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Artykuły w czasopismach na temat "Organic matrix"

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Veis, A. "Mineralization in Organic Matrix Frameworks". Reviews in Mineralogy and Geochemistry 54, nr 1 (1.01.2003): 249–89. http://dx.doi.org/10.2113/0540249.

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Matsushita, Yohsuke, Hiroyuki Shimada, Takuya Miyashita, Miki Shibata, Shigeki Naka, Hiroyuki Okada i Hiroyoshi Onnagawa. "Organic Bi-function Matrix Array". Japanese Journal of Applied Physics 44, nr 4B (21.04.2005): 2826–29. http://dx.doi.org/10.1143/jjap.44.2826.

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Nausieda, I., Ryu Kyungbum, I. Kymissis, A. I. Akinwande, V. Bulovic i C. G. Sodini. "An Organic Active-Matrix Imager". IEEE Transactions on Electron Devices 55, nr 2 (luty 2008): 527–32. http://dx.doi.org/10.1109/ted.2007.913081.

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Sakaguchi, Yoshikazu, Hiroshi Tada, Kenji Mori, Yuichi Iketsu i Joji Suzuki. "Color Passive-matrix Organic Electroluminescent Displays." Journal of Photopolymer Science and Technology 15, nr 2 (2002): 247–52. http://dx.doi.org/10.2494/photopolymer.15.247.

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Kim, Eunjin, Jisu Kim, Inseong Choi, Jeongwook Lee i Woon-Seok Yeo. "Organic matrix-free imaging mass spectrometry". BMB Reports 53, nr 7 (31.07.2020): 349–56. http://dx.doi.org/10.5483/bmbrep.2020.53.7.078.

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Kobayashi, Iwao, i Tetsuro Samata. "Bivalve shell structure and organic matrix". Materials Science and Engineering: C 26, nr 4 (maj 2006): 692–98. http://dx.doi.org/10.1016/j.msec.2005.09.101.

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ZURER, PAMELA. "Nanowires isolated in organic polymer matrix". Chemical & Engineering News 74, nr 34 (19.08.1996): 38. http://dx.doi.org/10.1021/cen-v074n034.p038.

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Pribat, D., i F. Plais. "Matrix addressing for organic electroluminescent displays". Thin Solid Films 383, nr 1-2 (luty 2001): 25–30. http://dx.doi.org/10.1016/s0040-6090(00)01645-x.

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Arai, Michio, Kenji Nakaya, Osamu Onitsuka, Tetsushi Inoue, Mitsufumi Codama, Masaru Tanaka i Hiroshi Tanabe. "Passive matrix display of organic LEDs". Synthetic Metals 91, nr 1-3 (grudzień 1997): 21–25. http://dx.doi.org/10.1016/s0379-6779(97)03968-4.

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Zhu, Bizhong, Yuhong Wu, Herschel H. Reese, Dimitris E. Katsoulis i Frederick J. McGarry. "Silicone-Organic Resin Hybrid Matrix Composites". Macromolecular Materials and Engineering 291, nr 9 (15.09.2006): 1052–60. http://dx.doi.org/10.1002/mame.200600042.

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Rozprawy doktorskie na temat "Organic matrix"

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Maccarone, Alan T. "Infrared spectroscopy of matrix isolated organic peroxyl radicals". Connect to online resource, 2007. http://gateway.proquest.com/openurl?url_ver=Z39.88-2004&rft_val_fmt=info:ofi/fmt:kev:mtx:dissertation&res_dat=xri:pqdiss&rft_dat=xri:pqdiss:3284492.

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Meyer, Jens. "Transparent organic light emitting diodes for active matrix displays". Göttingen Cuvillier, 2008. http://d-nb.info/994852428/04.

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Lisuwandi, Eko T. 1977. "Feedback circuit for organic LED active-matrix display drivers". Thesis, Massachusetts Institute of Technology, 2002. http://hdl.handle.net/1721.1/16849.

