |
N. Félidj , J. Aubard , G. Lévi , J.R. Krenn , M. Salerno , G. Schider , B. Lamprecht , A. Leitner , and F.R. Aussenegg , “ Controlling the optical response of regular arrays of gold particles for surface-enhanced Raman scattering ,” Phys. Rev. B 65 , 075419 – 075427 ( 2002 ). [CrossRef] | |
J. Grand , S. Kostcheev , J.L. Bijeon , M. Lamy de la Chapelle , P.M. Adam , A. Rumyantseva , G. Lérondel , and P. Royer , “ Optimization of SERS-active substrates for near-field raman spectroscopy ,” Syn. Metals 139 , 621 – 624 ( 2003 ). [CrossRef] | |
T.O. Körner and W. Fichtner , “ Auxiliary differential equation: efficient implementation in the finite-difference time-domain method ,” Opt. Lett. 22 , 1586 – 1588 ( 1997 ). [CrossRef] | |
P. Johnson and R. Christy , “ Optical constants of the noble metals ,” Phys. Rev. 6 , 4370 – 4379 ( 1972 ). | |
T. Laroche , F.I. Baida , and D. Van Labeke , “ Three-dimensional time-difference time-domain study of enhanced second harmonic generation at the end of a apertureless scanning near-field optical microscope metal tip ,” J. Opt. Soc. Am. B 22 , 1045 – 1051 ( 2005 ). [CrossRef] | |
S. Dey and R. Mittra , “ A conformal finite-difference time-domain technique for modeling cylindrical dielectric resonators ,” IEEE Trans. Microwave Theory Tech. 47 , 1737 – 1739 ( 1999 ). [CrossRef] | |
W.H. Yu and R. Mittra , “ A conformal finite difference time domain technique for modeling curved dielectric surfaces ,” IEEE Microw. Wirel. Compon. Lett. 11 , 25 – 27 ( 2001 ). [CrossRef] | |
C. Ropers , D.J. Park , G. Stibenz , G. Steinmeyer , J. Kim , D.S. Kim , and C. Lienau , “ Femtosecond Light Transmission and Subradiant Damping in Plasmonic Crystals ,” Phys. Rev. Lett. 94 , 113901 –4 ( 2005 ). [CrossRef] [PubMed] | |
T.A. Davis and I.S. Duff , “ A combined unifrontal multifrontal method for unsymmetric sparse matrices ,” ACM T. Math Software 25 , 1 – 20 ( 1999 ). [CrossRef] |
OCIS Codes
(000.4430) General : Numerical approximation and analysis
(050.1960) Diffraction and gratings : Diffraction theory
(260.2110) Physical optics : Electromagnetic optics
(290.4020) Scattering : Mie theory
ToC Category:
Research Papers
History
Original Manuscript: September 28, 2005
Revised Manuscript: October 3, 2005
Published: October 17, 2005
Citation
Thomas Grosges, Alexandre Vial, and Dominique Barchiesi, "Models of near-field spectroscopic studies: comparison between Finite-Element and Finite-Difference methods," Opt. Express 13, 8483-8497 (2005)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-13-21-8483
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References
- D. Barchiesi, C. Girard, O.J.F. Martin, D. Van Labeke, and D. Courjon, �??Computing the optical near-field distributions around complex subwavelength surface structures: A comparative study of different methods,�?? Phys. Rev. E 54, 4285-4292 (1996). [CrossRef]
- B. Guizal, D. Barchiesi, and D. Felbacq, �??Electromagnetic beam diffraction by a finite lamellar structure,�?? J. Opt. Soc. Am. A 20, 2274-2280 (2003). [CrossRef]
- A. Taflove, and S.C. Hagness, Computational Electrodynamics: The Finite-Difference Time-Domain Method (Artech House, Norwood, 2000).
- W.A. Challener, I.K. Sendur, and C. Peng, �??Scattered field formulation of finite difference time domain for a focused light beam in dense media with lossy material,�?? Opt. Express 11, 3160-3170 (2003), <a href="http://www.opticsexpress.org/abstract.cfm?URI=OPEX-11-23-3160">http://www.opticsexpress.org/abstract.cfm?URI=OPEX-11-23-3160</a> [CrossRef] [PubMed]
- R. Fikri, D. Barchiesi, F. H�??Dhili, R. Bachelot, A. Vial, and P. Royer, �??Modeling recent experiments of apertureless near-field optical microscopy using 2D finite element method,�?? Opt. Commun. 221, 13-22 (2003). [CrossRef]
- R. Fikri, T. Grosges, and D. Barchiesi, �??Apertureless scanning near-field optical microscopy : On the need of the tip vibration modelling,�?? Opt. Lett. 28, 2147-2149 (2003). [CrossRef] [PubMed]
- R. Fikri, T. Grosges, and D. Barchiesi, �??Apertureless scanning near-field optical microscopy: Numerical modeling of the lock-in detection,�?? Opt. Commun. 232, 15-23 (2004). [CrossRef]
- A. Vial, A.S. Grimault, D. Mac´ýas, D. Barchiesi, and M. Lamy de la Chapelle, �??Improved analytical fit of gold dispersion: application to the modelling of extinction spectra with the FDTD method,�?? Phys. Rev. B 71, 085416- 085422 (2005). [CrossRef]
- G. Mie, �??Beitr¨age zur Optik tr¨uber Medien, speziell kolloidaler Metall¨osungen,�?? Ann. Phys. 25, 377-445 (1908). [CrossRef]
- C. Gr´ehan, G. Gouesbet, and F. Guilloteau, �??Comparison of the diffraction theory and the generalized lorenz-mie theory for a sphere arbitrarily located into a laser beam,�?? Opt. Commun. 90, 1-6 (1992). [CrossRef]
- H. Du, �??Mie-scattering calculation,�?? Appl. Opt. 43, 1951-1956 (2004). [CrossRef] [PubMed]
- H. Xu, �??Calculation of the near field of aggregates of arbitrary spheres,�?? J. Opt. Soc. Am. A 21, 804-809 (2004). [CrossRef]
- C.F. Bohren, and D.R. Huffman, Absorption and scattering of light by small particles (John Wiley and Sons, New York, 1983).
