Academic literature on the topic 'Luminescent Materials'

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Journal articles on the topic "Luminescent Materials"

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Yam, Vivian Wing-Wah. "Molecular design of luminescent metal-based materials." Pure and Applied Chemistry 73, no. 3 (2001): 543–48. http://dx.doi.org/10.1351/pac200173030543.

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A series of soluble di- and polynuclear transition-metal acetylides with rich luminescence behavior have been designed and successfully isolated. The photophysical and photochemical properties have been studied. Luminescent polynuclear metal complexes have also been obtained based on the metal chalcogenide building block. These high-nuclearity transition-metal chalcogenide complexes have been structurally characterized and shown to display rich luminescence behavior. Various approaches and strategies to design and synthesize luminescent polynuclear metal complexes that may find potential appli
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Huang, Tao, and Bingsuo Zou. "Luminescent Behavior of Sb3+-Activated Luminescent Metal Halide." Nanomaterials 13, no. 21 (2023): 2867. http://dx.doi.org/10.3390/nano13212867.

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Metal halide perovskites have unparalleled optoelectronic properties and broad application potential and are expected to become the next epoch-making optoelectronic semiconductors. Although remarkable achievements have been achieved with lead halide perovskites, the toxicity of lead inhibits the development of such materials. Recently, Sb3+-activated luminescent metal halide perovskite materials with low toxicity, high efficiency, broadband, large Stokes shift, and emission wavelengths covering the entire visible and near-infrared regions have been considered one of the most likely luminescent
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Sharma, Suchinder K., Jinu James, Shailendra Kumar Gupta, and Shamima Hussain. "UV-A,B,C Emitting Persistent Luminescent Materials." Materials 16, no. 1 (2022): 236. http://dx.doi.org/10.3390/ma16010236.

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The nearly dormant field of persistent luminescence has gained fresh impetus after the discovery of strontium aluminate persistent luminescence phosphor in 1996. Several efforts have been put in to prepare efficient, long decay, persistent luminescent materials which can be used for different applications. The most explored among all are the materials which emit in the visible wavelength region, 400–650 nm, of the electromagnetic spectrum. However, since 2014, the wavelength range is extended further above 650 nm for biological applications due to easily distinguishable signal between luminesc
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Tian, Junhang, Jihuan Xie, and Weidong Zhuang. "Recent Advances in Multi-Site Luminescent Materials: Design, Identification and Regulation." Materials 16, no. 6 (2023): 2179. http://dx.doi.org/10.3390/ma16062179.

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The development of novel phosphor materials with excellent performance and modification of their photoluminescence to meet the higher requirements for applications are the essential research subjects for luminescent materials. Multi-site luminescent materials with crystallographic sites for the activator ions that broaden the tunable range of luminescent spectra and even enhance the luminescent performance have attracted significant attention in the pursuit of high-quality luminescence for white light-emitting diodes. Here, we summarize multi-site luminescence characteristics based on the diff
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Zhu, Li, Lei Chen, and Wen Di Tan. "Rare Earth Luminescent Materials in Landscape Lighting Application." Applied Mechanics and Materials 302 (February 2013): 227–29. http://dx.doi.org/10.4028/www.scientific.net/amm.302.227.

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Rare earth luminescent material is in recent years focus on Cultivation of the advanced material industry, its luminescence properties in life applications are very extensive, but widely is used in industrial field and luminescent TV, lamp production direction, in landscape planning application field is very limited. Because not only is the rare earth luminescent material, and landscape areas are in recent years started to gain attention field, its research is still in the young state, interdisciplinary communication is not much also, this makes the rare earth luminescent material itself advan
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Bogdanov, Kirill V., Ilya E. Kaliya, Mikhail A. Baranov, et al. "Multi-Frequency Light Sources Based on CVD Diamond Matrices with a Mix of SiV− and GeV− Color Centers and Tungsten Complexes." Materials 15, no. 23 (2022): 8510. http://dx.doi.org/10.3390/ma15238510.