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Thesis (M.Eng.)--Massachusetts Institute of Technology, Dept. of Electrical Engineering and Computer Science, 2002.
Includes bibliographical references (leaves 44-45).
This electronic version was submitted by the student author. The certified thesis is available in the Institute Archives and Special Collections.
A feedback circuit for an Organic Light Emitting Diode (OLED) based display is proposed and demonstrated. An OLED-based flat panel display is brighter, much lower power, has no viewing angle limitation and potentially cheaper compared to available Liquid Crystal (LC) based displays. Despite these advantages, an OLED-based display is not widely commercialized mainly due to its short practical lifetime. The I-V characteristics of the individual OLED pixels vary over time, temperature and processing-dependent parameters. Moreover, the variation is not uniform across an array of OLED pixels, causing OLED based displays to lose brightness accuracy after a few thousand hours of operation. The proposed feedback circuit is used to compensate for the non-uniformities in the individual OLED characteristics. The resulting display leverages the beneficial aspects of OLED display technology, while maintaining pixel uniformity and grayscale reproducibility. A demonstration system is built proving the feasibility of a flat panel display using direct optical feedback. The feedback loop monitors the output light level using a sensor and adjusts the current fed to the pixels to set the output light power to a digitally set reference level. The system shares a single feedback loop among a number of pixels, saving power and real estate. The demonstration system consists of a 5x5 array of LEDs, a CMOS camera, analog pixel circuitry, driver and feedback loop, as well as a digital controller. The demonstration system also shows the feasibility of time-sharing a feedback loop among a number of output devices.
by Eko T. Lisuwandi.
M.Eng.
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Abraham, C. J. "Trace-element analysis of metallic and organic matrix materials exploiting RIMS". Thesis, Swansea University, 1998. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.635842.

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Sputter initiated Resonance Ionisation Spectroscopy (SIRIS) was used to perform trace analysis for a number of elements in various matrices. The system consisted of a reflection time of flight (ToF) mass spectrometer combined with a duoplasmatron primary ion source which was coupled to a Nd:YAG pumped dye laser. External electronics were constructed to synchronise precisely the timing of the laser pulse, primary ion source and dual channel plate detector. The present set-up allowed the utilisation of the simplest of all ionisation routes, namely the one-colour, two-photon RIS schemes. The elements titanium, chromium, nickel, molybdenum, iron and tin were photo-ionised in the 290-300 nm and 280-290 nm range. Various resonances for these elements were obtained providing valuable information on efficient RIS routes, which could be used in trace analysis. The sensitivity of the RIMS technique was demonstrated by the detection of 15 ppm of iron in a nickel host, with an ultimate detection limit of less than 5ppb. Trace detection of potentially toxic elements such as iron and aluminium in brain homogenate tissue was demonstrated for samples, with concentrations of 100 ppm of aluminium and 400 ppm of iron: detection was possible without isobaric interferences. These elements have been linked to the neurological disorders of Alzheimer's disease and Parkinsonian dementia. In a separate application, the detection of 480 ppm of tin in an insulator of silicone gum is shown, demonstrating the diverse range of samples which can be analysed using RIMS. A brief review of the theoretical modelling for ion sputtering and the process of resonance ionisation is given, including the benefits and limitations of the various methods.
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Shahid, Salman. "Polymer-Metal Organic Frameworks (MOFs) Mixed Matrix Membranes For Gas Separation Applications". Thesis, Montpellier, 2015. http://www.theses.fr/2015MONTS141/document.

