Academic literature on the topic 'Organic semiconductors – Electric properties'

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Journal articles on the topic "Organic semiconductors – Electric properties"

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CAMPBELL, I. H., and D. L. SMITH. "ELECTRICAL TRANSPORT IN ORGANIC SEMICONDUCTORS." International Journal of High Speed Electronics and Systems 11, no. 02 (2001): 585–615. http://dx.doi.org/10.1142/s0129156401000952.

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Organic semiconductors have processing and performance advantages for low cost and/or large area applications that have led to their rapid commercialization. Organic semiconductors are π conjugated materials, either small molecules or polymers. Their electrical transport properties are fundamentally distinct from those of inorganic semiconductors. Organic semiconductor thin films are amorphous or polycrystalline and their electronic structures consist of a distribution of localized electronic states with different energies. The localized sites are either individual molecules or isolated conjug
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Sulaiman, Khaulah, Zubair Ahmad, Muhamad Saipul Fakir, Fadilah Abd Wahab, Shahino Mah Abdullah, and Zurianti Abdul Rahman. "Organic Semiconductors: Applications in Solar Photovoltaic and Sensor Devices." Materials Science Forum 737 (January 2013): 126–32. http://dx.doi.org/10.4028/www.scientific.net/msf.737.126.

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Organic semiconductor-based solar photovoltaic cells and sensors are scalable, printable, solution processable, bendable and light-weight. Furthermore, organic semiconductors require low energy fabrication process, hence can be fabricated at low cost as light-weight solar cells and sensors, coupled with the ease of processing, as well as compatibility, with flexible substrates. Organic semiconductors have been identified as a fascinating class of novel semiconductors that have the electrical and optical properties of metals and semiconductors. The continuous demand to improve the properties of
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Sánchez-Vergara, Guevara-Martínez, Arreola-Castillo, and Mendoza-Sevilla. "Fabrication of Hybrid Membranes Containing Nylon-11 and Organic Semiconductor Particles with Potential Applications in Molecular Electronics." Polymers 12, no. 1 (2019): 9. http://dx.doi.org/10.3390/polym12010009.

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Chemical degradation is a major disadvantage in the development of organic semiconductors. This work proposes the manufacture and characterization of organic semiconductor membranes in order to prevent semiconductor properties decreasing. Semiconductor membranes consisting of Nylon-11 and particles of π-conjugated molecular semiconductors were manufactured by high-vacuum evaporation followed by thermal relaxation. Initially, and with the aim of obtaining semiconductor particles, bulk heterojunction (BHJ) was carried out using green chemistry techniques between the zinc phthalocyanine (ZnPc) an
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Elshafaie, A., Laila H. Abdel-Rahman, Ahmed M. Abu-Dief, Samar Kamel Hamdan, A. M. Ahmed, and E. M. M. Ibrahim. "Electric, Thermoelectric and Magnetic Properties of Nickel(II) Imine Nanocomplexes." Nano 13, no. 07 (2018): 1850074. http://dx.doi.org/10.1142/s1793292018500741.

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Production of novel organic semiconductor nanomaterials is essential for enabling the development of personal, portable and flexible electronic modules. This work presents Ni(II)-Schiff base complexes with enhanced Seebeck coefficient and weak ferromagnetic ordering for thermoelectric and magnetic devices. Four Ni(II)-Schiff base complexes (namely [Ni(C[Formula: see text]H[Formula: see text]N3O4Br)][Formula: see text]2H2O, [Ni(C[Formula: see text]H[Formula: see text]N3O[Formula: see text]][Formula: see text]2H2O, [Ni(C[Formula: see text]H[Formula: see text]N5O8Br)] and [Ni(C[Formula: see text]
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Tripathi, S. K. "Inorganic/Organic Hybrid Nanocomposite and its Device Applications." Solid State Phenomena 201 (May 2013): 65–101. http://dx.doi.org/10.4028/www.scientific.net/ssp.201.65.