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Recently, nanodiamonds with negatively charged luminescent color centers based on atoms of the fourth group (SiV−, GeV−) have been proposed for use as biocompatible luminescent markers. Further improvement of the functionality of such systems by expanding the frequencies of the emission can be achieved by the additional formation of luminescent tungsten complexes in the diamond matrix. This paper reports the creation of diamond matrices by a hot filament chemical vapor deposition method, containing combinations of luminescing Si-V and Ge-V color centers and tungsten complexes. The possibility
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Wang, Yu, and Huanrong Li. "Luminescent materials of zeolite functionalized with lanthanides." CrystEngComm 16, no. 42 (2014): 9764–78. http://dx.doi.org/10.1039/c4ce01455c.

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Luminescent materials based on the functionalization of zeolite with lanthanide constitute an intense research topic since they combine the attractive properties of zeolite and unique optical properties of Ln<sup>3+</sup> ions. This review highlights the utilization of zeolite as luminescent materials showing tunable luminescence performance, well-organized structures and useful host–guest interactions.
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Ji, Zhi Xiang. "Preparation and Characterization of Two New Luminescent Material." Advanced Materials Research 322 (August 2011): 365–68. http://dx.doi.org/10.4028/www.scientific.net/amr.322.365.

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Two new luminescent materials were prepared by the reaction of Eu (III) and Tb (III) ions with N’-(2-acetyl-3-methylpyrazine)-4-toluene-sulfonylhydrazide in ethanol solution, respectively. The composition of the luminescent materials was confirmed by elemental analysis, infrared spectra and X-ray crystallography. The luminescent properties of two new luminescent materials were investigated in solid. The results show that two new luminescent materials have strong characteristic luminescence in red and blue region, respectively.
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Gartia, R. K., and Ngangbam Chandrasekhar. "Thermoluminescence of Persistent Luminescent Materials." Defect and Diffusion Forum 357 (July 2014): 171–91. http://dx.doi.org/10.4028/www.scientific.net/ddf.357.171.

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Persistent luminescence as well as Thermoluminescence (TL), both the phenomena are nothing but long-period afterglow having lifetime (τ) in the broad range of few minutes to few days. Therefore, it is nothing but natural that all persistent luminescent materials exhibit excellent thermoluminescence. This review critically discusses the data available in literature and provides a commentary on the trap-spectroscopy of persistent luminescent materials as a whole with special emphasis to commercial materials that have found wide applications in safety signage, road sign display as well as sensors
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Zhang, Yi, Xiaoling Li, Jun Zhu, Danhong Zhou, Ying Li, and Chengcheng Liu. "Design, synthesis, and thermal stability of rare earth luminescent materials." Thermal Science 28, no. 2 Part B (2024): 1405–12. http://dx.doi.org/10.2298/tsci2402405z.

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As a new generation of luminescent materials, aluminate rare earth materials have the characteristics of long luminescent time, adjustable wavelength and high brightness. Aluminate rare earth luminescent materials were prepared by high temperature solid-state method, and the luminescent properties of the luminescent materials were studied. Firstly, the author synthesized magnesium aluminate, calcium aluminates, and zinc aluminate matrix by combustion method. Then aluminate rare earth luminescent materials were prepared by high temperature solid phase method through raw material distribution, r
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Dissertations / Theses on the topic "Luminescent Materials"

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Sudhakaran, Pillai S. "Luminescent materials based on Lanthanide ions." Thesis, Kingston University, 2010. http://eprints.kingston.ac.uk/20413/.

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The inclusion of lanthanide (III) (Ln[sup]3+) ions into polymers by “covalent” bonding has applications. Heteroleptic hydrotris(pyrazolyl)borate crotonate and cinnamate complexes were synthesised for reasons that, firstly, knowledge of the polymerisable double bond was helpful in establishing the conditions of any copolymerisation reaction; secondly, the chosen ligands are very good at receiving energy in the UV region; and thirdly, lanthanide complexes might undergo changes in properties, on moving between adjacent lanthanide ions, allowing potentially convenient isolations of pure materials
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Kokado, Kenta. "New Luminescent Materials Based on Carboranes." 京都大学 (Kyoto University), 2010. http://hdl.handle.net/2433/120888.

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Lin, Qiqiao. "Luminescent hybrid materials for LED lighting." Thesis, Université Paris-Saclay (ComUE), 2019. http://www.theses.fr/2019SACLX036.

