Файл: Doicu A., Wriedt T., Eremin Y.A. Light scattering by systems of particles (OS 124, Springer, 2006.pdf

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312References

181.T.A. Nieminen, H. Rubinsztein-Dunlop, N.R. Heckenberg, Calculation of the T -matrix: General considerations and application of the point-matching method, J. Quant. Spectrosc. Radiat. Transfer 79–80, 1019 (2003)

182.L.E. Paramonov, T -matrix approach and the angular momentum theory in light scattering problems by ensembles of arbitrarily shaped particles, J. Opt. Soc. Am. A 12, 2698 (1995)

183.A. Pasko, Function representation and HyperFun project, in Proceedings of the 17th Spring Conference on Computer Graphics (Budmerice, Slovakia 2001)

184.A. Pasko, V. Adzhiev, A. Sourin, V. Savchenko, Function representation in geometric modeling: Concepts, implementation and applications, Vis. Comput. 11, 429 (1995)

185.J.I. Peltoniemi, Variational volume integral equation method for electromagnetic scattering by irregular grains, J. Quant. Spectrosc. Radiat. Transfer 55, 637 (1996)

186.J.K. Percus, G.J. Yevick, Analysis of classical statistical mechanics by means of collective coordinates, Phys. Rev. 110, 1 (1958)

187.B. Peterson, S. Str¨om, T -matrix for electromagnetic scattering from an arbitrary number of scatterers and representations of E(3), Phys. Rev. 8, 3661 (1973)

188.B. Peterson, S. Str¨om, Matrix formulation of acoustic scattering from an arbitrary number of scatterers, J. Acoust. Soc. Am. 56, 771 (1974)

189.B. Peterson, S. Str¨om, T -matrix formulation of electromagnetic scattering from multilayered scatterers, Phys. Rev. 10, 2670 (1974)

190.B. Peterson, S. Str¨om, Matrix formulation of acoustic scattering from multilayered scatterers, J. Acoust. Soc. Am. 57, 2 (1975)

191.E.R. Pike, P.C. Sabatier, Scattering – Scattering and Inverse Scattering in Pure and Applied Science (Academic, London 2001)

192.N.B. Piller, Coupled-dipole approximation for high permittivity materials, Opt. Commun. 160, 10 (1999)

193.N.B. Piller, O.J.F. Martin, Extension of the generalized multipole technique to three-dimensional anisotropic scatterers, Opt. Lett. 23, 579 (1998)

194.N.B. Piller, O.J.F. Martin, Increasing the performance of the coupled-dipole approximation: A spectral approach, IEEE Trans. Antennas Propagat. 46, 1126 (1998)

195.D.C. Prieve, Measurement of colloidal forces with TIRM, Adv. Colloid Interface Sci. 82, 93 (1999)

196.S. Pulbere, T. Wriedt, Light Scattering by Cylindrical Fibers with High Aspect Ratio Using the Null-Field Method with Discrete Sources, Part. Part. Syst. Charact. 21, 213 (2004)

197.E.M. Purcell, C.R. Pennypacker, Scattering and absorption of light by nonspherical dielectric grains, Astrophysical J. 186, 705 (1973)

198.M. Quinten, U. Kreibig, Absorption and elastic scattering of light by particle aggregates, Appl. Opt. 32, 6173 (1993)

199.M. Quinten, A. Pack, R. Wannemacher, Scattering and extinction of evanescent waves by small particles, Appl. Phys. 68, 87 (1999)

200.A.G. Ramm, Convergence of the T -matrix approach to scattering theory, J. Math. Phys. 23, 1123 (1982)

201.A.G. Ramm, Scattering by Obstacles (D. Reidel, Dordrecht, 1986)

202.R.C. Reddick, R.J. Warmack, T.L. Ferrell, New form of scanning optical microscopy, Phys. Rev. 39, 767 (1989)


References 313

203.R.C. Reddick, R.J. Warmack, D.W. Chilcott, S.L. Sharp, T.L. Ferrell, Photon scanning tunneling microscopy, Rev. Sci. Instrum. 61, 3669 (1990)

204.N. Riefler, S. di Stasio, T. Wriedt, Structural Analysis of Clusters using Configurational and Orientational Averaging in Light Scattering Analysis, J. Quant. Spectrosc. Radiat. Transfer 89, 323 (2004)