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Le comportement plastifiant de polymères purs a été bien étudié dans la littérature. Toutefois, il n'y a eu que peu d'études concernant les membranes à matrices mixtes (MMM). Dans le chapitre 2 de cette thèse, le comportement plastifiant de MMM préparés à partir de nanoparticules mésoporeuses Fe(BTC) et du polymère Matrimid® est étudié avec un gaz pur ou en mélange. Les réseaux métaux-organiques (MOF) sous forme particulaires ont présenté une relativement bonne compatibilité avec le polymère. L'incorporation de Fe(BTC) dans du Matrimid® a permis d'augmenter la perméabilité et la sélectivité des membranes. Pour de faibles pressions de 5 bars, les MMM ont une perméabilité au CO2 de 60% plus grande ainsi qu'une sélectivité de 29% plus grande à comparer à la sélectivité idéale de membranes Matrimid®. Il a été observé que la présence de particules Fe(BTC) retardait l'effet plastifiant vers de plus grandes pressions. De plus, cette pression augmente avec le taux de MOF au sein du matériau. Ce retard est attribué à la mobilité réduite des chaînes polymères dans l'entourage des particules Fe(BTC). Egalement, pour des concentrations en MOF plus élevées, les membranes présentent une sélectivité plus ou moins constante sur toute la gamme de pression étudiée. Le chapitre 3 présente ensuite la préparation et le caractère plastifiant des MMMs basées sur trois types de MOFs (MIL-53(Al) (MOF « repirant »), ZIF-8 (MOF « flexible ») and Cu3(BTC)2 (MOF « rigide »)) dispersés dans le Matrimid®. Les performances en gaz pur ou en mélange ont été étudiées en fonction de la quantité de MOF introduite. Parmi les trois systèmes MOF-MMM, les membranes avec le Cu3(BTC)2 ont présenté la plus haute sélectivité alors que les membranes avec du ZIF-8 ont montré une plus grande perméabilité. Ces améliorations sont essentiellement le fait de la structure cristalline du MOF et de son interaction avec les molécules de CO2. Le chapitre 4 décrit la préparation de membranes à base de mélange Matrimid® polyimide (PI)/polysulfone (PSF) contenant des particules de ZIF-8 pour la séparation gazeuse à haute pression. Un mélange optimisé avec un rapport PI/PSF de 3:1 a été utilisé pour une étude sur la stabilité et la performance de ces MMMs incorporant différentes concentration de ZIF-8. PI et PSF étant miscibles, une bonne compatibilité avec les particules de ZIF-8 est observée. Les MMMs PI/PSF-ZIF-8 ont démontré une amélioration significative de la perméabilité en CO2 lors de l'augmentation de la concentration en ZIF-8, ce qui a été attribué à une augmentation modérée de la capacité de sorption et à une diffusion plus rapide au travers des particules de ZIF-8. Lors des mesures en gaz purs, les membranes PI/PSF (3:1) ont présenté une plastification vers 18 bars alors que l'introduction de ZIF-8 repousse cette valeur à 25 bars. En mélange de gaz, les MMMs PI/PSF-ZIF-8 ont abouti à une suppression de la plastification comme l'a confirmé une mesure constante de la perméabilité et de la sélectivité du CH4, et cet effet est plus accentué avec l'augmentation de la concentration en ZIF-8. Les résultats en séparation des gaz avec les MMMs PI/PSF-ZIF-8 montrent une performance supérieure à celle du Matrimid® ce qui laisse augurer un élargissement du spectre d'application de ces membranes, particulièrement pour la séparation du CO2 à haute pression. Dans le chapitre 5, une nouvelle voie de préparation des MMMs via la fusion contrôlée de particules a été introduite. La modification du Matrimid® par du 1-(3-aminopropyl)-imidazole a permis d'améliorer considérablement la compatibilité avec les particules de ZIF-8. Il a ainsi été possible de préparer des MMMs contenant 30% de MOF sans perte de sélectivité. En augmentant la concentration en ZIF-8, les MMMs ont de meilleures performances dans la séparation de mélange CO2/CH4 à comparer au polymère initial. La perméabilité a augmenté de plus de 200% avec une augmentation de 65% de sélectivité pour le mélange CO2/CH4