- M. Born, and E.Wolf, Principle of Optics (Pergamon Press, Oxford, 1993).
- J. Jin, The Finite Element Method in Electromagnetics (John Wiley and Sons, New York, 1993).
- K.S. Yee, �??Numerical solution of initial boundary value problems involving Maxwell�??s equations in isotropic media,�?? IEEE Trans. Antennas Propag. 16, 302-307 (1966).
- K. Kunz, and R. Luebbers, The Finite Difference Time Domain Method for Electromagnetics (CRC Press, 1993).
- A. Taflove, Advances in Computational Electrodynamics, the Finite-Difference Time-Domain Method (Artech House, Norwood, 1998).
- W.M. Saj, �??FDTD simulations of 2D plasmon waveguide on silver nanorods in hexagonal lattice,�?? Opt. Express 13, 4818-4827 (2005), <a href="http://www.opticsexpress.org/abstract.cfm?URI=OPEX-13-13-4818">http://www.opticsexpress.org/abstract.cfm?URI=OPEX-13-13-4818</a> [CrossRef] [PubMed]
- M.C. Beard, and C.A. Schmuttenmaer, �??Using the finite-difference time-domain pulse propagation method to simulate time-resolved the experiments,�?? J. Chem. Phys. 114, 2903-2909 (2001). [CrossRef]
- F.L. Teixeira, W.C. Chew, M. Straka, M.L. Oristaglio, and T. Wang, �??Finite-difference time-domain simulation of ground penetrating radar on dispersive, inhomogeneous, and conductive soils,�?? IEEE Trans. Geosci. Remote Sens. 36, 1928-1937 (1998). [CrossRef]
- S.K. Gray, and T. Kupka, �??Propagation of light in metallic nanowire arrays: Finite-difference time-domain studies of silver cylinders,�?? Phys. Rev. B 68, 045415-045425 (2003). [CrossRef]
- M. Futamata, Y. Maruyama, and M. Ishikawa, �??Local electric field and scattering cross section of Ag nanoparticles under surface plasmon resonance by finite difference time domain method,�?? J. Phys. Chem. B 107, 7607- 7617 (2003). [CrossRef]
- J.T. Krug II, E.J. Sanchez, and X.S. Xie, �??Design of near-field optical probes with optimal field enhancement by finite difference time domain electromagnetic simulation,�?? J. Chem. Phys. 116, 10895-10901 (2002). [CrossRef]
- N. F´elidj, J. Aubard, G. L´evi, J.R. Krenn, M. Salerno, G. Schider, B. Lamprecht, A. Leitner, and F.R. Aussenegg, �??Controlling the optical response of regular arrays of gold particles for surface-enhanced Raman scattering,�?? Phys. Rev. B 65, 075419-075427 (2002). [CrossRef]
- J. Grand, S. Kostcheev, J.L. Bijeon, M. Lamy de la Chapelle, P.M. Adam, A. Rumyantseva, G. L´erondel, and P. Royer, �??Optimization of SERS-active substrates for near-field raman spectroscopy,�?? Syn. Metals 139, 621-624 (2003). [CrossRef]
- T.O. K¨orner, and W. Fichtner, �??Auxiliary differential equation: efficient implementation in the finite-difference time-domain method,�?? Opt. Lett. 22, 1586-1588 (1997). [CrossRef]
- P. Johnson and R. Christy, �??Optical constants of the noble metals,�?? Phys. Rev. 6, 4370-4379 (1972).
- T. Laroche, F.I. Baida and D. Van Labeke, �??Three-dimensional time-difference time-domain study of enhanced second harmonic generation at the end of a apertureless scanning near-field optical microscope metal tip,�?? J. Opt. Soc. Am. B 22, 1045-1051 (2005). [CrossRef]
- S. Dey, and R. Mittra, �??A conformal finite-difference time-domain technique for modeling cylindrical dielectric resonators,�?? IEEE Trans. Microwave Theory Tech. 47, 1737-1739 (1999). [CrossRef]
- W.H. Yu, and R. Mittra, �??A conformal finite difference time domain technique for modeling curved dielectric surfaces,�?? IEEE Microw. Wirel. Compon. Lett. 11, 25-27 (2001). [CrossRef]
- C. Ropers, D.J. Park, G. Stibenz, G. Steinmeyer, J. Kim, D.S. Kim, and C. Lienau, �??Femtosecond Light Transmission and Subradiant Damping in Plasmonic Crystals,�?? Phys. Rev. Lett. 94, 113901-4 (2005). [CrossRef] [PubMed]
- T.A. Davis and I.S. Duff, �??A combined unifrontal multifrontal method for unsymmetric sparse matrices,�?? ACM T. Math Software 25, 1-20 (1999). [CrossRef]
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