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Cette thèse visait à concevoir et à synthétiser des matériaux hybrides organiques-inorganiques à luminescence contrôlée et à les étudier en tant que luminophores pour l'éclairage à LED. L'objectif final était d'obtenir une source de lumière blanche. En effet, les LED blanches commerciales sont constituées d'un dispositif émetteur bleu recouvert d'un luminophore jaune. La combinaison de ces deux couleurs produit une lumière blanche. Cependant, cette lumière n'est pas de bonne qualité car il lui manque une composante rouge. Cela entraîne un mauvais rendu des couleurs des objets éclairés par ces
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Gao, Sheng <1992&gt. "Advanced Luminescent Materials for Technological Applications." Doctoral thesis, Alma Mater Studiorum - Università di Bologna, 2021. http://amsdottorato.unibo.it/9752/1/Revised_PhD%20Thesis%20-%20Sheng%20Gao.pdf.

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This thesis focusses on the study of several luminescent materials and investigates some related technological applications. It is made of six chapters. Chapter 1 introduces a brief history, basic principles and applications of photoluminescence. Chapter 2 presents the photophysical properties of five benzoheterodiazole dyes. These molecules were incorporated in PMMA- and PDMS-based LSC-PV devices to determine the emission quantum yields, transmission, re-absorption and IPCE properties. DFT calculations were performed to investigate the structures and energy levels of these dyes. Chapter 3 con
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Kenta, Nishino. "Advanced Luminescent Materials Based on Conjugated Carboranes." 京都大学 (Kyoto University), 2017. http://hdl.handle.net/2433/225625.

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Atoini, Youssef. "New luminescent hybrid materials : synthesis and properties." Thesis, Strasbourg, 2017. http://www.theses.fr/2017STRAF004/document.

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L'objectif de cette thèse est la synthèse, la caractérisation et l'étude de complexes métalliquesluminescents, en particulier de Pt (II), leurs propriétés d'agrégation en solution, mais également dansun espace confiné ainsi qu’en surface. L'incorporation de complexes de métaux de transition dans lastructure poreuse, et ainsi que leur dépôt à la surface de nanoparticules et dans un cadre métalloorganique(MOF), par greffage post-synthétique, ont été étudiés. Sont également étudiés lacorrélation entre les propriétés de films d’une série de complexes de Pt(II) avec leur morphologie,leur mobilité é
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Behrh, Gaganpreet Kaur. "Synthesis and characterization of inorganic luminescent materials." Thesis, Nantes, 2017. http://www.theses.fr/2017NANT4037/document.

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L'objectif de la thèse est de synthétiser et de caractériser les matériaux photoluminescents qui présentent de la luminescence extrinsèque et intrinsèque. Pour les matériaux luminescents extrinsèques, l'objectif était de régler la couleur d'émission de terres rares par deux méthodes: la méthode conventionnelle du dopage / codopage par un ion de terre rare et une nouvelle méthode appelée la réduction contrôlée des dopants. Le dopage a été effectué pour les ions tels que Eu2+, Eu3+ dopés dans la matrice M2Ga2SiO7 (M: Sr, Ca). Mais une telle méthode présente des inconvénients, à savoir pour réali
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Hughes, Victoria A. "Luminescent materials for biomedical and technological applications." Thesis, Swansea University, 2008. https://cronfa.swan.ac.uk/Record/cronfa43025.

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Rofe, Karen. "Photochemical characterisation of some novel luminescent materials." Thesis, Swansea University, 2010. https://cronfa.swan.ac.uk/Record/cronfa43137.

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Utrera, Melero Raquel. "Luminescent mechanochromic materials based on copper iodide clusters." Thesis, Nantes, 2020. http://www.theses.fr/2020NANT4074.