The plasticization behavior of pure polymers is well studied in literature. However, there are only few studies on the plasticization behavior of mixed matrix membranes. In Chapter 2 of this thesis, pure and mixed gas plasticization behavior of MMMs prepared from mesoporous Fe(BTC) nanoparticles and the polymer Matrimid® is investigated. All experiments were carried with solution casted dense membranes. Mesoporous Fe(BTC) MOF particles showed reasonably good compatibility with the polymer. Incorporation of Fe(BTC) in Matrimid® resulted in membranes with increased permeability and selectivity. At low pressures of 5 bar the MMMs showed an increase of 60 % in CO2 permeability and a corresponding increase of 29 % in ideal selectivity over pure Matrimid® membranes. It was observed that the presence of Fe(BTC) particles increases the plasticization pressure of Matrimid® based MMMs. Furthermore, this pressure increases more with increasing MOF loading. This delay in plasticization is attributed to the reduced mobility of the polymer chains in the vicinity of the Fe(BTC) particles. Also, at higher Fe(BTC) loadings, the membranes showed more or less constant selectivity over the whole pressure range investigated. Chapter 3 subsequently presented the preparation and plasticization behavior of MMMs based on three distinctively different MOFs (MIL-53(Al) (breathing MOF), ZIF-8 (flexible MOF) and Cu3(BTC)2 (rigid MOF)) dispersed in Matrimid®. The ideal and mixed gas performance of the prepared MMMs was determined and the effect of MOF structure on the plasticization behavior of MMMs was investigated. Among the three MOF-MMMs, membranes based on Cu3(BTC)2 showed highest selectivity while ZIF-8 based membranes showed highest permeability. The respective increase in performance of the MMMs is very much dependent on the MOF crystal structure and its interactions with CO2 molecules. Chapter 4 described the preparation of Matrimid® polyimide (PI)/polysulfone (PSF)-blend membranes containing ZIF-8 particles for high pressure gas separation. An optimized PI/PSF blend ratio (3:1) was used and performance and stability of PI/PSF mixed matrix membranes filled with different concentrations of ZIF-8 were investigated. PI and PSF were miscible and provided good compatibility with the ZIF-8 particles, even at high loadings. The PI/PSF-ZIF-8 MMMs showed significant enhancement in CO2 permeability with increased ZIF-8 loading, which was attributed to a moderate increase in sorption capacity and faster diffusion through the ZIF-8 particles. In pure gas measurements, pure PI/PSF blend (3:1) membranes showed a plasticization pressure of ~18 bar while the ZIF-8 MMMs showed a higher plasticization pressures of ~25 bar. Mixed gas measurements of PI/PSF-ZIF-8 MMMs showed suppression of plasticization as confirmed by a constant mixed gas CH4 permeability and a nearly constant selectivity with pressure but the effect was stronger at high ZIF-8 loadings. Gas separation results of the prepared PI/PSF-ZIF-8 MMMs show an increased commercial viability of Matrimid® based membranes and broadened their applicability, especially for high-pressure CO2 gas separations. In Chapter 5, a novel route for the preparation of mixed matrix membranes via a particle fusion approach was introduced. Surface modification of the polymer with 1-(3-aminopropyl)-imidazole led to an excellent ZIF-8-Matrimid® interfacial compatibility. It was possible to successfully prepare MMMs with MOF loadings as high as 30 wt.% without any non-selective defects. Upon increasing the ZIF-8 loading, MMMs showed significantly better performance in the separation of CO2/CH4 mixtures as compared to the native polymer. The CO2 permeability increased up to 200 % combined with a 65 % increase in CO2/CH4 selectivity, compared to the native Matrimid®. Chapter 6 finally discussed the conclusions and directions for future research based on the findings presented in this thesis
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Ameye, Laurent. "Control of biomineralization in echinoderms :ultrastructure and cytochemistry of the organic matrix". Doctoral thesis, Universite Libre de Bruxelles, 1999. http://hdl.handle.net/2013/ULB-DIPOT:oai:dipot.ulb.ac.be:2013/211943.

