Optical super-resolution and periodical focusing effects by dielectric microspheres
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[1] C. C. Lam,et al. Explicit asymptotic formulas for the positions, widths, and strengths of resonances in Mie scattering , 1992 .
[2] D J D'Amico,et al. Multicenter clinical experience using an erbium:YAG laser for vitreoretinal surgery. , 1996, Ophthalmology.
[3] W. Lukosz. Optical Systems with Resolving Powers Exceeding the Classical Limit , 1966 .
[4] Reginald Birngruber,et al. Photoablation of inner limiting membrane and inner retinal layers using the Erbium:YAG‐laser: An in vitro study , 2006, Lasers in surgery and medicine.
[5] Zhihua Ding,et al. Influence of incident light polarization on photonic nanojet (Chinese Title , 2011 .
[6] G. M. Hale,et al. Optical Constants of Water in the 200-nm to 200-microm Wavelength Region. , 1973, Applied optics.
[7] J. Schuman,et al. Erbium: YAG laser trabecular ablation with a sapphire optical fiber. , 1997, Experimental eye research.
[8] S. Hell. Far-Field Optical Nanoscopy , 2007, Science.
[9] Jorge Albero,et al. Polarization manipulation of radially polarized beams , 2012 .
[10] D. James,et al. Definitions of the degree of polarization of a light beam. , 2007 .
[11] U Hohenleutner,et al. Fast and effective skin ablation with an Er:YAG laser: Determination of ablation rates and thermal damage zones , 1997, Lasers in surgery and medicine.
[12] R. Kaufmann. Role of Erbium:YAG laser in the treatment of aged skin , 2001, Clinical and experimental dermatology.
[13] S. Arnold,et al. Whispering-gallery-mode biosensing: label-free detection down to single molecules , 2008, Nature Methods.
[14] Zhaowei Liu,et al. Superlenses to overcome the diffraction limit. , 2008, Nature materials.
[15] V. Elings,et al. Imaging with solid immersion lenses, spatial resolution, and applications , 2000, Proceedings of the IEEE.
[16] Peter G. Kazansky,et al. Radially polarized optical vortex converter created by femtosecond laser nanostructuring of glass , 2011 .
[17] L. Zhang,et al. Laser writing of a subwavelength structure on silicon (100) surfaces with particle-enhanced optical irradiation , 2000 .
[18] Carmen A. Puliafito,et al. Erbium-YAG laser surgery on experimental vitreous membranes. , 1984 .
[19] Allen Taflove,et al. Highly efficient optical coupling and transport phenomena in chains of dielectric microspheres. , 2006, Optics letters.
[20] James A. Harrington,et al. Infrared Fibers and Their Applications , 2003 .
[21] B. Zinman,et al. Diabetic retinopathy and diabetic macular edema: pathophysiology, screening, and novel therapies. , 2003, Diabetes care.
[22] T J Flotte,et al. Er:YAG laser ablation of tissue: Effect of pulse duration and tissue type on thermal damage , 1989, Lasers in surgery and medicine.
[23] A. Ashkin. Acceleration and trapping of particles by radiation pressure , 1970 .
[24] Yuji Matsuura,et al. Side‐firing sealing caps for hollow optical fibers , 2006, Lasers in surgery and medicine.
[25] J. Goodman. Introduction to Fourier optics , 1969 .
[26] D Courjon,et al. Near Field Microscopy and Near Field Optics , 2003 .
[27] Shunichi Sato,et al. Generation of a radially polarized laser beam by use of a conical Brewster prism. , 2005, Optics letters.
[28] James A J Fitzpatrick,et al. Super‐Resolution Microscopy: A Comparative Treatment , 2012, Current protocols in cytometry.
[29] Seungmoo Yang,et al. Spectroscopy of photonic molecular states in supermonodispersive bispheres , 2009, LASE.
[30] E. K. Panina,et al. Photonic nanojet effect in multilayer micrometre-sized spherical particles , 2011 .
[31] Songlin Zhuang,et al. Analysis of imaging properties of a microlens based on the method for a dyadic Green's function. , 2009, Applied optics.
