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Photonic crystals and micro-pulling down method

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper briefly summarizes the latest news in the area of photonic crystals. The definition, different types and properties of photonic materials are presented. It shows also how to apply this kind of materials hy introducing different defects to their structures. The most interesting point is where such kind of periodic structures can he found in nature. A new way of obtaining photonic crystals is presented. The micro-pulling method is proposed in order to grow self-organized eutectic microstructures.
Rocznik
Strony
44--57
Opis fizyczny
Bibliogr. 38 poz., rys., wykr.
Twórcy
autor
  • Instytut Technologii Materiałów Elektronicznych, Ul. Wólczyńska 133 01-919 Warszawa
Bibliografia
  • [1] Joannopoulos J. D., Villeneuve P. R.. Fan S.: Photonic crystals: putting a new twist on-light, Nature. 386 (1997) 143
  • [2] John S.: Strong localization of photons in certain disordered dielectric superlattices, Phys. Rev. Lett. 58 (1987) 2486
  • [3] Yablonovitch E.: Inhibited spontaneous emission in solid-state physics and electronics, Phys. Rev. Lett.. 58 (1987) 2059 [4J Pendry J.: Playing tricks with light, Science. 285 (1999) 1687
  • [5] Joannopoulos J, D. , Meade R. D., Winn J. N.: Photonic crystals, Princeton, New York, 1995
  • [6] Joannopoulos J. D., Villeneuve P. R. , Fan S.: Photonic crystals. Solid State Comm.. 102 (1997) 165
  • [7] John S., Toader O., Busch K.: Photonic band gap materials: a semiconductor for light. Encyclopedia of Physical Science and Technology, Vol. 12, Academic Press 2001
  • [8] Bimer A., Wehrspohn R. B.. Gösele U. M., Bush K.: Silicon based photonic crystals, Adv. Mat. 13 (2001) 377-388
  • [9] Nöda S.: Teaching light new tricks. SPIE s oemagazine. Oct. (2001) 28
  • [10] Ho K. M., Chan C. T. , Soukoulis C. M.: Existence of a photonic gap in periodic dielectric structures, Phys. Rev. Lett. 65 (1990) 3152
  • [11] Yablonovitch E., Gmitter T. J.. Leung K. M.: Photonic band structure: The face-centered-cubic case employing nonspherical atoms, Phys. Rev. Lett., 67 (1991) 2295
  • [12] Van Blaaderen A.: Opals in a new light. Science, 282 (1998) 887
  • [13] Vlasov Y. A., Bo X-Z., Sturm J. C., Norris D. J. : On-chip natural assembly of silicon photonic bandgap crystals, Nature 414 (2001) 289
  • [14] Ng.W.L. et al.: An efficient room-temperature silicon-based light-emitting diode, Nature, 410 (2001) 192
  • [15] Blanco A., Chomski E., Grabtchak S., Ibisate M., John S., Leonard S. W., Lopci C., Meseguer F., Miguez H., Mondia J. P., Ozin G. A., Toader O., Van Driel H. M.: Large-scale sythesis of a silicon photonic crystal with a complete three-dimensional bandgap near 1.5 micrometres. Nature, 405 (2000) 437
  • [16] Nöda S., Tomoda K., Yamamoto N., Chutinan A.: Full three-dimensional photonic band-gap crystals at near-infrared wavelengths. Science 289 (2000) 604
  • [17] Toader 0., John S.: Proposed square spiral microfabrication architecture for large three-dimensional photonic band gap crystals, Science 292 (2001) 1133
  • [18] Campbell M., Sharp D. N., Harrison M. T., Denning R. G., Turberfield A. J.: Fabrication of photonic crystals for the visible spectrum by holographic lithography, Nature 404 (2000) 53
  • [19] Fan S., Villeneuve P. R., Joannopoulos J. D., Haus H. A.: Channel drop tunne ing through localized states, Phys. Rev. Lett., 80 (1998) 960
  • [20] Painter O., Lee R. K., Scherer A., Yariv A., O'Brien J. D., Dapkus P. D., Kim I. Two-dimensional photonic band-gap defect mode laser. Science 284 (1999) 1819
  • [21] Nöda S., Chutinan A., Imada M.: Trapping and emission of photons by a single defect in a photonic bandgap structure. Nature, 407 (2000) 608
  • [22] Knight J. C., Broeng J., Birks T. A., Russell P. ST. J.: Photonic band ap guidance in optical fibres. Science, 282 (1998) 1476
  • [23] Busch K., John S.: Phys. Rev. Lett., 83 (1999) 967
  • [24] Leonard: Phys. Rev. B, 61 (2000) R2389
  • [25] Anderson T. F., Richards A. G. JR: An electron microscope study of some structural colors of insects, J. Appl. Phys. 13 (1942) 748
  • [26] Ghiradella H.: Light and color on the wing: structural colors in butterflies and moths. Applied Optics, 30 (1991) 3492
  • [27] Parker A. R., McPhedran R. C., McKenzie D. R., Botten L. C., Nicorovici N-A. P.: Aphrodite's iridescence. Nature, 409 (2001) 36
  • [28] Parker A. R.: Natural photonic engineers. Materials Today, 5 (2002) 26
  • [29] McKenzie D., Large M: Multilayer reflectors in animals using green and gold beetles as contrasting examples, J. Exper. Biol., 201 (1998) 1307
  • [30] Yoon D. H., Hashimoto H., Fukuda T.: Growth and characterization of K3Li2-RNb5+xO15+2 R micro single crystals formed by the ji-pulling down method for blue SHG applications, Jpn. J. Appl. Phys., 33 (1994) 3510
  • [31] Lee J. H., Yoshikawa A., Kaiden H., Lebbou K., Fukuda T., Yoon D. H., Waku Y.: Microstructure of Y2O3 doped ALOj/ZrO2 eutectic fibers grown by the micro-pulling-down method, J. Cryst. Growth, 23l''(2001) 179
  • [32] Lee J. H., Yoshikawa A.. Durbin S. D., Yoon D. H., Fukuda T.. Waku Y.: Microstmcture of Al2O3/Zr0, eutectic fibers grown by the inicro-pulling down method, J. Ciyst. Grovvr/i. 222 (2001) 791
  • [33] Hunt J. D., Jackson K. A.: Binary eutectic solidification, Trans. Metal. Soc. AIME, 236 (1966) 843
  • [34] Ashbrook R. L.: Directionally solidified ceramic eutectics, J. Am. Ceram. Soc., 60 (1977) 428
  • [35] Pawlak D. A., Lerondel G., Dmytruk 1., Kaganiitani Y., Durbin S., Fukuda T.: Second order self-organized pattern of terbium-scandium-aluminum garnet and terbium-scandium perovskite eutectic. J. Appl. Phys.. 91 (2002) 9731
  • [36] Inoue M., Fujii T.: A theoretical analysis of magnetooptical Faraday effect of YIG films with random multilayer structures, J. Appl. Phys. 81 (1997) 5659
  • [37J Steel M. J., Levy M., Osgood R. M., JR.: Photonic bandgaps with defects and the enhacement of Faraday rotation, J. Lightwave TerhnoL, 18 (2000) 1297
  • [38] Koerdt C., Rikken 0. L, J. A.. Petrov E.: Faraday effect in photonic crystals, GHMFL -annual report. 6 (2000) 76
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPB2-0011-0012
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