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Ude, Mba. "Supercritical fluid extraction of organic species through polymeric systems". Thesis, Imperial College London, 1999. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.314376.

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Franks, Jeff. "Sample introduction into ICP-MS systems". Thesis, University of Hull, 1994. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.262437.

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Xie, Wanqin Ph D. Massachusetts Institute of Technology. "Free approximation of transport properties in organic system using Stochastic Random Matrix Theory". Thesis, Massachusetts Institute of Technology, 2014. http://hdl.handle.net/1721.1/93040.

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Thesis: S.M., Massachusetts Institute of Technology, Department of Chemistry, 2014.
Cataloged from PDF version of thesis.
Includes bibliographical references (pages 44-48).
The proposed research is a study and application of Stochastic analysis- Random Matrix Theory(RMT) to fast calculate the transport properties of large static systems with relatively large disorder in mesoscopic size. As a major topic of Random Matrix Theory(RMT), free convolution managed to approximate the distribution of eigenvalues in an Anderson Model.So the next step is trying to expand RMT to approximate other quantities, such as transmission probability, conductivity and etc. Due to the eigenvectors' shifts, RMT works well only for small disorder. System with larger disorder requires to take in account of the changes in eigenvectors directly or through other approximations of the eigenvectors.
by Wanqin Xie.
S.M.
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Keller, Christopher. "Photolysis of 1-(4-azidomethyl-phenyl)-ethanone and matrix/LFP studies of 2-benzoyl-3-methyl-2H-azirine". University of Cincinnati / OhioLINK, 2005. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1121442210.

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Książki na temat "Organic matrix"

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Gigliotti, Marco, Marie-Christine Lafarie-Frenot, Jean-Claude Grandidier i Matteo Minervino. Mechanical Behavior of Organic Matrix Composites. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2018. http://dx.doi.org/10.1002/9781119388838.

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Cole, K. C. Physicochemical characterization of high-performance fibre-reinforced organic-matrix composites. Part 6. Methods for quality control of matrix chemistry. Boucherville, Que: Industrial Materials Research Institute, National Research Council Canada, 1988.

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service), SpringerLink (Online, red. Density Matrix Theory and Applications. Wyd. 3. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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Campfens, Jan. A fugacity-based matrix model of organic contaminant behaviour in aquatic food webs. Ottawa: National Library of Canada, 1994.

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Rowe, Barbara L. Volatile organic compound matrix spike recoveries for ground- and surface-water samples, 1997-2001. Reston, Va: U.S. Geological Survey, 2005.

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Gidopoulos, N. I. The Fundamentals of Electron Density, Density Matrix and Density Functional Theory in Atoms, Molecules and the Solid State. Dordrecht: Springer Netherlands, 2003.

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You ji hua xue: Gong Zhong yao zhuan ye yong. Shanghai: Shanghai ke xue ji shu chu ban she, 1986.

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Yarnell, Eric. Phytochemistry and pharmacy for practitioners of botanical medicine. Wenatchee, Wa: Healing Mountain Pub., 2003.

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Musch, Hans. Die Orgel von Matthäus Abbrederis 1690/91 in Neu St. Johann. Näfels: Orgelbau M. Mathis & Söhne, 1993.

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Weidinger, Hermann-Josef. Grüne Oase ums Haus: Das Gartenbuch des Kräuterpfarrers. St. Pölten: Niederösterreichisches Pressehaus, 1995.

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Części książek na temat "Organic matrix"

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Huitema, H. Edzer A., Gerwin H. Gelinck, Erik van Veenendaal, Fred J. Touwslager i Pieter J. G. van Lieshout. "Roll-up Active-matrix Displays". W Organic Electronics, 344–66. Weinheim, FRG: Wiley-VCH Verlag GmbH & Co. KGaA, 2006. http://dx.doi.org/10.1002/3527608753.ch14.

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Nelson, Shelby F., i Lisong Zhou. "Active-matrix Light-emitting Displays". W Organic Electronics, 367–94. Weinheim, FRG: Wiley-VCH Verlag GmbH & Co. KGaA, 2006. http://dx.doi.org/10.1002/3527608753.ch15.

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Zylberberg, Louise. "Bone Cells and Organic Matrix". W Vertebrate Skeletal Histology and Paleohistology, 85–108. Boca Raton: CRC Press, 2021. http://dx.doi.org/10.1201/9781351189590-5.

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Mashinskaya, G. P., i B. V. Perov. "Principles of developing organic-fibre-reinforced plastics for aircraft engineering". W Polymer Matrix Composites, 305–425. Dordrecht: Springer Netherlands, 1995. http://dx.doi.org/10.1007/978-94-011-0515-6_7.

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Veis, Arthur. "9. Mineralization in Organic Matrix Frameworks". W Biomineralization, redaktorzy Patricia M. Dove, James J. De Yoreo i Steve Weiner, 249–90. Berlin, Boston: De Gruyter, 2003. http://dx.doi.org/10.1515/9781501509346-014.