[32] H. Wadell,et al. Volume, Shape, and Roundness of Quartz Particles , 1935, The Journal of Geology.
[33] Allen Taflove,et al. Superenhanced backscattering of light by nanoparticles. , 2006, Optics letters.
[34] Bruce D. Terris,et al. Near‐field optical data storage , 1996 .
[35] William V. Houston,et al. A Compound Interferometer for Fine Structure Work , 1927 .
[36] J. Pendry,et al. Negative refraction makes a perfect lens , 2000, Physical review letters.
[37] Giovanni Volpe,et al. Generation of cylindrical vector beams with few-mode fibers excited by Laguerre-Gaussian beams , 2004 .
[38] Jari Lindberg,et al. Mathematical concepts of optical superresolution , 2012 .
[39] Arash Darafsheh,et al. Characterization of high index microsphere resonators in fiber-integrated microfluidic platforms , 2011, LASE.
[40] J. Goodman. Statistical Optics , 1985 .
[41] T. Bridges,et al. Endophotocoagulation in vitrectomy with a carbon dioxide laser. , 1986, American journal of ophthalmology.
[42] L. Rayleigh. Investigations in optics, with special reference to the spectroscope , 1880 .
[43] Michael A. Teitell,et al. Photothermal nanoblade for patterned cell membrane cutting , 2010, Optics express.
[44] S. Arnold,et al. Whispering gallery mode bio-sensor for label-free detection of single molecules: thermo-optic vs. reactive mechanism. , 2010, Optics express.
[45] I. I. Smolyaninov,et al. Maxwell fisheye and Eaton lenses emulated by microdroplets , 2010, CLEO: 2011 - Laser Science to Photonic Applications.
[46] P. Leiderer,et al. Optical field enhancement effects in laser-assisted particle removal , 2001 .
[47] E. Mcleod,et al. Nanoscale ablation through optically trapped microspheres , 2010 .
[48] Wei Cai,et al. Optical coupling at a distance between detuned spherical cavities , 2006 .
[49] Helena Jelinkova,et al. Penetration of high-intensity Er:YAG laser light emitted by IR hollow optical fibers with sealing caps in water. , 2004, Applied optics.
[50] D. Reid,et al. Nanoscale optical microscopy in the vectorial focusing regime , 2008, 2008 Conference on Lasers and Electro-Optics and 2008 Conference on Quantum Electronics and Laser Science.
[51] George Baerveldt,et al. Laser trabecular ablation (LTA) , 1990, Lasers in surgery and medicine.
[52] W. Challener,et al. Optics of photonic nanojets. , 2005, Journal of the Optical Society of America. A, Optics, image science, and vision.
[53] Daniel R. Mason,et al. Enhanced resolution beyond the Abbe diffraction limit with wavelength-scale solid immersion lenses. , 2010, Optics letters.
[54] Allen Taflove,et al. Quasi one-dimensional light beam generated by a graded-index microsphere. , 2009, Optics express.
[55] Mark R. Dennis,et al. A super-oscillatory lens optical microscope for subwavelength imaging. , 2012, Nature materials.
[56] V. Veselago. The Electrodynamics of Substances with Simultaneously Negative Values of ∊ and μ , 1968 .
[57] J Z Zhang,et al. Spatial distribution of the internal and near-field intensities of large cylindrical and spherical scatterers. , 1987, Applied optics.
[58] Euan McLeod,et al. Subwavelength direct-write nanopatterning using optically trapped microspheres. , 2008, Nature nanotechnology.
[59] C. Du,et al. Enhancement of Raman scattering by individual dielectric microspheres , 2011 .
[60] Douglas B. Chrisey,et al. The Power of Direct Writing , 2000, Science.
[61] A. Scherer,et al. Coupled-resonator optical waveguide: a proposal and analysis. , 1999, Optics letters.
[62] Jing Jing Wang,et al. Low divergence photonic nanojets from Si3N4 microdisks. , 2012, Optics express.
