Aperiodic Volume Optics
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[1] 土屋 一郎,et al. Ultra-High-Q Photonic Double-Heterostructure Nanocavity , 2005 .
[2] D. Psaltis,et al. Control of volume holograms , 1992 .
[3] E. Wolf,et al. Principles of Optics (7th Ed) , 1999 .
[4] O. Bryngdahl,et al. Iterative Fourier-transform algorithm applied to computer holography , 1988 .
[5] P. Steinhardt,et al. Quasicrystals: a new class of ordered structures , 1984 .
[6] G Tricoles,et al. Computer generated holograms: an historical review. , 1987, Applied optics.
[7] Yeshaiahu Fainman,et al. Near-infrared demonstration of computer-generated holograms implemented by using subwavelength gratings with space-variant orientation. , 2005, Optics letters.
[8] G. Wong,et al. Lasing from dye-doped icosahedral quasicrystals in dichromate gelatin emulsions , 2009, 2009 Conference on Lasers and Electro-Optics and 2009 Conference on Quantum electronics and Laser Science Conference.
[9] Kazuyoshi Itoh,et al. Fabrication of Fresnel zone plate embedded in silica glass by femtosecond laser pulses. , 2002, Optics express.
[10] H. Herzig. Micro-Optics : Elements, Systems And Applications , 1997 .
[11] J. P. Callan,et al. Three-dimensional optical storage inside transparent materials. , 1996, Optics letters.
[12] D. Brady. Optical Imaging and Spectroscopy , 2009 .
[13] James G. Fleming,et al. Experimental observation of photonic-crystal emission near a photonic band edge , 2003 .
[14] S. Torquato,et al. Complete Photonic Band Gaps in 2 D Quasiperiodic Structures , 2009 .
[15] Rafael Piestun,et al. Computer-generated volume holograms fabricated by femtosecond laser micromachining. , 2006, Optics letters.
[16] E. Yablonovitch,et al. Inhibited spontaneous emission in solid-state physics and electronics. , 1987, Physical review letters.
[17] H O Bartelt,et al. Computer-generated holographic component with optimum light efficiency. , 1984, Applied optics.
[18] A R Tanguay,et al. Stratified volume holographic optical elements. , 1988, Optics letters.
[19] S. Bernet,et al. Shadow effects in spiral phase contrast microscopy. , 2005, Physical review letters.
[20] Ishimasa,et al. New ordered state between crystalline and amorphous in Ni-Cr particles. , 1985, Physical review letters.
[21] H J Tiziani,et al. Phase-shifting polarization interferometry for microstructure linewidth measurement. , 1999, Optics letters.
[22] F. Wyrowski. Iterative quantization of digital amplitude holograms. , 1989, Applied optics.
[23] Axel Scherer,et al. High Quality Two-Dimensional Photonic Crystal Slab Cavities , 2001 .
[24] H. Kogelnik. Coupled wave theory for thick hologram gratings , 1969 .
[25] Min Gu,et al. Near-infrared photonic crystals with higher-order bandgaps generated by two-photon photopolymerization. , 2002, Optics letters.
[26] T Yamashita,et al. Polarization beam splitter based on a photonic crystal heterostructure. , 2006, Optics letters.
[27] J R Fienup,et al. Phase retrieval algorithms: a comparison. , 1982, Applied optics.
[28] Rafael Piestun,et al. Fundamental limit for two-dimensional passive devices. , 2009, Optics letters.
[29] R. G. Denning,et al. Fabrication of photonic crystals for the visible spectrum by holographic lithography , 2000, Nature.
[30] Miller,et al. Electromagnetic degrees of freedom of an optical system , 2000, Journal of the Optical Society of America. A, Optics, image science, and vision.
[31] D. Grier. A revolution in optical manipulation , 2003, Nature.
[32] Y. Shimotsuma,et al. Self-organized nanogratings in glass irradiated by ultrashort light pulses. , 2003, Physical review letters.
[33] S Enoch,et al. Band gap formation and multiple scattering in photonic quasicrystals with a Penrose-type lattice. , 2005, Physical review letters.
[34] Boris Polyak,et al. The method of projections for finding the common point of convex sets , 1967 .
[35] Ludovico Cademartiri,et al. Three-dimensional silicon inverse photonic quasicrystals for infrared wavelengths , 2006, Nature materials.
