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Статті в журналах з теми "Molecular organic conductors"
Donaldson, Laurie. "Excluding molecular dopants improves organic conductors." Materials Today 36 (June 2020): 3–4. http://dx.doi.org/10.1016/j.mattod.2020.04.023.
Повний текст джерелаKadoya, Tomofumi. "Molecular conductors composed from Organic-Transistor Materials." Impact 2020, no. 4 (October 13, 2020): 38–39. http://dx.doi.org/10.21820/23987073.2020.4.38.
Повний текст джерелаKHODORKOVSKY, V., and J. Y. BECKER. "ChemInform Abstract: Molecular Design of Organic Conductors." ChemInform 26, no. 28 (August 17, 2010): no. http://dx.doi.org/10.1002/chin.199528328.
Повний текст джерелаBechgaard, K., and D. Jérome. "Organic Conductors and Organic Superconductivity." Physica Scripta T39 (January 1, 1991): 37–44. http://dx.doi.org/10.1088/0031-8949/1991/t39/004.
Повний текст джерелаKOBAYASHI, Hayao, Reizo KATO, and Akiko KOBAYASHI. "Molecular conductors - From isolated molecule to organic superconductor." Nihon Kessho Gakkaishi 27, no. 5 (1985): 314–23. http://dx.doi.org/10.5940/jcrsj.27.314.
Повний текст джерелаHasegawa, Hiroyuki, Susumu Takano, Nobuhiko Miyajima, and Tamotsu Inabe. "Molecular Conductors Comprised of Organic Cations and Phthalocyanines." Molecular Crystals and Liquid Crystals Science and Technology. Section A. Molecular Crystals and Liquid Crystals 285, no. 1 (July 1, 1996): 113–18. http://dx.doi.org/10.1080/10587259608030787.
Повний текст джерелаCaro, Jaume, Susana Garelik, and Albert Figueras. "Anisotropic materials prepared by OCVD: Organic molecular conductors." Chemical Vapor Deposition 2, no. 6 (November 1996): 251–53. http://dx.doi.org/10.1002/cvde.19960020609.
Повний текст джерелаCassoux, P., L. Brossard, M. Tokumoto, H. Kobayashi, A. Moradpour, D. Zhu, M. Mizuno, and E. Yagubskii. "New results on molecular inorganic and organic conductors." Synthetic Metals 71, no. 1-3 (April 1995): 1845–48. http://dx.doi.org/10.1016/0379-6779(94)03076-i.
Повний текст джерелаYoshida, Zen-Ichi, and Toyonari Sugimoto. "New Donors for Molecular Organic (Super)Conductors and Ferromagnets." Angewandte Chemie 100, no. 11 (November 1988): 1633–37. http://dx.doi.org/10.1002/ange.19881001148.
Повний текст джерелаYoshida, Zen-ichi, and Toyonari Sugimoto. "New Donors for Molecular Organic(Super)Conductors and Ferromagnets." Angewandte Chemie International Edition in English 27, no. 11 (November 1988): 1573–77. http://dx.doi.org/10.1002/anie.198815731.
Повний текст джерелаДисертації з теми "Molecular organic conductors"
ASHOKA, SAHADEVAN SUCHITHRA. "Anilate-based Molecular Building Blocks for Metal-Organic Frameworks and Molecular Conductors." Doctoral thesis, Università degli Studi di Cagliari, 2019. http://hdl.handle.net/11584/260592.
Повний текст джерелаTaniguchi, Masateru. "Studies on Structures and Physical Properties of Organic Molecular Conductors." Kyoto University, 2001. http://hdl.handle.net/2433/150659.
Повний текст джерелаBranton, Philip Michael. "Molecular design of inorganic materials." Thesis, University of Surrey, 1998. http://epubs.surrey.ac.uk/844618/.
Повний текст джерелаAshoka, Sahadevan Suchithra. "Anilate-based molecular building blocks for metal-organic frameworks and molecular conductors Conducting Anilate-Based Mixed-Valence Fe(II)Fe(III) Coordination Polymer: Small-Polaron Hopping Model for Oxalate-Type Fe(II)Fe(III) 2D Networks Nanosheets of Two-Dimensional Neutral Coordination Polymers Based on Near-Infrared-Emitting Lanthanides and a Chlorocyananilate Ligand." Thesis, Angers, 2019. http://bu.univ-angers.fr/Contact.
