Nanocomposite Materials for Nonlinear Optics Based on Local Field Effects
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[1] John E. Sipe,et al. Intrinsic optical bistability in a thin layer of nonlinear optical material by means of local field effects , 2000 .
[2] R. Boyd,et al. Accessing the optical nonlinearity of metals with metal- dielectric photonic bandgap structures. , 1999, Optics letters.
[3] R. Nelson,et al. Enhanced electro-optic response of layered composite materials , 1999 .
[4] David Stroud,et al. The effective medium approximations : Some recent developments , 1998 .
[5] Robert W. Boyd,et al. Nonlinear-optical response of porous-glass-based composite materials , 1997 .
[6] Don A. Gregory,et al. Cancellation of photoinduced absorption in metal nanoparticle composites through a counterintuitive consequence of local field effects , 1997 .
[7] Robert W. Boyd,et al. Optical Properties of Nanostructured Optical Materials , 1996 .
[8] Salinas,et al. Coupled-mode theory for light propagation through deep nonlinear gratings. , 1996, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[9] M. Quinten,et al. Optical bistability of small heterogeneous clusters , 1996 .
[10] Fischer,et al. Enhanced nonlinear optical response of composite materials. , 1995, Physical review letters.
[11] John E. Sipe,et al. Nonlinear optical susceptibilities of layered composite materials , 1994 .
[12] Stroud,et al. Theory of optical bistability in a weakly nonlinear composite medium. , 1994, Physical review. B, Condensed matter.
[13] Zhang,et al. Numerical studies of the nonlinear properties of composites. , 1994, Physical review. B, Condensed matter.
[14] Boyd,et al. Nonlinear susceptibility of composite optical materials in the Maxwell Garnett model. , 1992, Physical review. A, Atomic, molecular, and optical physics.
[15] H A Haus,et al. Intrinsic optical bistability for coated spheroidal particles. , 1990, Physical review. A, Atomic, molecular, and optical physics.
[16] P. Sheng. Theory for the Dielectric Function of Granular Composite Media , 1980 .
[17] J. Sipe. On the derivation of the constitutive relation of an amorphous solid , 1980 .
[18] David J. Bergman,et al. The dielectric constant of a composite material—A problem in classical physics , 1978 .
[19] J. Sipe. Macroscopic theory of dielectric solids. II. The theory of Brillouin scattering from rare gas crystals , 1978 .
[20] J. Gittleman,et al. Comparison of the effective medium and the Maxwell-Garnett predictions for the dielectric constants of granular metals , 1977 .
[21] John E. Sipe,et al. V Foundations of the Macroscopic Electromagnetic Theory of Dielectric Media , 1977 .
[22] M. Brereton. Classical Electrodynamics (2nd edn) , 1976 .
[23] D. D. Yue,et al. Theory of Electric Polarization , 1974 .
[24] D. A. Dunnett. Classical Electrodynamics , 2020, Nature.
[25] R. W. Terhune,et al. Study of Optical Effects Due to an Induced Polarization Third Order in the Electric Field Strength , 1965 .
[26] D. A. G. Bruggeman. Berechnung verschiedener physikalischer Konstanten von heterogenen Substanzen. I. Dielektrizitätskonstanten und Leitfähigkeiten der Mischkörper aus isotropen Substanzen , 1935 .
[27] J. Garnett,et al. Colours in Metal Glasses and in Metallic Films , 1904 .