000806950 000__ 06706cam\a2200565Ii\4500 000806950 001__ 806950 000806950 005__ 20230306143744.0 000806950 006__ m\\\\\o\\d\\\\\\\\ 000806950 007__ cr\cn\nnnunnun 000806950 008__ 170403s2017\\\\sz\a\\\\o\\\\\001\0\eng\d 000806950 019__ $$a981649029$$a981812646$$a981986221$$a984851286$$a1005804104$$a1008942327$$a1011897059$$a1017884620 000806950 020__ $$a9783319530383$$q(electronic book) 000806950 020__ $$a3319530380$$q(electronic book) 000806950 020__ $$z9783319530369 000806950 020__ $$z3319530364 000806950 0247_ $$a10.1007/978-3-319-53038-3$$2doi 000806950 035__ $$aSP(OCoLC)ocn980874943 000806950 035__ $$aSP(OCoLC)980874943$$z(OCoLC)981649029$$z(OCoLC)981812646$$z(OCoLC)981986221$$z(OCoLC)984851286$$z(OCoLC)1005804104$$z(OCoLC)1008942327$$z(OCoLC)1011897059$$z(OCoLC)1017884620 000806950 040__ $$aN$T$$beng$$erda$$epn$$cN$T$$dEBLCP$$dGW5XE$$dN$T$$dYDX$$dNJR$$dOCLCF$$dAZU$$dUPM$$dMERER$$dOCLCQ$$dCOO$$dOCLCQ$$dVT2 000806950 049__ $$aISEA 000806950 050_4 $$aTP858 000806950 08204 $$a620.1/44$$223 000806950 08204 $$a530 000806950 24500 $$aTechnological advances in tellurite glasses :$$bproperties, processing, and applications /$$cV.A.G. Rivera, Danilo Manzani, editors. 000806950 264_1 $$aCham, Switzerland :$$bSpringer,$$c2017. 000806950 300__ $$a1 online resource (ix, 335 pages) :$$billustrations. 000806950 336__ $$atext$$btxt$$2rdacontent 000806950 337__ $$acomputer$$bc$$2rdamedia 000806950 338__ $$aonline resource$$bcr$$2rdacarrier 000806950 347__ $$atext file$$bPDF$$2rda 000806950 4901_ $$aSpringer series in materials science,$$x0933-033X ;$$vvolume 254 000806950 500__ $$aIncludes index. 000806950 5050_ $$aContributors; Chapter 1: Introduction to Tellurite Glasses; 1.1 Smart Materials; 1.2 Some Unique Physical Properties of Tellurite Glasses; 1.3 Recent Processing, Properties and Applications of Tellurite Glasses; References; Chapter 2: Linear and Nonlinear Optical Properties of Some Tellurium Oxide Glasses; 2.1 Introduction; 2.2 Methods Used for Fabrication and Characterization of the TeO2-Based Glasses; 2.3 Stokes and Anti-Stokes Photoluminescence; 2.3.1 Frequency Upconversion Assisted by Phonon Annihilation. 000806950 5058_ $$a2.3.2 Enhanced Frequency Upconversion and Energy Transfer in the Presence of Metallic Nanoparticles2.3.2.1 Tb3+/Eu3+-Co-Doped TZNP Glasses with Ag-NPs; 2.3.2.2 Tm3+-Doped TZO Glass with Ag-NPs; 2.3.2.3 Tm3+/Yb3+-Doped TZO with Ag-NPs; 2.3.2.4 Er3+-Doped TWB Glasses with Ag-NPs; 2.3.3 Rare-Earth Photoluminescence in the Presence of Silicon Nanocrystals; 2.4 Third-Order Nonlinear Optical Properties; 2.5 Conclusion; References; Chapter 3: Trivalent Lanthanides in Tellurite Glass; 3.1 Introduction; 3.2 Free Ions; 3.3 Rare-Earth Ions in a Static Crystal Field. 000806950 5058_ $$a3.4 Classification of Crystal Field States and Selection Rules3.5 Intensities of Optical Transitions; 3.6 Optical Properties of the REIs in Tellurite Glasses; 3.7 Conclusion; References; Chapter 4: Nonoxide Tellurium-Based Glasses; 4.1 Introduction; 4.2 Structure and Properties of Telluride Glasses; 4.2.1 General Aspects; 4.2.2 Different Families of Telluride Glasses; 4.2.2.1 Chalcohalide Glasses: TeX Glasses; 4.2.2.2 Highly Reticulated Telluride Glasses; 4.2.2.3 Stabilizing Telluride Glasses by Addition of Selenium; 4.2.2.4 Copper-Containing Telluride Glasses for Electrical Applications. 