Повний текст джерелаThis work reports on the design, synthesis and characterization of novel anilate-based functional molecular materials showing luminescent, magnetic and/or conducting properties. The family of anilate ligands comprises several derivatives obtained by introducing various substituents (H, F, Cl, Br, I, CN, etc.) at the 3 and 6 positions of the common 2,5-dihydroxy-1,4-benzoquinone framework. Among the anilate ligands, the only known heterosubstituted anilate with Cl/CN substituents at the 3,6 positions, ClCNAn2-, have been selected for preparing a novel family of 2D layered coordination polymers (2D CP) with both 3d metal ions and 4f lanthanide ions, through a general and straightforward synthetic strategy. i) Mixed-valence FeIIFeIII 2D CP, formulated as [TAG][FeIIFeIII(ClCNAn)3], containing, the tris(amino)-guanidinium (TAG) cation for the first time in such 2D networks has been synthesized and thoroughly characterized. ii) 2D CPs based on NIR-emitting lanthanides (YbIII, NdIII, ErIII) and the ClCNAn2- ligand, have been prepared and characterized. These layered compounds were exfoliated to nanosheets, by sonication-assisted solution synthesis. Time-resolved photoluminescence studies performed on both the bulk and nanosheets are also highlighted. iii) Novel family of heteroleptic 2D CPs based on NIR-emitting lanthanides and mixed ligands (ClCNAn2- and carboxylate ligands (DOBDC and F4-BDC)), were prepared and characterized. vi) Novel family of 2D CPs based on DyIII and ClCNAn2- were prepared in order to investigate their magnetic properties. v) Furthermore, the ability of anilate ligands to work as components of BEDT-TTF- based molecular conductors have been demonstrated through the synthesis, via electrocrystallization technique. vi) П-d hybrid multifunctional paramagnetic molecular conductors BEDT-TTF and [Fe(ClCNAn)3]3-) were also studied
Allain, Magali. "Études structurales par diffraction des rayons X appliquées à des cages supramoléculaires et à des conducteurs moléculaires." Electronic Thesis or Diss., Rennes 1, 2022. http://www.theses.fr/2022REN1S081.
Повний текст джерелаThe discrete self-assembled metal assisted structures are big size edifices which do not crystallize easily and decompose rapidly. Moreover, the resolution of these structures is difficult because of the medium quality of the diffraction data sets. Different crystals selection techniques and a refinement method, applied to the supramolecular cages, are discussed, with a particular focus on the use of the Squeeze program which allows the suppression of the disordered atoms and molecules contributions. Two types of isolated and interlocked cages are structurally described. In the second part, a series of new organic conducting materials based on TMTSF and on TTF derivatives, incorporating a novel fluoro-tantalate anion, is described. The structure-conducting properties relationship is discussed. The first Bechgaard phase with a magnetic anion, namely hexafluororhenate, is described, together with its temperature dependent stability and conducting properties. TMTSF and BEDT-TTF have been associated to several mixed tantalum, rhenium or phosphorous hexafluoro anions to provide new conducting alloys. These syntheses also afforded crystalline materials with original anions. Two methods to estimate the oxydation state of the TMTSF donors are compared for several radical cation salts, either prepared during this PhD work or selected from a crystallographic data base
Dhakal, Pashupati. "Angular Magnetoresistance Oscillations in the Molecular Organic Conductor (DMET)2I3: Experiment and Calculation." Thesis, Boston College, 2010. http://hdl.handle.net/2345/1566.
Повний текст джерелаQuasi-one dimensional (Q1D) molecular organic conductors are among the most exciting materials in condensed matter physics, exhibiting nearly every known ground state. They are highly anisotropic, structurally and electronically, and show large oscillatory phenomena in conductivity for magnetic field rotated in different crystalline planes. Several theoretical works have been published to explain these angular magnetoresistance oscillation (AMRO) effects, but the underlying physics remains illunderstood. Here, we present measurements and calculations of magnetotransport in the molecular organic (super)conductor (DMET)2I3 which detect and simulate all known AMRO phenomena for Q1D systems. Employing, for the first time, the true triclinic crystal structure in the calculations, these results address the mystery of the putative vanishing of the primary AMRO phenomenon, the Lebed magic angle effect, for orientations in which it is expected to be strongest. They also show a common origin for Lebed and so-called "Lee-Naughton" oscillations, and confirm the generalized nature of AMRO in Q1D systems. Furthermore, we report the temperature dependence of the upper critical magnetic field in (DMET)2I3, for magnetic field applied along the intrachain, interchain, and interplane directions. The upper critical field exhibits orbital saturation at low temperature for field in all directions, implying that superconductivity in (DMET)2I3 is conventional spin singlet
Thesis (PhD) — Boston College, 2010
Submitted to: Boston College. Graduate School of Arts and Sciences
Discipline: Physics
Galbiati, Marta. "Molecular Spintronics : from Organic Semiconductors to Self-Assembled Monolayers." Thesis, Paris 11, 2014. http://www.theses.fr/2014PA112158/document.