[63] D. Hall,et al. Vector-beam solutions of Maxwell's wave equation. , 1996, Optics letters.
[64] S. Arnold,et al. Shift of whispering-gallery modes in microspheres by protein adsorption. , 2003, Optics letters.
[65] Tsunenobu Onodera,et al. Observation of light propagation across a 90° corner in chains of microspheres on a patterned substrate , 2008 .
[66] D. E. Wolf. The optics of microscope image formation. , 2007, Methods in cell biology.
[67] Noriaki Miyanaga,et al. Intense longitudinal electric fields generated from transverse electromagnetic waves , 2004 .
[68] Colin J R Sheppard,et al. Focal shift and the axial optical coordinate for high-aperture systems of finite Fresnel number. , 2003, Journal of the Optical Society of America. A, Optics, image science, and vision.
[69] Erez Hasman,et al. Formation of helical beams by use of Pancharatnam-Berry phase optical elements. , 2002, Optics letters.
[70] Adriaan van den Bos,et al. Resolution: a survey , 1997 .
[71] W. Denk,et al. Optical stethoscopy: Image recording with resolution λ/20 , 1984 .
[72] C. Adler,et al. Exterior caustics produced in scattering of a diagonally incident plane wave by a circular cylinder: semiclassical scattering theory analysis. , 2000, Journal of the Optical Society of America. A, Optics, image science, and vision.
[73] G. Kino,et al. Solid immersion microscope , 1990 .
[74] E. Abbe. Beiträge zur Theorie des Mikroskops und der mikroskopischen Wahrnehmung , 1873 .
[75] V. Astratov,et al. Percolation of light through whispering gallery modes in 3D lattices of coupled microspheres. , 2007, Optics express.
[76] Peter Allen,et al. A new and improved vitreoretinal erbium:YAG laser scalpel: long-term morphologic characteristics of retinal-choroidal injury. , 2004, Ophthalmic surgery, lasers & imaging : the official journal of the International Society for Imaging in the Eye.
[77] Jean-Luc Rehspringer,et al. Photonic jet driven non-linear optics: example of two-photon fluorescence enhancement by dielectric microspheres. , 2007, Optics express.
[78] Vladislav V. Yakovlev,et al. Multiplexed nanoscopic imaging , 2004 .
[79] P. Leiderer,et al. Local field enhancement effects for nanostructuring of surfaces , 2001, Journal of microscopy.
[80] K. Vahala. Optical microcavities , 2003, Nature.
[81] H. Rigneault,et al. Imaging the Gouy phase shift in photonic jets with a wavefront sensor. , 2012, Optics letters.
[82] A. Luque,et al. Light concentration in the near-field of dielectric spheroidal particles with mesoscopic sizes. , 2011, Optics express.
[83] H. Rigneault,et al. Photonic nanojet focusing for hollow-core photonic crystal fiber probes. , 2012, Applied optics.
[84] Hooman Mohseni,et al. A deep sub-wavelength process for the formation of highly uniform arrays of nanoholes and nanopillars , 2007 .
[85] D J D'Amico,et al. Initial clinical experience with an erbium:YAG laser for vitreoretinal surgery. , 1996, American journal of ophthalmology.
[86] Paul A. Dalgarno,et al. Solid immersion lens applications for nanophotonic devices , 2008 .
[87] Ulrike Woggon,et al. Photonic molecules doped with semiconductor nanocrystals , 2004 .
[88] Makoto Kuwata-Gonokami,et al. Heavy photon states in photonic chains of resonantly coupled cavities with supermonodispersive microspheres. , 2005, Physical review letters.
[89] Alexander A. Zemlyanov,et al. Photonic jets from resonantly excited transparent dielectric microspheres , 2012 .
[90] C. Sheppard,et al. Complete modeling of subsurface microscopy system based on aplanatic solid immersion lens. , 2012, Journal of the Optical Society of America. A, Optics, image science, and vision.
[91] P. Barber,et al. Internal electric field distributions of a dielectric cylinder at resonance wavelengths. , 1981, Optics letters.