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Les matériaux luminescents dont les propriétés sont modifiables sous l’effet de stimuli externes, présentent des applications potentielles en tant que systèmes de détection. Cette thèse a porté sur l’étude de clusters moléculaires d’iodure du cuivre (I) coordinés par des ligands phosphines, présentant des propriétés de mécanochromisme de luminescence. Ces composés se caractérisent par un changement de leur longueur d’onde d’émission en réponse à une sollicitation mécanique. Ainsi, au cours de cette thèse, de nouveaux clusters ont été synthétisés et caractérisés. L’établissement de relations st
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Books on the topic "Luminescent Materials"

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Barandiarán, Zoila, Jonas Joos, and Luis Seijo. Luminescent Materials. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-94984-6.

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Blasse, G., and B. C. Grabmaier. Luminescent Materials. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79017-1.

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Blasse, G. Luminescent materials. Springer-Verlag, 1994.

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Krasovit͡skiĭ, B. M. Organic luminescent materials. VCH, 1988.

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R, Ronda C., Welker T, Electrochemical Society. Luminescent and Display Materials Division., Electrochemical Society Meeting, International Society of Electrochemistry. Meeting, and International Conference on Luminescent Materials (6th : 1997 : Paris, France), eds. Luminescent materials: Proceedings of the Sixth International Conference on Luminescent Materials. Electrochemical Society, 1998.

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Kitai, Adrian, ed. Luminescent Materials and Applications. John Wiley & Sons, Ltd, 2008. http://dx.doi.org/10.1002/9780470985687.

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Kitai, Adrian. Luminescent materials and applications. John Wiley, 2008.

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Handbook of luminescent semiconductor materials. Taylor & Francis, 2012.

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1940-, Reineker P., Vitukhnovsky A, and Stefan V, eds. Select topics in luminescent materials. Stefan University Press, 2004.

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Rotman, Stanley R., ed. Wide-Gap Luminescent Materials: Theory and Applications. Springer US, 1997. http://dx.doi.org/10.1007/978-1-4615-4100-4.

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Book chapters on the topic "Luminescent Materials"

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Edgar, Andy. "Luminescent Materials." In Springer Handbook of Electronic and Photonic Materials. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-48933-9_38.

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Edgar, Andy. "Luminescent Materials." In Springer Handbook of Electronic and Photonic Materials. Springer US, 2006. http://dx.doi.org/10.1007/978-0-387-29185-7_40.

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Blasse, G., and B. C. Grabmaier. "A General Introduction to Luminescent Materials." In Luminescent Materials. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79017-1_1.

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Blasse, G., and B. C. Grabmaier. "Other Applications." In Luminescent Materials. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79017-1_10.

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Blasse, G., and B. C. Grabmaier. "How Does a Luminescent Material Absorb Its Excitation Energy?" In Luminescent Materials. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79017-1_2.

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Blasse, G., and B. C. Grabmaier. "Radiative Return to the Ground State: Emission." In Luminescent Materials. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79017-1_3.

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Blasse, G., and B. C. Grabmaier. "Nonradiative Transitions." In Luminescent Materials. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79017-1_4.

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Blasse, G., and B. C. Grabmaier. "Energy Transfer." In Luminescent Materials. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79017-1_5.

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Blasse, G., and B. C. Grabmaier. "Lamp Phosphors." In Luminescent Materials. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79017-1_6.

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Blasse, G., and B. C. Grabmaier. "Cathode-Ray Phosphors." In Luminescent Materials. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-642-79017-1_7.

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Conference papers on the topic "Luminescent Materials"

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Weber, Marvin J., J. Wong, R. B. Greegor, F. W. Lytle, and D. R. Sandstrom. "Optically detected x-ray absorption spectroscopy of luminescent materials." In OSA Annual Meeting. Optica Publishing Group, 1989. http://dx.doi.org/10.1364/oam.1989.mgg2.

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X-ray absorption near edge and extended fine structure (EXAFS/XANES) has been observed from luminescence excitation spectra of crystals and glasses using synchrotron radiation. The luminescence may either be intrinsic (recombination radiation from alkaki halides, alkaline earth fluorides, oxides) or from activator ions (rare earths, transition metals, organic dyes) excited directly or indirectly. Core electron excitations of cations and anions in luminescent materials have been investigated in the energy range from the VUV to hard x-rays. Absorption features may appear as an increase or decrea
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de Boer, Dick K. G., Cees R. Ronda, Wilco Keur, and Andries Meijerink. "New luminescent materials and filters for luminescent solar concentrators." In SPIE Solar Energy + Technology, edited by Kaitlyn VanSant and Raed A. Sherif. SPIE, 2011. http://dx.doi.org/10.1117/12.893902.