Повний текст джерелаThis thesis targets the field of molecular spintronics and more particularly the new spin polarization tailoring opportunities, unachievable with inorganic materials, which arise from the ferromagnetic metal/molecule hybridization at the interface.: the new concept of Spinterface.In a first part we investigate Self-Assembled Monolayers (SAMs) based magnetic tunnel nanojunctions. This system appears to be a highly promising candidate to engineer the properties of spintronics devices at the molecular level since SAMs are the equivalent of a molecular LEGO building unit. We present the functionalization of the half-metallic manganite (La,Sr)MnO3 (LSMO) with alkyl phosphonic acids SAMs and the fabrication of LSMO/SAMs/Co magnetic tunnel nanojunctions with an area of few 10 nm2. MR of 30% to 50% is observed in most of the devices, while we report even up to 250% tunnel magnetoresistance (TMR) at low temperature. The most striking point is the robustness of the signal with bias voltage with still 20% TMR observed in the volt range. The influence of the molecular chain length is also investigated and represents a first step towards achieving molecular tailoring.In a second part we develop organic spintronics devices relying on high Curie temperature metallic ferromagnetic electrodes and standard organic semiconductor such as Co/Alq3/Co organic spin valves (OSVs). Junctions have a large area (section of 50 or 100 µm) and are fabricated in-situ by shadow mask. Magnetoresistance (MR) effects at room temperature are investigated with -4% MR observed in Co/Alq3/Co OSVs and +8% MR in Co/MgO/Alq3/Co OSVs. The role of the two interfaces on the spin polarization properties of the devices is also investigated. A stronger spin-dependent hybridization is found to occur at the bottom Co/Alq3 interface inverting the spin polarization on the first molecular layer. The observation of spin polarization inversion at room temperature demonstrates that spinterface effects can strive up to room temperature
Lattach, Youssef. "Development and characterization of sensing layers based on molecularly imprinted conducting polymers for the electrochemical and gravimetrical detection of small organic molecules." Phd thesis, Conservatoire national des arts et metiers - CNAM, 2011. http://tel.archives-ouvertes.fr/tel-00699628.
Повний текст джерелаDahlstedt, Emma. "Synthesis of Electroactive Molecules Based on Benzodioxins and Tetrathiafulvalenes." Doctoral thesis, KTH, Chemistry, 2003. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-3601.
Повний текст джерелаThis thesis deals with the synthesis of electroactiveorganic compounds. The synthesis of ethylenedioxy-benzodioxinstri-dioxin and tetra-dioxin are described. These molecules wereprepared with the aim of creating donor molecules for cationicradical salts. The symmetric analogs of tri-dioxin,methylenedioxy-derivative and ethylenedioxy-naphthalene werealso synthesized. Three different cation radical salts with 2:1stoichiometries were obtained from tri-dioxin, whiletetra-dioxin merely provided polycrystalline materials.Tri-dioxin and tetra-dioxin were also successful as operationalmatrixes in PALDI-TOF.
Tetrathiafulvalenes with the2-dialkyl-amino-1,3-dithiolium-4-thiolate mesoion asbuilding-block was also synthesized. A series of doublyalkylthiol-substituted TTFs were prepared with the aim offorming self-assembly monolayers on gold surfaces in theapplication of organic thin film field-effect transistors.Film-formation for two TTFs were studied and they providedrelatively dense packed monolayers with a discrete distance ofthe TTF moiety from the gold surface.
The mesoionic compound was also for the first time used inanumpolungreaction. The electrophile obtained in situ bytreatment of mesoion with sulfuryl chloride was reacted with avariety of electron-rich aromatic compounds. From the receivedproducts three new arylthio-substituted TTFs weresynthesized.
Keywords:Synthesis, Benzodioxin, Tetrathiafulvalene,Mesoion, Organic Conductor, Cation Radical Salt, CyclicVoltammetry, Electrocrystallization, Self-Assembly Monolayer,SAM, Organic Field-Effect Transistor, OFET
Magri, Andrea. "Multifunctional complexes for molecular devices." Thesis, Strasbourg, 2014. http://www.theses.fr/2014STRAE036/document.