[92] A. M. Kapitonov,et al. Observation of nanojet-induced modes with small propagation losses in chains of coupled spherical cavities. , 2007, Optics letters.
[93] Inon Moshe,et al. Production of radially or azimuthally polarized beams in solid-state lasers and the elimination of thermally induced birefringence effects. , 2003, Optics letters.
[94] Lin Li,et al. Multiphysics modelling and simulation of dry laser cleaning of micro-slots with particle contaminants , 2012 .
[95] T. S. McKechnie,et al. The Effect of Condenser Obstruction on the Two-point Resolution of a Microscope , 1972 .
[96] N. Arnold,et al. Axially symmetric focusing as a cuspoid diffraction catastrophe: Scalar and vector cases and comparison with the theory of Mie , 2006, physics/0606025.
[97] Anthony A. Tovar,et al. Production and propagation of cylindrically polarized Laguerre–Gaussian laser beams , 1998 .
[98] Peter Rechmann,et al. Er:YAG lasers in dentistry: an overview , 1998, Photonics West - Biomedical Optics.
[99] Shunichi Sato,et al. Generation of a radially polarized laser beam by use of the birefringence of a c-cut Nd:YVO4 crystal. , 2006, Optics letters.
[100] Y. Ben-Aryeh. Superresolution observed from evanescent waves transmitted through nano-corrugated metallic films , 2012 .
[101] Allen Taflove,et al. Optical analysis of nanoparticles via enhanced backscattering facilitated by 3-D photonic nanojets. , 2005, Optics express.
[102] Gerd Leuchs,et al. Focusing light to a tighter spot , 2000 .
[103] H. H. Hopkins,et al. The Influence of the Condenser on Microscopic Resolution , 1950 .
[104] Nicolas Bonod,et al. Compact metallo-dielectric optical antenna for ultra directional and enhanced radiative emission. , 2010, ACS nano.
[105] E. Yablonovitch,et al. Inhibited spontaneous emission in solid-state physics and electronics. , 1987, Physical review letters.
[106] S. Lipson,et al. Production of radially and azimuthally polarized polychromatic beams. , 2006, Optics letters.
[107] Yoshimasa Sugimoto,et al. Influence of micro-joints formed between spheres in coupled-resonator optical waveguide. , 2011, Optics express.
[108] H. Rigneault,et al. Two-photon fluorescence correlation spectroscopy with high count rates and low background using dielectric microspheres , 2010, Biomedical optics express.
[109] Vasily N. Astratov,et al. Optical coupling and transport phenomena in chains of spherical dielectric microresonators with size disorder , 2004 .
[110] Jean-Michel Raimond,et al. Strain-tunable high-Q optical microsphere resonator , 1998 .
[111] Alexander A. Zemlyanov,et al. Photonic nanojet calculations in layered radially inhomogeneous micrometer-sized spherical particles , 2011 .
[112] Z. Bomzon,et al. Radially and azimuthally polarized beams generated by space-variant dielectric subwavelength gratings. , 2002, Optics letters.
[113] Yoshimasa Sugimoto,et al. Micro‐demultiplexer of Coupled Resonator Optical Waveguide Fabricated by Microspheres , 2010, Advanced materials.
[114] V. Astratov,et al. Photonic nanojet-induced modes in chains of size-disordered microspheres with an attenuation of only 0.08dB per sphere , 2008 .
[115] Olga Korotkova,et al. Experimental generation of a radially polarized beam with controllable spatial coherence , 2012 .
[116] R. Richards-Kortum,et al. Fiber optic probes for biomedical optical spectroscopy. , 2003, Journal of biomedical optics.
[117] E. Hecht. Optics 4th Edition , 1998 .
[118] Hervé Rigneault,et al. Three-dimensional subwavelength confinement of light with dielectric microspheres. , 2009, Optics express.
[119] Gilbert D. Feke,et al. Realization of numerical aperture 2.0 using a gallium phosphide solid immersion lens , 1999 .
