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001 | ocn798928649 | ||
003 | OCoLC | ||
005 | 20170612141629.0 | ||
006 | m o d | ||
007 | cr cn||||||||| | ||
008 | 120712s2012 njua ob 001 0 eng d | ||
040 |
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_a9781118343227 _q(electronic bk.) |
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020 | _z9781119974512 | ||
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_a(OCoLC)798928649 _z(OCoLC)835997142 _z(OCoLC)864911983 _z(OCoLC)961624818 _z(OCoLC)962694715 |
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_a10.1002/9781118343227 _bWiley InterScience _nhttp://www3.interscience.wiley.com |
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050 | 4 |
_aTK8305 _b.S55 2012eb |
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082 | 0 | 4 |
_a621.3815/2 _223 |
049 | _aMAIN | ||
100 | 1 |
_aSkorobogatiy, Maksim, _d1974- |
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245 | 1 | 0 |
_aNanostructured and subwavelength waveguides : _bfundamentals and applications / _cMaksim Skorobogatiy. |
260 |
_aHoboken, N.J. ; _aChichester : _bWiley, _c©2012. |
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300 |
_a1 online resource (xii, 318 pages) : _billustrations. |
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_atext _btxt _2rdacontent |
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_acomputer _bc _2rdamedia |
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_aonline resource _bcr _2rdacarrier |
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_adata file _2rda |
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380 | _aBibliography | ||
490 | 1 | _aWiley series in materials for electronic and optoelectronic applications | |
505 | 0 | _aHamiltonian Formulation of Maxwell Equations for the Modes of Anisotropic Waveguides -- Wave Propagation in Planar Anisotropic Multilayers, Transfer Matrix Formulation -- SlabWaveguides Made from Isotropic Dielectric Materials. Example of Subwavelength Planar Waveguides -- SlabWaveguides Made from Anisotropic Dielectrics -- Metamaterials in the Form of All-Dielectric Planar Multilayers -- Planar Waveguides Containing All-Dielectric Metamaterials, Example of Porous Waveguides -- Circular Fibres Made of Isotropic Materials -- Circular Fibres Made of Anisotropic Materials -- Metamaterials in the Form of a Periodic Lattice of Inclusions -- Circular Fibres Made of All-Dielectric Metamaterials -- Modes at the Interface between Two Materials -- Modes of a Metal Slab Waveguide -- Modes of a Metal Slot Waveguide -- Planar Metal/Dielectric Metamaterials -- Examples of Applications of Metal/Dielectric Metamaterials -- Modes of Metallic Wires, Guidance in the UV-Near-IR, Mid-IR and Far-IR Spectral Ranges -- Semianalytical Methods of Solving Nonlinear Equations of Two Variables. | |
520 |
_a"Optical waveguides take a prominent role in photonics because they are able to trap and to transport light efficiently between a point of excitation and a point of detection. Moreover, waveguides allow the management of many of the fundamental properties of light and allow highly controlled interaction with other optical systems. For this reason waveguides are ubiquitous in telecommunications, sensing, spectroscopy, light sources, and high power light delivery. Nanostructured and subwavelength waveguides have additional advantages; they are able to confine light at a length scale below the diffraction limit and enhance or suppress light-matter interaction, as well as manage fundamental properties of light such as speed and direction of energy and phase propagation."-- _cProvided by publisher. |
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504 | _aIncludes bibliographical references and index. | ||
588 | 0 | _aPrint version record. | |
650 | 0 | _aOptical wave guides. | |
650 | 0 | _aOptoelectronic devices. | |
650 | 0 | _aNanostructured materials. | |
650 | 7 |
_aTECHNOLOGY & ENGINEERING _xOptics. _2bisacsh |
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650 | 7 |
_aNanostructured materials. _2fast _0(OCoLC)fst01032630 |
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650 | 7 |
_aOptical wave guides. _2fast _0(OCoLC)fst01046824 |
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650 | 7 |
_aOptoelectronic devices. _2fast _0(OCoLC)fst01046908 |
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655 | 4 | _aElectronic books. | |
710 | 2 | _aWiley InterScience (Online service) | |
776 | 0 | 8 |
_iPrint version: _aSkorobogatiy, Maksim, 1974- _tNanostructured subwavelengths and waveguides. _dHoboken, N.J. : Wiley, 2012 _z9781119974512 _w(OCoLC)775419628 |
830 | 0 | _aWiley series in materials for electronic and optoelectronic applications. | |
856 | 4 | 0 |
_uhttp://onlinelibrary.wiley.com/book/10.1002/9781118343227 _zWiley Online Library |
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