Повний текст джерелаAluminum-based organic semiconductors (OSCs) were systematically synthesized and studied by photophysical and electrochemical methods to identify a relationship between their chemical structure and electronic properties, using Alq3 as benchmark. Experimental HOMO and LUMO were compared to those computed. In addition, newly developed methods were implemented to generate morphologies and calculate charge carrier mobilities. The hole mobility of Al(Op)3 was measured in thin film transistors: 0.6-2.1×10−6 cm2V−1s−1. By photoemission spectroscopy techniques, the Co/Al(Op)3 hybrid interface was probed. Two hybrid interface states (HISs) were unraveled; the SP (spin polarization) of HIS1 is 8% higher than bare cobalt, whereas the SP of HIS2 is 4% lowered. At last, phenalenyl-based dysprosium SMMs (single-molecule magnet) were investigated. [Dy(Op)2Cl(HOp)(EtOH)] showed an energy gap of 43.8K and a quantum relaxation time of 5x10-4s
Книги з теми "Molecular organic conductors"
Ouahab, Lahcène, and Eduard Yagubskii, eds. Organic Conductors, Superconductors and Magnets: From Synthesis to Molecular Electronics. Dordrecht: Springer Netherlands, 2004. http://dx.doi.org/10.1007/978-94-007-1027-6.
Повний текст джерелаOuahab, Lahcène. Organic Conductors, Superconductors and Magnets: From Synthesis to Molecular Electronics. Dordrecht: Springer Netherlands, 2004.
Знайти повний текст джерелаRoth, S. One-dimensional metals: Conjugated polymers, organic crystals, carbon nanotubes. 2nd ed. Weinheim: Wiley-VCH, 2004.
Знайти повний текст джерелаBruce, Duncan W., Dermot O'Hare, and Richard I. Walton. Molecular materials. Hoboken, N.J: Wiley, 2010.
Знайти повний текст джерела1945-, Saito G., and Pacifichem 2005 (2005 : Honolulu, Hawaii), eds. Multifunctional conducting molecular materials. Cambridge: RSC Publishing, 2007.
Знайти повний текст джерела1954-, Nalwa Hari Singh, ed. Handbook of organic conductive molecules and polymers. Chichester: Wiley, 1997.
Знайти повний текст джерелаEnoki, Toshiaki, Gunzi Saito, Fred Wudl, Robert C. Haddon, and Katsumi Tanigaki. Multifunctional Conducting Molecular Materials. Royal Society of Chemistry, The, 2007.
Знайти повний текст джерела(Editor), R. Farchioni, and G. Grosso (Editor), eds. Organic Electronic Materials : Conjugated Polymers and Low Molecular Weight Organic Solids (Springer Series in Materials Science) (Springer Series in Materials Science). Springer, 2001.
Знайти повний текст джерелаCarroll, David, and Siegmar Roth. One-Dimensional Metals: Conjugated Polymers, Organic Crystals, Carbon Nanotubes. Wiley & Sons, Limited, John, 2005.
Знайти повний текст джерелаЧастини книг з теми "Molecular organic conductors"
Khodorkovsky, Vladimir, and James Y. Becker. "Molecular Design of Organic Conductors." In Organic Conductors, 75–114. Boca Raton: CRC Press, 2022. http://dx.doi.org/10.1201/9780367811907-3.
Повний текст джерелаMatsumoto, Mutsuyoshi, Hiroaki Tachibana, and Takayoshi Nakamura. "Applications of Organic Conductors: Molecular Electronics." In Organic Conductors, 759–90. Boca Raton: CRC Press, 2022. http://dx.doi.org/10.1201/9780367811907-16.
Повний текст джерелаde Caro, Dominique, Christophe Faulmann, and Lydie Valade. "Nanoparticles of Organic Conductors." In Molecular Materials, 127–51. Boca Raton, FL : CRC Press, [2017]: CRC Press, 2017. http://dx.doi.org/10.1201/9781315118697-6.
Повний текст джерелаAkai-Kasaya, Megumi. "Coulomb-Blockade in Low-Dimensional Organic Conductors." In Molecular Architectonics, 111–34. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-57096-9_6.