205.T. Rother, M. Kahnert, A. Doicu, J. Wauer, Surface Green’s function of the Helmholtz equation in spherical coordinates, PIER 38, 47 (2002)

206.R. Schmehl, The coupled-dipole method for light scattering from particles on plane surfaces, Diplomarbeit, Universit¨at Karlsruhe (TH), Karlsruhe (1994)

207.J.B. Schneider, I.C. Peden, Di erential cross section of a dielectric ellipsoid by the T -matrix extended boundary condition method, IEEE Trans. Antennas Propagat. 36, 1317 (1988)

208.F.M. Schulz, K. Stamnes, J.J. Stamnes, Scattering of electromagnetic waves by spheroidal particles: A novel approach exploiting the T -matrix computed in spheroidal coordinates, Appl. Opt. 37, 7875 (1998)

209.K. Sertel and J.L. Volakis, Method of moments solution of volume integral equations using parametric geometry modeling, Radio Sci. 37, 1 (2002)

210.A. Sihvola, Electromagnetic Mixing Formulas and Applications (Institution of Electrical Engineers, London 1999)

211.A. Sihvola, R. Sharma, Scattering corrections for Maxwell–Garnett mixing rule, Microwave Opt. Technol. Lett. 22, 229 (1999)

212.N.C. Skaropoulos, H.W.J. Russchenberg, Light scattering by arbitrarily oriented rotationally symmetric particles, J. Opt. Soc. Am. A 19, 1583 (2002)

213.S. Stein, Addition theorems for spherical wave functions, Quart. Appl. Math. 19, 15 (1961)

214.J.C. Stover, Optical Scattering: Measurement and Analysis, 2nd Edn. (SPIE, Bellingham, WA, 1995)

215.J.A. Stratton, Electromagnetic Theory (McGraw-Hill, New York, 1941)

216.J.A. Stratton, L.J. Chu, Di raction theory of electromagnetic waves, Phys. Rev. 56, 99 (1939)

217.S. Str¨om, The scattered field, in Field Representations and Introduction to Scattering, ed. by V.V. Varadan, A. Lakhtakia, V.K. Varadan (North Holland, Amsterdam, 1991) pp. 143–164

218.S. Str¨om, W. Zheng, Basic features of the null field method for dielectric scatterers, Radio Sci. 22, 1273 (1987)

219.S. Str¨om, W. Zheng, The null field approach to electromagnetic scattering from composite objects, IEEE Trans. Antennas Propagat. 36, 376 (1988)

220.C.T. Tai, Dyadic Green Functions in Electromagnetic Theory (Institute of Electrical and Electronics Engineers, New York, 1993)

221.M.A. Taubenblatt, T.K. Tran, Calculation of light scattering from particles and structures on a surface by the coupled-dipole method, J. Opt. Soc. Am. A 10, 912 (1993)

222.O.B. Toon, T.P. Ackerman, Algorithms for the calculation of scattering by stratified spheres, Appl. Opt. 20, 3657 (1981)

223.L. Tsang, J.A. Kong, Multiple scattering of electromagnetic waves by random distributions of discrete scatterers with coherent potential and quantum mechanics formalisms, J. Appl. Phys. 51, 3465 (1980)

224.L. Tsang, J.A. Kong, E ective propagation constants for coherent electromagnetics waves in media embedded with dielectric scatterers, J. Apply. Phys. 53, 7162 (1982)


314References

225.L. Tsang, J.A. Kong, Scattering of electromagnetic waves from a half space of densely distributed dielectric scatterrers, Radio Sci. 18, 1260 (1983)

226.L. Tsang, J.A. Kong, Scattering of electromagnetic waves from a dense medium consisting of correlated Mie scatterrers with size distributions and applications to dry snow, J. Electromag. Waves Appl. 6, 265 (1992)

227.L. Tsang, J.A. Kong, T. Habashy, Multiple scattering of acoustic waves by random distributions of discrete spherical scatterrers with the quasicrystalline and Percus Yevick approximations, J. Acoust. Soc. Am. 71, 552 (1982)

228.L. Tsang, J.A. Kong, R.T. Shin, Theory of Microwave Remote Sensing (Wiley, New York, 1985)