[120] Jonathan Grandidier,et al. Light Absorption Enhancement in Thin‐Film Solar Cells Using Whispering Gallery Modes in Dielectric Nanospheres , 2011, Advanced materials.
[121] Hervé Rigneault,et al. Optical-fiber-microsphere for remote fluorescence correlation spectroscopy. , 2009, Optics express.
[122] S C Tidwell,et al. Generating radially polarized beams interferometrically. , 1990, Applied optics.
[123] A. Sahakian,et al. Applied Physics Letters , 2022 .
[124] S. Hell. Microscopy and its focal switch , 2008, Nature Methods.
[125] James S. Wilkinson,et al. Position-dependent coupling between a channel waveguide and a distorted microsphere resonator , 2010 .
[126] Makoto Kuwata-Gonokami,et al. Tight-Binding Photonic Molecule Modes of Resonant Bispheres , 1999 .
[127] J. Donegan,et al. Radiation-pressure-induced mode splitting in a spherical microcavity with an elastic shell. , 2007, Optics express.
[128] Myun-Sik Kim,et al. Engineering photonic nanojets. , 2011, Optics express.
[129] R. J. Potton,et al. Reciprocity in optics , 2004 .
[130] J. K. Erwin,et al. Super-Resolution by Combination of a Solid Immersion Lens and an Aperture , 2001 .
[131] James A. Harrington,et al. A Review of IR Transmitting, Hollow Waveguides , 2000 .
[132] Johannes Boneberg,et al. Optical near-field effects in surface nanostructuring and laser cleaning , 2002, International Symposium on Laser Precision Microfabrication.
[133] E. Wolf,et al. Electromagnetic diffraction in optical systems, II. Structure of the image field in an aplanatic system , 1959, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[134] N. Uzunoglu,et al. Analysis of scattering by a linear chain of spherical inclusions in an optical fiber. , 2006, Journal of the Optical Society of America. A, Optics, image science, and vision.
[135] Thomas D Milster. Near-field optical data storage: avenues for improved performance , 2001 .
[136] D. Erni,et al. Optical forces on metallic nanoparticles induced by a photonic nanojet. , 2008, Optics express.
[137] L. Deych,et al. Effect of size disorder on the optical transport in chains of coupled microspherical resonators. , 2011, Optics express.
[138] G Leuchs,et al. Sharper focus for a radially polarized light beam. , 2003, Physical review letters.
[139] Xu Liu,et al. Microsphere based microscope with optical super-resolution capability , 2011 .
[140] T R Sales,et al. Fundamental limits of optical superresolution. , 1997, Optics letters.
[141] N. Fang,et al. SubDiffraction-Limited Optical Imaging with a Silver Superlens , 2005, Science.
[142] C. M. Sparrow. On Spectroscopic Resolving Power , 1916 .
[143] Q. Zhan. Cylindrical vector beams: from mathematical concepts to applications , 2009 .
[144] Nikolay I Zheludev,et al. What diffraction limit? , 2008, Nature materials.
[145] Sandu Popescu,et al. Evolution of quantum superoscillations, and optical superresolution without evanescent waves , 2006 .
[146] Leonid Alekseyev,et al. Super-resolution imaging via spatiotemporal frequency shifting and coherent detection. , 2011, Optics express.
[147] David Peyrade,et al. Colloidal optical waveguides with integrated local light sources built by capillary force assembly , 2010 .
[148] Joerg Bewersdorf,et al. Optical nanoscopy: from acquisition to analysis. , 2012, Annual review of biomedical engineering.
[149] Anatolii N Oraevsky,et al. Whispering-gallery waves , 2002 .
[150] Hervé Rigneault,et al. Strong electromagnetic confinement near dielectric microspheres to enhance single-molecule fluorescence. , 2008, Optics express.
[151] Myun-Sik Kim,et al. Subwavelength-size solid immersion lens. , 2011, Optics letters.
[152] Hong Wang,et al. Subwavelength-Sized Plasmonic Structures for Wide-Field Optical Microscopic Imaging with Super-Resolution , 2012, Plasmonics.