[36] R. Gerchberg. A practical algorithm for the determination of phase from image and diffraction plane pictures , 1972 .
[37] Y. Fainman,et al. Form-birefringent space-variant inhomogeneous medium element for shaping point-spread functions. , 2006, Applied optics.
[38] Steven G. Johnson,et al. Photonic Crystals: Molding the Flow of Light , 1995 .
[39] Kengo Nozaki,et al. Photonic crystal nanolaser monolithically integrated with passive waveguide for effective light extraction , 2008 .
[40] Nan Yao,et al. Natural Quasicrystals , 2009, Science.
[41] O. B. Serov,et al. Characteristics of two-layer phase holograms , 1984 .
[42] J Shamir,et al. Control of wave-front propagation with diffractive elements. , 1994, Optics letters.
[43] John M. Watts,et al. Analysis and synthesis , 1985 .
[44] Cyril Hnatovsky,et al. Pulse duration dependence of femtosecond-laser-fabricated nanogratings in fused silica , 2005 .
[45] Che Ting Chan,et al. Photonic Band Gaps in Two Dimensional Photonic Quasicrystals , 1998 .
[46] Wang,et al. Two-dimensional quasicrystal with eightfold rotational symmetry. , 1987, Physical review letters.
[47] J Shamir,et al. Generation of continuous complex-valued functions for a joint transform correlator. , 1994, Applied optics.
[48] David J. Brady,et al. Multidimensional tomographic imaging using volume holography , 1999, Proc. IEEE.
[49] Dong Hoon Jang,et al. Room-temperature triangular-lattice two-dimensional photonic band gap lasers operating at 1.54 μm , 2000 .
[50] Weidong Zhou,et al. Optical add-drop filters based on photonic crystal ring resonators. , 2007, Optics express.
[51] H. Johnson,et al. A comparison of 'traditional' and multimedia information systems development practices , 2003, Inf. Softw. Technol..
[52] Joseph Shamir,et al. Synthesis of three-dimensional light fields and applications , 2002, Proc. IEEE.
[53] Kim,et al. Two-dimensional photonic band-Gap defect mode laser , 1999, Science.
[54] Stefan Linden,et al. Angle-resolved transmission spectroscopy of three-dimensional photonic crystals fabricated by direct laser writing , 2005 .
[55] John D. Joannopoulos,et al. Novel applications of photonic band gap materials: Low-loss bends and high Q cavities , 1994 .
[56] Samuel J. Lord,et al. Three-dimensional, single-molecule fluorescence imaging beyond the diffraction limit by using a double-helix point spread function , 2009, Proceedings of the National Academy of Sciences.
[57] T. Asano,et al. High-Q photonic nanocavity in a two-dimensional photonic crystal , 2003, Nature.
[58] M. Wegener,et al. Fabrication of Silicon Inverse Woodpile Photonic Crystals , 2007, 2007 Conference on Lasers and Electro-Optics (CLEO).
[59] K. Miura,et al. Writing waveguides in glass with a femtosecond laser. , 1996, Optics letters.
[60] U. Leonhardt. Optical Conformal Mapping , 2006, Science.
[61] O. Bryngdahl,et al. I Digital Holography – Computer-Generated Holograms , 1990 .
[62] D. Wiersma,et al. Multiple scattering of light in three-dimensional photonic quasicrystals , 2009, 2009 Conference on Lasers and Electro-Optics and 2009 Conference on Quantum electronics and Laser Science Conference.
[63] D. Youla,et al. Image Restoration by the Method of Convex Projections: Part 1ߞTheory , 1982, IEEE Transactions on Medical Imaging.
[64] R. Piestun,et al. Modification of opal photonic crystals using Al2O3 atomic layer deposition , 2006 .
[65] Martin Wegener,et al. Direct Laser Writing of Three‐ Dimensional Photonic Crystals with a Complete Photonic Bandgap in Chalcogenide Glasses , 2006 .
[66] E. Schonbrun,et al. Optical vortices for localized optical lattice site manipulation , 2006 .
[67] M. Megens,et al. Experimental measurement of the photonic properties of icosahedral quasicrystals , 2005, Nature.
[68] Kazuyoshi Itoh,et al. Fabrication of multimode interference waveguides in glass by use of a femtosecond laser. , 2005, Optics letters.
[69] M. Glas,et al. Principles of Computerized Tomographic Imaging , 2000 .