000806950 5058_ $$a4.2.2.5 Telluride Glasses as Phase-Change Materials4.3 Synthesis of Telluride Glasses; 4.4 Applications of Telluride Glasses; 4.4.1 Fibers for Mid- and Far-Infrared Spectroscopies; 4.4.1.1 Far-Infrared Exploration; 4.4.1.2 Fiber Evanescent Wave Spectroscopy; 4.4.1.3 Opto-Electrophoretic Sensing; 4.4.2 Thermoelectricity; 4.4.3 Data Storage; 4.5 Summary; References; Chapter 5: Photonic Applications of Tellurite Glasses; 5.1 Introduction; 5.2 Photonic Applications of Tellurite Glasses; 5.3 Photonics Field Application of Tellurite Glasses; 5.3.1 Nanowires; 5.3.2 Planar and Channel Waveguide. 000806950 5058_ $$a5.3.3 Fiber on Glass Waveguide5.3.4 Localized Temperature Sensing; References; Chapter 6: Lasers Utilising Tellurite Glass-Based Gain Media; 6.1 Introduction; 6.2 Rare-Earth-Doped Tellurite Glass Lasers; 6.2.1 Neodymium: Nd3+; 6.2.1.1 Bulk Glass; 6.2.1.2 Fibre; 6.2.1.3 Microcavity; 6.2.2 Erbium: Er3+; 6.2.2.1 Fibre; 6.2.2.2 Microcavity; 6.2.3 Thulium: Tm3+; 6.2.3.1 Bulk Glass; 6.2.3.2 Fibre; 6.2.3.3 Microcavity; 6.2.4 Holmium: Ho3+; 6.2.4.1 Bulk Glass; 6.2.4.2 Fibre; 6.3 Other Tellurite Glass Light Sources; 6.3.1 Raman Lasers; 6.3.2 Supercontinuum Sources. 000806950 506__ $$aAccess limited to authorized users. 000806950 520__ $$aThis book is the first to provide a comprehensive introduction to the synthesis, optical properties, and photonics applications of tellurite glasses. The book begins with an overview of tellurite glasses, followed by expert chapters on synthesis, properties, and state-of-the-art applications ranging from laser glass, optical fibers, and optical communications through color tuning, plasmonics, supercontinuum generation, and other photonic devices. The book provides in-depth information on the the structural, linear, and non-linear optical properties of tellurite glasses and their implications for device development. Real-world examples give the reader valuable insight into the applications of tellurite glass. A detailed discussion of glass production methods, including raw materials and melting and refining oxide- and fluoro-tellurite glasses, is also included. The book features an extensive reference list for further reading. This highly readable and didactic text draws on chemical composition, glass science, quantum mechanics, and electrodynamics. It is suitable for both advanced undergraduate and graduate students as well as practicing researchers. Serves as a key reference on the development of a new generation of photonics devices based on tellurite glasses Addresses the knowledge gap in tellurite glasses among physicists, chemists, and materials scientists Contributes to current research into the optical properties of oxide/fluoro-tellurite glasses Offers perspectives on likely future trends and challenges for tellurite glasses in the field of photonics and nanophotonics. 000806950 588__ $$aOnline resource; title from PDF title page (SpringerLink, viewed April 10, 2017). 000806950 650_0 $$aGlass. 000806950 650_0 $$aTellurites. 000806950 7001_ $$aRivera, V. A. G.,$$eeditor. 000806950 7001_ $$aManzani, Danilo,$$eeditor. 000806950 77608 $$iPrint version:$$tTechnological advances in tellurite glasses.$$dCham, Switzerland : Springer, 2017$$z3319530364$$z9783319530369$$w(OCoLC)967364745 000806950 830_0 $$aSpringer series in materials science ;$$vv. 254. 000806950 852__ $$bebk 000806950 85640 $$3SpringerLink$$uhttps://univsouthin.idm.oclc.org/login?url=http://link.springer.com/10.1007/978-3-319-53038-3$$zOnline Access$$91397441.1 000806950 909CO $$ooai:library.usi.edu:806950$$pGLOBAL_SET 000806950 980__ $$aEBOOK 000806950 980__ $$aBIB 000806950 982__ $$aEbook 000806950 983__ $$aOnline 000806950 994__ $$a92$$bISE