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Colin, X., i J. Verdu. "Humid Ageing of Organic Matrix Composites". W Solid Mechanics and Its Applications, 47–114. Dordrecht: Springer Netherlands, 2013. http://dx.doi.org/10.1007/978-94-007-7417-9_3.

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Rudzinski, Lech, Leslaw Hebda i Boguslaw Turlej. "Flexural Process and Electro-Acoustic Emission of Organic Fibres Reinforced Mortars (OFRM)". W Brittle Matrix Composites 3, 226–33. Dordrecht: Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3646-4_24.

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Gigliotti, Marco. "Hygrothermoelastic Stress in Organic Matrix Composite Materials". W Encyclopedia of Continuum Mechanics, 1248–61. Berlin, Heidelberg: Springer Berlin Heidelberg, 2020. http://dx.doi.org/10.1007/978-3-662-55771-6_94.

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Gigliotti, Marco. "Hygrothermoelastic Stress in Organic Matrix Composite Materials". W Encyclopedia of Continuum Mechanics, 1–13. Berlin, Heidelberg: Springer Berlin Heidelberg, 2017. http://dx.doi.org/10.1007/978-3-662-53605-6_94-1.

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Huitema, Edzer, Gerwin Gelinck, Erik van Veenendaal, Fred Touwslager i Pieter van Lieshout. "Rollable Active Matrix Displays with Organic Electronics". W Flexible Flat Panel Displays, 245–62. Chichester, UK: John Wiley & Sons, Ltd, 2005. http://dx.doi.org/10.1002/0470870508.ch13.

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Streszczenia konferencji na temat "Organic matrix"

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Matsushita, Yohsuke, Hiroyuki Shimada, Takuya Miyashita, Miki Shibata, Shigeki Naka, Hiroyuki Okada i Hiroyoshi Onnagawa. "Organic Bi-Function Matrix Array". W 2004 International Conference on Solid State Devices and Materials. The Japan Society of Applied Physics, 2004. http://dx.doi.org/10.7567/ssdm.2004.a-4-5.

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Tishchenko, A. V., i A. A. Shcherbakov. "Rigorous S-matrix based modeling of OLEDs". W Solid-State and Organic Lighting. Washington, D.C.: OSA, 2010. http://dx.doi.org/10.1364/soled.2010.sotuc3.

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Peng, Boyu, Jiawei Lin i Paddy K. L. Chan. "Flexible transistor active matrix array with all screen-printed electrodes". W SPIE Organic Photonics + Electronics, redaktorzy Zhenan Bao, Iain McCulloch, Ruth Shinar i Ioannis Kymissis. SPIE, 2013. http://dx.doi.org/10.1117/12.2022621.

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Nathan, Arokia. "Design and Integration Challenges of Active Matrix Organic Light Emitting Diode Displays". W Organic Photonics and Electronics. Washington, D.C.: OSA, 2006. http://dx.doi.org/10.1364/ope.2006.optuc1.

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Hatalis, Miltiadis K., Mark J. Stewart, Ching W. Tang i John Burtis. "Polysilicon TFT active matrix organic EL displays". W AeroSense '97, redaktor Darrel G. Hopper. SPIE, 1997. http://dx.doi.org/10.1117/12.276990.

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Zhou, Lisong, Alfred Wanga, Sheng-Chu Wu, Jie Sun, Sungkyu Park, Shelby Nelson, Diane Freeman, Yongtaek Hong i Thomas N. Jackson. "All-organic active matrix OLED flexible display". W Defense and Security Symposium, redaktorzy James C. Byrd, Daniel D. Desjardins, Eric W. Forsythe i Henry J. Girolamo. SPIE, 2006. http://dx.doi.org/10.1117/12.666613.

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Canva, Michael, Anne-Claire Le Duff, Vincent Ricci, Tomas Pliska, George Stegeman i K. Pong Chan. "Effects of the host matrix on near infrared red tail absorption of chromophore doped polymer waveguides". W Organic Thin Films. Washington, D.C.: OSA, 1999. http://dx.doi.org/10.1364/otf.1999.sab3.