[153] H. Laqua,et al. Retinale Photoablation mit dem Erbium:YAG-Laser , 2003, Der Ophthalmologe.
[154] Vladimir P. Yakunin,et al. Generation of high-power radially polarized beam , 1999 .
[155] Yu. E. Geints,et al. Control over parameters of photonic nanojets of dielectric microspheres , 2010 .
[156] Yaoju Zhang. Design of high-performance supersphere solid immersion lenses. , 2006, Applied optics.
[157] Hervé Rigneault,et al. Hollow-core photonic crystal fiber probe for remote fluorescence sensing with single molecule sensitivity. , 2012, Optics express.
[158] C. Borst,et al. Ray tracing of optically modified fiber tips. 1: spherical probes. , 1991, Applied optics.
[159] Chang-Chun Yan,et al. Properties of the 3D photonic nanojet based on the refractive index of surroundings , 2010 .
[160] Z. Jacob,et al. Optical Hyperlens: Far-field imaging beyond the diffraction limit. , 2006, Optics express.
[161] A. Neice. Methods and limitations of subwavelength imaging , 2010 .
[162] B A Rockwell,et al. Intraocular laser surgical probe for membrane disruption by laser-induced breakdown. , 1997, Applied optics.
[163] Yoshitate Takakura,et al. Properties of a three-dimensional photonic jet. , 2005, Optics letters.
[165] R. Bonner,et al. Phototransection of vitreal membranes with the carbon dioxide laser in rabbits. , 1983, Ophthalmology.
[166] Lukas Novotny,et al. Enhanced reflectivity contrast in confocal solid immersion lens microscopy , 2000 .
[167] Rainer Heintzmann,et al. Breaking the resolution limit in light microscopy. , 2006, Methods in cell biology.
[168] Ken-ichi Ueda,et al. Generation of radially polarized mode in Yb fiber laser by using a dual conical prism. , 2006, Optics letters.
[169] M. Selim Ünlü,et al. A case study for optics: The solid immersion microscope , 2008 .
[170] Alessandro Chiasera,et al. Spherical whispering‐gallery‐mode microresonators , 2010 .
[171] J. Donegan,et al. Generation of a radially polarized light beam using internal conical diffraction. , 2011, Optics express.
[172] Allen Taflove,et al. Experimental confirmation at visible light wavelengths of the backscattering enhancement phenomenon of the photonic nanojet , 2011, Optics express.
[173] Lin Li,et al. Axial laser beam cleaning of tiny particles on narrow slot sidewalls , 2012 .
[174] Mitsunobu Miyagi,et al. Tapered hollow waveguide for focusing infrared laser beams. , 2007, Optics letters.
[175] I. Huynen,et al. Wavelength-scale lens microscopy via thermal reshaping of colloidal particles , 2012, Nanotechnology.
[176] D. Luo,et al. Creating attoliter detection volume by microsphere photonic nanojet and fluorescence depletion , 2012 .
[177] Michael A. Fiddy,et al. Superresolution Imaging—Revisited , 2010 .
[178] Nikolai Gaponik,et al. Fine structure of coupled optical modes in photonic molecules , 2004 .
[179] Philip Kim,et al. Near-field focusing and magnification through self-assembled nanoscale spherical lenses , 2009, Nature.
[180] D M Clarkson. A review of technology and safety aspects of erbium lasers in dentistry. , 2001, Dental update.
[181] D S Boyer,et al. Intraocular carbon dioxide laser photocautery. , 1980, Ophthalmology.
[182] Yang Wang,et al. Near-field focusing of the dielectric microsphere with wavelength scale radius. , 2013, Optics express.
[183] B. Thompson,et al. Two-point resolution with partially coherent light. , 1967, Journal of the Optical Society of America.
[184] Hervé Rigneault,et al. Direct imaging of photonic nanojets. , 2008, Optics express.
[185] G. Righini,et al. Whispering gallery mode microresonators: Fundamentals and applications , 2011 .
[186] B. Kasemo,et al. Nanoparticle plasmonics for 2D-photovoltaics: mechanisms, optimization, and limits. , 2009, Optics express.