[70] D. Miller,et al. Communicating with waves between volumes: evaluating orthogonal spatial channels and limits on coupling strengths. , 2000, Applied optics.
[71] A W Lohmann,et al. Binary fraunhofer holograms, generated by computer. , 1967, Applied optics.
[72] Salvatore Torquato,et al. Designer disordered materials with large, complete photonic band gaps , 2009, Proceedings of the National Academy of Sciences.
[73] Shanhui Fan,et al. Direct‐Write Assembly of Three‐Dimensional Photonic Crystals: Conversion of Polymer Scaffolds to Silicon Hollow‐Woodpile Structures , 2006 .
[74] J. Pendry,et al. Hiding under the carpet: a new strategy for cloaking. , 2008, Physical review letters.
[75] Zhao-Qing Zhang,et al. Defect and transmission properties of two-dimensional quasiperiodic photonic band-gap systems , 1999 .
[76] Joseph Shamir,et al. Wave fields in three dimensions: analysis and synthesis , 1996 .
[77] Joseph Shamir,et al. On-axis binary-amplitude computer generated holograms , 1997 .
[78] P. J. van Heerden,et al. Theory of Optical Information Storage in Solids , 1963 .
[79] J. M. Cowley. A New Microscope Principle , 1953 .
[80] Yael Roichman,et al. Holographic assembly of quasicrystalline photonic heterostructures. , 2005, Optics express.
[81] R. Gerchberg. Super-resolution through Error Energy Reduction , 1974 .
[82] A. Papoulis. A new algorithm in spectral analysis and band-limited extrapolation. , 1975 .
[83] G. Allen Vawter,et al. Femtosecond laser-pulse-induced birefringence in optically isotropic glass , 2003 .
[84] Gregory P. Nordin,et al. Stratified Volume Diffractive Optical Elements as High Efficiency Gratings , 1999 .
[85] Rafael Piestun,et al. Polarization selective computer-generated holograms realized in glass by femtosecond laser induced nanogratings. , 2006, Optics express.
[86] Satoshi Kawata,et al. Finer features for functional microdevices , 2001, Nature.
[87] J. Joannopoulos,et al. High Transmission through Sharp Bends in Photonic Crystal Waveguides. , 1996, Physical review letters.
[88] Emil Wolf,et al. Principles of Optics: Contents , 1999 .
[89] G. Nordin,et al. Diffraction Properties of Stratified Volume Holographic Optical Elements , 1992 .
[90] Reinhard Männer,et al. Computer-generated stratified diffractive optical elements. , 2003, Applied optics.
[91] J. Nishii,et al. In situ observation of photoinduced refractive-index changes in filaments formed in glasses by femtosecond laser pulses. , 2001, Optics letters.
[92] David R. Smith,et al. Controlling Electromagnetic Fields , 2006, Science.
[93] M. Wegener,et al. Direct laser writing and characterization of “Slanted Pore” Photonic Crystals , 2004 .
[94] Ekmel Ozbay,et al. Photonic band-gap effect, localization, and waveguiding in the two-dimensional Penrose lattice , 2001 .
[95] John,et al. Strong localization of photons in certain disordered dielectric superlattices. , 1987, Physical review letters.
[96] D J Brady,et al. Confocal microscopy with a volume holographic filter. , 1999, Optics letters.
[97] Yongyi Yang,et al. Vector Space Projections: A Numerical Approach to Signal and Image Processing, Neural Nets, and Optics , 1998 .
[98] Rafael Piestun,et al. Aperiodic computer-generated volume holograms improve the performance of amplitude volume gratings. , 2007, Optics express.
[99] J. Sturm,et al. On-chip natural assembly of silicon photonic bandgap crystals , 2001, Nature.
[100] C. Chan,et al. Absolute photonic band gaps in 12-fold symmetric photonic quasicrystals , 2001 .
[101] Henry Stark,et al. Design of continuous and quantized amplitude holograms by generalized projections , 1997 .
[102] D. Brady,et al. Volume holographic pulse shaping. , 1992, Optics letters.
[103] H J Tiziani,et al. Optical particle trapping with computer-generated holograms written on a liquid-crystal display. , 1999, Optics letters.
[104] M. Wegener,et al. Direct laser writing of three-dimensional photonic-crystal templates for telecommunications , 2004, Nature materials.
[105] M. C. Netti,et al. Complete photonic bandgaps in 12-fold symmetric quasicrystals , 2000, Nature.