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Kirm, Marco, Eduard Feldbach, Aleksandr Lushchik, Cheslav Lushchik, Aarne Maaroos, and Tatyana Savikhina. "Luminescent materials with photon multiplication." In International Conference on Advanced Optical Materials and Devices, edited by Andris Krumins, Donats K. Millers, Andris R. Sternberg, and Janis Spigulis. SPIE, 1997. http://dx.doi.org/10.1117/12.266529.

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Kroon, Mark, and R. Stuik. "Luminescent materials for EUV detection purposes." In 26th Annual International Symposium on Microlithography, edited by Elizabeth A. Dobisz. SPIE, 2001. http://dx.doi.org/10.1117/12.436636.

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Ferry, Vivian E. "Nanophotonic Luminescent Solar Concentrators." In Optical Nanostructures and Advanced Materials for Photovoltaics. OSA, 2015. http://dx.doi.org/10.1364/pv.2015.pw3b.1.

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Pan, Jianfeng, Weihong Zhu, Shangfeng Li, and He Tian. "Dendron-functionalized perylenes for red luminescent materials." In Photonics Asia 2004, edited by Gang Yu, Chuangtian Chen, and Changhee Lee. SPIE, 2005. http://dx.doi.org/10.1117/12.600899.

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Knyazev, Andrey, Maxim Karyakin, Dmitry Lapaev, Vladimir Lobkov, and Yury Galyametdinov. "Luminescent materials based on anisometric lanthanide complexes." In IV International Conference on Applications of Optics and Photonics, edited by Manuel Filipe P. Martins Costa. SPIE, 2019. http://dx.doi.org/10.1117/12.2530946.

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Troisi, Alessandro. "Digital materials discovery in organic electronics." In Frontiers in Luminescent Organic Semiconductor Materials and Devices, edited by Andrew P. Monkman, Thomas Penfold, and Eli Zysman-Colman. SPIE, 2023. http://dx.doi.org/10.1117/12.2655610.

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Hoelen, Christoph G. A., Dany A. Benoy, Hugo J. Cornelissen, Alexander V. Vdovin, and Dominiue Bruls. "High brightness light sources based on LD-pumped luminescent converters and LED-pumped luminescent concentrators." In Light-Emitting Devices, Materials, and Applications, edited by Martin Strassburg, Jong Kyu Kim, and Michael R. Krames. SPIE, 2019. http://dx.doi.org/10.1117/12.2511511.

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van der Kolk, E. "Inorganic Rare Earth Based Luminescent Materials for Spectral-conversion and Luminescent Solar Concentrator Applications." In Optics for Solar Energy. OSA, 2012. http://dx.doi.org/10.1364/ose.2012.st4a.1.

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Reports on the topic "Luminescent Materials"

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Cahay, Marc M., S. Bandyopadhyay, D. J. Lockwood, N. Koshida, and J. P. Leburton. Advanced Luminescent Materials and Quantum Confinement: Proceedings of the International Symposium Held in Honolulu, Hawaii on 18-20 October 1999. Defense Technical Information Center, 1999. http://dx.doi.org/10.21236/ada378881.

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Steckl, Andrew J. Novel Luminescent Material and Processes for Optical Devices. Defense Technical Information Center, 1999. http://dx.doi.org/10.21236/ada412709.

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Yukihara, Eduardo G., Joseph J. Talghader, Luiz G. Jacobsohn, and John Ballato. Luminescence Materials as Nanoparticle Thermal Sensors. Defense Technical Information Center, 2016. http://dx.doi.org/10.21236/ad1011725.

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Largent, Craig C. Liquid Contact Luminescence from Semiconductor Laser Materials. Defense Technical Information Center, 1997. http://dx.doi.org/10.21236/ada320372.

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So, Franky. Luminescence in Conjugated Molecular Materials under Sub-bandgap Excitation. Office of Scientific and Technical Information (OSTI), 2014. http://dx.doi.org/10.2172/1130750.

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