229.L. Tsang, J.A. Kong, K.H. Ding, Scattering of electromagnetic waves, Theory and Applicatios (Wiley, New York, 2000)

230.V. Twerski, On scattering of waves by random distributions, I. Free space scatterer formulation, J. Math. Phys. 3, 700 (1962)

231.V. Twerski, Coherent electromagnetic waves in pair-correlated random distributions of aligned scatterers, J. Math. Phys. 19, 215 (1978)

232.N.K. Uzunoglu, P.G. Cottis, J.G. Fikioris, Excitation of electromagnetic waves in a pyroelectric cylinder, IEEE Trans. Antennas Propagat. 33, 90 (1995)

233.V.K. Varadan, Multiple scattering of acoustic, electromagnetic and elastic waves, in Acoustic, Electromagnetic and Elatic Wave Scattering-Focus on the T-Matrix Approach, ed. by V.K. Varadan, V.V. Varadan (Pergamon, New York 1980) pp. 103–134

234.V.V. Varadan, V.K. Varadan, Acoustic, Electromagnetic and Elastic Waves Scattering-Focus on the T-matrix Approach (Pergamon, New York, 1980)

235.V.K. Varadan, V.V. Varadan, Multiple scattering of electromagnetic waves by randomly distributed and oriented dielectric scatterrers, Phys. Rev. 21, 388 (1980)

236.V.K. Varadan, V.N. Bringi, V.V. Varadan, Coherent electromagnetic waves propagation through randomly distributed dielectric scatterrers, Phys. Rev. 19, 2480 (1979)

237.V.V. Varadan, A. Lakhtakia, V.K. Varadan, Scattering by three-dimensional anisotropic scatterers, IEEE Trans. Antennas Propagat. 37, 800 (1989)

238.V.V. Varadan, A. Lakhtakia, V.K. Varadan, Field representation and Introduction to Scattering (Elsevier Science, Amsterdam, 1991)

239.D.A. Varshalovich, A.N. Moskalev, V.K. Khersonskii, Quantum Theory of Angular Momentum (World Scientific, Singapore, 1988)

240.G. Videen, Light scattering from a sphere on or near a surface, J. Opt. Soc. Am. A 8, 483 (1991)

241.G. Videen, Light scattering from a sphere behind a surface, J. Opt. Soc. Am. A 10, 110 (1993)

242.G. Videen, Scattering from a small sphere near a surface, J. Opt. Soc. Am. A 10, 118 (1993)

243.G. Videen, D. Ngo, P. Chylek, R.G. Pinnick, Light scattering from a sphere with an irregular inclusion, J. Opt. Soc. Am. A 12, 922 (1995)

244.G. Videen, R.G. Pinnick, D. Ngo et al., Asymmetry parameters and aggregate particles, Appl. Opt. 37, 1104 (1998)

245.J.L. Volakis, Alternative field representations and integral equations for modeling inhomogeneous dielectrics, IEEE Trans. Microwave Theory Tech. 40, 604 (1992)


References 315

246.J.L. Volakis, K. Sertel, E. Jorgensen, R.W. Kindt, Hybride finite element and volume integral methods for scattering using parametric geometry, CMES 1, 11 (2000)

247.D. Wall, Methods of overcoming numerical instabilities associated with the

T -matrix method. In Acoustic, Electromagnetic and Elastic Waves ScatteringFocus on the T-matrix Approach, ed. by V.V. Varadan, V.K. Varadan (Pergamon, New York 1980) pp. 269–286

248.D.S. Wang, P.W. Barber, Scattering by inhomogeneous nonspherical objects, Appl. Opt. 18, 1190 (1979)

249.J.S. Wang, N. Ida, Curvilinear and higher order edge finite elements in electromagnetic field computation, IEEE Trans. Magn. 29, 1491 (1993)

250.Y.M. Wang, W.C. Chew, An e cient algorithm for solution of a scattering problem, Micro. Opt. Tech. Lett. 3, 102 (1990)

251.Y.M. Wang, W.C. Chew, A recursive T -matrix approach for the solution of electromagnetic scattering by many spheres, IEEE Trans. Antennas Propagat. 41, 1633 (1993)

252.R. Wannemacher, A. Pack, M. Quinten, Resonant absorption and scattering in evanescent fields, Appl. Phys. 68, 225 (1999)