Повний текст джерелаDelhaes, P., and L. Ducasse. "Magnetic Properties of Organic Conductors and Superconductors." In Molecular Magnetism: From Molecular Assemblies to the Devices, 473–502. Dordrecht: Springer Netherlands, 1996. http://dx.doi.org/10.1007/978-94-017-2319-0_18.
Повний текст джерелаKartsovnik, M. V. "Interlayer Magnetoresistance in Layered Organic Conductors." In Molecular Low Dimensional and Nanostructured Materials for Advanced Applications, 159–68. Dordrecht: Springer Netherlands, 2002. http://dx.doi.org/10.1007/978-94-010-0349-0_15.
Повний текст джерелаCoronado, E., J. R. Galán-Mascarós, A. Murcia-Martínez, F. M. Romero, and A. Tarazón. "Multifuctionality in Molecular Conductors and Magnets." In Organic Conductors, Superconductors and Magnets: From Synthesis to Molecular Electronics, 127–42. Dordrecht: Springer Netherlands, 2004. http://dx.doi.org/10.1007/978-94-007-1027-6_8.
Повний текст джерелаKurmoo, M., D. R. Talham, and P. Day. "Electron Paramagnetic Resonance of Organic Conductors (BEDT-TTF)2X." In Lower-Dimensional Systems and Molecular Electronics, 169–73. Boston, MA: Springer US, 1990. http://dx.doi.org/10.1007/978-1-4899-2088-1_12.
Повний текст джерелаKobayashi, Hayao, Yoshinori Okano, Hideki Fujiwara, Hisashi Tanaka, Madoka Tokumoto, Wakako Suzuki, Emiko Fujiwara, and Akiko Kobayashi. "Development of Single-Component Molecular Metals and Magnetic Molecular Superconductors." In Organic Conductors, Superconductors and Magnets: From Synthesis to Molecular Electronics, 81–98. Dordrecht: Springer Netherlands, 2004. http://dx.doi.org/10.1007/978-94-007-1027-6_5.
Повний текст джерелаEnoki, Toshiaki, Masashi Aimatsu, Hisashi Yamazaki, Kazuki Okabe, Junichi Nishijo, Kengo Enomoto, Akira Miyazaki, et al. "Unconventional Properties of TTF-Based Organic Magnetic Conductors." In Organic Conductors, Superconductors and Magnets: From Synthesis to Molecular Electronics, 113–26. Dordrecht: Springer Netherlands, 2004. http://dx.doi.org/10.1007/978-94-007-1027-6_7.
Повний текст джерелаТези доповідей конференцій з теми "Molecular organic conductors"
Cassoux, P., L. Brossard, M. Tokumoto, H. Kobayashi, A. Moradpour, D. Zhu, M. Mizuno, and E. Yagubskii. "New results on molecular inorganic and organic conductors." In International Conference on Science and Technology of Synthetic Metals. IEEE, 1994. http://dx.doi.org/10.1109/stsm.1994.835657.
Повний текст джерелаLaukhina, Elena, Victor Lebedev, Vladimir Laukhin, Gerard Oncins, Raphael Pfattner, Concepcio Rovira, and Jaume Veciana. "Lightweight biocompatible physical sensors: Polymeric films “self-metallized” with organic molecular conductors." In TRANSDUCERS 2011 - 2011 16th International Solid-State Sensors, Actuators and Microsystems Conference. IEEE, 2011. http://dx.doi.org/10.1109/transducers.2011.5969193.
Повний текст джерелаFork, R. L., C. H. Brito Cruz, P. C. Becker, and C. V. Shank. "Continuum spectroscopy using optical pulses of 6-fs duration." In OSA Annual Meeting. Washington, D.C.: Optica Publishing Group, 1987. http://dx.doi.org/10.1364/oam.1987.thd5.
Повний текст джерелаLee, R. A., and T. R. Lundquist. "Low Resistivity FIB Depositions Within High Aspect Ratio Holes." In ISTFA 1996. ASM International, 1996. http://dx.doi.org/10.31399/asm.cp.istfa1996p0085.
Повний текст джерелаLaukhina, Elena, Raphael Pfattner, Marta Mas-Torrent, Concepcio´ Rovira, Jaume Veciana, and Vladimir Laukhin. "Flexible Film-Based Sensors Structured with a High Piezoresistive Organic Molecular Conductor as an Active Component." In 2010 First International Conference on Sensor Device Technologies and Applications (SENSORDEVICES). IEEE, 2010. http://dx.doi.org/10.1109/sensordevices.2010.9.
Повний текст джерела