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Lee, Sangyun, Hyunsik Moon, Do H. Kim, Bon-Won Koo, Eun-Jeong Jeong, Bang-Lin Lee, Joo-Young Kim i in. "Organic thin-film transistor arrays for active-matrix organic light emitting diode". W Photonic Devices + Applications, redaktorzy Zhenan Bao i David J. Gundlach. SPIE, 2007. http://dx.doi.org/10.1117/12.737008.

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Sano, Takeshi, Yoshiyuki Suzuri, Mitsuhiro Koden, Toshinao Yuki, Hitoshi Nakada i Junji Kido. "Organic Light Emitting Diodes for Lighting Applications". W 2019 26th International Workshop on Active-Matrix Flatpanel Displays and Devices (AM-FPD). IEEE, 2019. http://dx.doi.org/10.23919/am-fpd.2019.8830597.

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Fadeev, V. V., T. A. Dolenko, A. A. Banishev, P. N. Litvinov, D. V. Maslov i E. E. Ostroumov. "Matrix method in laser fluorimetry of organic compounds". W OPTO-Ireland, redaktorzy Hugh J. Byrne, Elfed Lewis, Brian D. MacCraith, Enda McGlynn, James A. McLaughlin, Gerard D. O'Sullivan, Alan G. Ryder i James E. Walsh. SPIE, 2005. http://dx.doi.org/10.1117/12.604954.

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Raporty organizacyjne na temat "Organic matrix"

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Simon, N. J. A review of irradiation effects on organic-matrix insulation. Gaithersburg, MD: National Institute of Standards and Technology, 1993. http://dx.doi.org/10.6028/nist.ir.3999.

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Simon, N. J. A Review of Irradiation Effects on Organic-Matrix Insulation. Office of Scientific and Technical Information (OSTI), czerwiec 1993. http://dx.doi.org/10.2172/761714.

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Pittman, Jr, i Charles U. Vapor Grown Carbon Fiber/Hybrid Organic-Inorganic Matrix Composites. Nanometer-sized Silsesquiozane Phase Chemically Bound in a Matrix. Fort Belvoir, VA: Defense Technical Information Center, kwiecień 2006. http://dx.doi.org/10.21236/ada448639.

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Hanley, L. Mass spectral study of organic sulfur in the polymeric matrix of coal. Office of Scientific and Technical Information (OSTI), styczeń 1991. http://dx.doi.org/10.2172/6011742.

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Parisien, Lia. ECOS E-MATRIX Methane and Volatile Organic Carbon (VOC) Emissions Best Practices Database. Office of Scientific and Technical Information (OSTI), styczeń 2016. http://dx.doi.org/10.2172/1261808.

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Knight, J. A. Evaluation of RTV as a Moldable Matrix When Combined With Molecular Sieve and Organic Hydrogen Getter. Office of Scientific and Technical Information (OSTI), grudzień 2011. http://dx.doi.org/10.2172/1134034.

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Gelis, Artem V. Immobilization of Organic Radioactive and Non-Radioactive Liquid Waste in a Composite Matrix - Final CRADA Report. Office of Scientific and Technical Information (OSTI), styczeń 2016. http://dx.doi.org/10.2172/1329392.

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Pardue, H. L. Synchronous fluorescence/matrix isolation method for trace organic analysis: Annual report, December 1, 1983--November 30, 1984. Office of Scientific and Technical Information (OSTI), marzec 1989. http://dx.doi.org/10.2172/6421674.

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Pardue, H. L. Synchronous fluorescence/matrix isolation method for trace organic analysis: Annual report, December 1, 1984--November 30, 1985. Office of Scientific and Technical Information (OSTI), marzec 1989. http://dx.doi.org/10.2172/6290949.

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Hershey, Ronald L., i Wyatt Fereday. Laboratory Experiments to Evaluate Matrix Diffusion of Dissolved Organic Carbon Carbon-14 in Southern Nevada Fractured-rock Aquifers. Office of Scientific and Technical Information (OSTI), maj 2016. http://dx.doi.org/10.2172/1253607.

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