253.P.C. Waterman, Matrix formulation of electromagnetic scattering, Proc. IEEE 53, 805 (1965)

254.P.C. Waterman, Scattering by dielectric obstacles. Alta Freq. 38, 348 (1969)

255.P.C. Waterman, New formulation of acoustic scattering, J. Acoust. Soc. Am. 45, 1417 (1969)

256.P.C. Waterman, Symmetry, unitarity and geometry in electromagnetic scattering, Phys. Rev. 3, 825 (1971)

257.P.C. Waterman, Numerical solution of electromagnetic scattering problems, in Computer Techniques for Electromagnetics, ed. by R. Mittra (Pergamon, Oxford 1973)

258.P.C. Waterman, R. Truell, Multiple scattering of waves, J. Math. Phys. 2, 512 (1961)

259.J.P. Webb, B. Forghani, Hierarchical scalar and vector tetrahedra, IEEE Trans. Magn. 29, 1495 (1993)

260.T. Weiland, A discretization method for the solution of Maxwell’s equations

¨

for six-component fields, Electronics and Communications AEU 31, 116 (1977)

261.D.J. Wielaard, M.I. Mishchenko, A. Macke, B.E. Carlson, Improved T -matrix computations for large, nonabsorbing and weakly absorbing nonspherical particles and comparison with geometrical-optics approximation, Appl. Opt. 36, 4305 (1997)

262.E.P. Wigner, Group Theory and its Application to the Quantum Mechanics of Atomic Spectra (Academic, New York 1959)

263.W.J. Wiscombe, A. Mugnai, Single scattering from nonspherical Chebyshev particles: A compendium of calculations, NASA Ref. Publ. NASA RP-1157 (1986)

264.W.J. Wiscombe, A. Mugnai, Scattering from nonspherical Chebyshev particles. 2: Means of angular scattering patterns, Appl. Opt. 27, 2405 (1988)

265.K.L. Wong, H.T. Chen, Electromagnetic scattering by a uniaxially anisotropic sphere, Proc. IEEE 139, 314 (1992)

266.T. Wriedt, Electromagnetic Scattering Programs, http://www.t-matrix.de (2006)


316References

267.T. Wriedt, Generalized Multipole Techniques for Electromagnetic and Light Scattering (Elsevier, Amsterdam, 1999)

268.T. Wriedt, Using T-matrix method for light scattering computations by nonaxisymmetric particles: Superellipsoids and realistically shaped particles, Part. Part. Syst. Charact 19, 256 (2002)

269.T. Wriedt, U. Comberg, Comparison of computational scattering methods, J. Quant. Spectrosc. Radiat. Transfer 60, 411 (1998)

270.T. Wriedt, A. Doicu, Light scattering from a particle on or a near a surface, Opt. Commun 152, 376 (1998)

271.Y.-L. Xu, Electromagnetic scattering by an aggregate of spheres, Appl. Opt. 34, 4573 (1995)

272.Y.-L. Xu, B.A.S. Gustafson, A generalized multiparticle Mie-solution: Further experimental verification, J. Quant. Spectrosc. Radiat. Transfer 70, 395 (2001)

273.Y.-L. Xu, B.A.S. Gustafson, Experimental and theoretical results of light scattering by aggregates of spheres, Appl. Opt. 36, 8026 (1997)

274.Y.-L. Xu, Scattering Mueller matrix of an ensemble of variously shaped small particles, J. Opt. Soc. Am. A 20, 11, 2093 (2003)

275.R. Zaridze, The Method of Auxiliary Sources (Institute of Radio-Engineering of Academy of Sciences, Moscow, 1984)

276.W. Zheng, The null field approach to electromagnetic scattering from composite objects: The case with three or more constituents, IEEE Trans. Antennas Propagat. 36, 1396 (1988)

277.W. Zheng, Computation of complex resonance frequencies of isolated composite objects, IEEE Trans. Microwave Theory Tech. 37, 953 (1989)

278.W. Zheng, H. Shao, Electromagnetic resonant scattering by multiple objects, Radio Sci. 26, 191 (1991)

279.W. Zheng, S. Str¨om, The null field approach to electromagnetic scattering from composite objects: The case of concavo-convex constituents, IEEE Trans. Antennas Propagat. 37, 373 (1989)