[187] K. Vahala,et al. High sensitivity nanoparticle detection using optical microcavities , 2011, Proceedings of the National Academy of Sciences.
[188] Dieter W. Pohl,et al. Operation of a Ruby Laser in the Purely Transverse Electric Mode TE01 , 1972 .
[189] K. Hiremath,et al. Perturbations of whispering gallery modes by nanoparticles embedded in microcavities. , 2008, Optics express.
[190] Zhaowei Liu,et al. Far-Field Optical Hyperlens Magnifying Sub-Diffraction-Limited Objects , 2007, Science.
[191] E Charles H Sykes,et al. The effects of inter-cavity separation on optical coupling in dielectric bispheres. , 2006, Optics express.
[192] Charles L. Adler,et al. High-Order Interior Caustics Produced in Scattering of a Diagonally Incident Plane Wave by a Circular Cylinder , 1997 .
[193] J. Jackson. Classical Electrodynamics, 3rd Edition , 1998 .
[194] Olivier J. F. Martin,et al. Scanning near-field optical microscopy with aperture probes: Fundamentals and applications , 2000 .
[195] Yu. E. Geints,et al. Controlling the parameters of photon nanojets of composite microspheres , 2010 .
[196] Asher A. Friesem,et al. The formation of laser beams with pure azimuthal or radial polarization , 2000 .
[197] A. Sahakian,et al. Experimental confirmation of backscattering enhancement induced by a photonic jet , 2006 .
[198] Z. Bomzon,et al. Formation of radially and azimuthally polarized light using space-variant subwavelength metal stripe gratings , 2001 .
[199] Jack Ng,et al. Size-selective optical forces for microspheres using evanescent wave excitation of whispering gallery modes , 2008 .
[200] Allen Taflove,et al. Photonic nanojet enhancement of backscattering of light by nanoparticles: a potential novel visible-light ultramicroscopy technique. , 2004, Optics express.
[201] C. T. Chan,et al. Whispering gallery mode enhanced optical force with resonant tunneling excitation in the Kretschmann geometry , 2009, 0901.0454.
[202] D J D'Amico,et al. Ablation of Vitreous Tissue with a High Repetition Rate Erbium: YAG Laser , 2003, European journal of ophthalmology.
[203] R. Grober,et al. Video rate near-field scanning optical microscopy , 1997 .
[204] G Stevens,et al. Erbium:YAG laser cataract removal: role of fiber-optic delivery system. , 1999, Journal of cataract and refractive surgery.
[205] Valerio Romano,et al. Polarization-selective grating mirrors used in the generation of radial polarization , 2005 .
[206] Z. Kam,et al. Absorption and Scattering of Light by Small Particles , 1998 .
[207] Bruce D. Terris,et al. Near‐field optical data storage using a solid immersion lens , 1994 .
[208] Nikita Arnold,et al. Theoretical description of dry laser cleaning , 2003 .
[209] Allen Taflove,et al. High-Density Optical Data Storage Enabled by the Photonic Nanojet from a Dielectric Microsphere , 2009 .
[210] A. Taflove,et al. Photonic nanojets , 2004, IEEE Antennas and Propagation Society Symposium, 2004..
[211] Allen Taflove,et al. Subdiffraction optical resolution of a gold nanosphere located within the nanojet of a Mie-resonant dielectric microsphere. , 2007, Optics express.
[212] E. Popov,et al. Efficient excitation and collection of single-molecule fluorescence close to a dielectric microsphere , 2009 .
[213] Yongfeng Lu,et al. Enhanced Raman scattering by self-assembled silica spherical microparticles , 2007 .
[214] M. Phillips,et al. Generation of radially polarized beams with an image-rotating resonator. , 2003, Applied optics.
[215] D. Courjon,et al. An all-fiber device for generating radially and other polarized light beams , 2002 .
[216] G. Toraldo di Francia,et al. Super-gain antennas and optical resolving power , 1952 .
[217] H. Herzig,et al. Gouy phase anomaly in photonic nanojets , 2011 .