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VI semiconductors are promising nanomaterials for applications as window layers in low-cost and high-efficiency thin film solar cells. These nanoparticles are considered to be the model systems for investigating the unique optical and electronic properties of quantum-confined semiconductors. The electrical and optical properties of polymers are improved by doping with semiconductor materials and metal ions. In particular, nanoparticle-doped polymers are considered to be a new class of organic materials due to their considerable modification of physical properties. In this paper, I review the p
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Wang, L. G., Huai Wu Zhang, Xiao Li Tang, and Yuan Qiang Song. "Unification of the Charge Transport in Field-Effect Transistors and Light-Emitting Diodes Based on Organic Semiconductors." Materials Science Forum 687 (June 2011): 222–27. http://dx.doi.org/10.4028/www.scientific.net/msf.687.222.

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A physically based mathematical model for the charge transport in field-effect transistors and lighting-emitting diodes based on disordered organic semiconductors has been presented. It is developed basing on the Gaussian disorder model and extends the pioneering work of Pasveer et al. [Phys. Rev. Lett. 94, 206601 (2005)] to higher carrier densities and large electric field. The experimental current voltage characteristics in devices based on semiconducting polymers are excellently reproduced with this model. Furthermore, we calculate and analyze some electrical properties for the relevant pol
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Kim, Kyoung-Hwan, Myung-June Park, and Ju-Hyung Kim. "Crack-Assisted Charge Injection into Solvent-Free Liquid Organic Semiconductors via Local Electric Field Enhancement." Materials 13, no. 15 (2020): 3349. http://dx.doi.org/10.3390/ma13153349.

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Non-volatile liquid organic semiconducting materials have received much attention as emerging functional materials for organic electronic and optoelectronic devices due to their remarkable advantages. However, charge injection and transport processes are significantly impeded at interfaces between electrodes and liquid organic semiconductors, resulting in overall lower performance compared to conventional solid-state electronic devices. Here we successfully demonstrate efficient charge injection into solvent-free liquid organic semiconductors via cracked metal structures with a large number of
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Makita, Tatsuyuki, Shohei Kumagai, Akihito Kumamoto, et al. "High-performance, semiconducting membrane composed of ultrathin, single-crystal organic semiconductors." Proceedings of the National Academy of Sciences 117, no. 1 (2019): 80–85. http://dx.doi.org/10.1073/pnas.1909932116.

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Thin film transistors (TFTs) are indispensable building blocks in any electronic device and play vital roles in switching, processing, and transmitting electronic information. TFT fabrication processes inherently require the sequential deposition of metal, semiconductor, and dielectric layers and so on, which makes it difficult to achieve reliable production of highly integrated devices. The integration issues are more apparent in organic TFTs (OTFTs), particularly for solution-processed organic semiconductors due to limits on which underlayers are compatible with the printing technologies. We
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Marks, Tobin J. "Materials for organic and hybrid inorganic/organic electronics." MRS Bulletin 35, no. 12 (2010): 1018–27. http://dx.doi.org/10.1557/mrs2010.707.

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Materials scientists involved in synthesis are exceptionally skilled at designing and constructing individual molecules with the goal of introducing rationally tailored chemical and physical properties. However, the task of assembling such special molecules into organized, supramolecular structures with precise, nanometer-level organizational control to execute specific functions presents a daunting challenge. Soft and hard matter suitable for unconventional types of electronic circuitry represents a case in point and, in principal, offer capabilities not readily achievable with conventional s
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Brabec, Christoph J., Thomas Nann, and Sean E. Shaheen. "Nanostructured p–n Junctions for Printable Photovoltaics." MRS Bulletin 29, no. 1 (2004): 43–47. http://dx.doi.org/10.1557/mrs2004.16.

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AbstractBy controlling the morphology of organic and inorganic semiconductors on a molecular scale, nanoscale p–n junctions can be generated in a bulk composite. Such a composite is typically called a bulk heterojunction composite, which can be considered as one virtual semiconductor combining the electrical and optical properties of the individual components. Solar cells are one attractive application for bulk heterojunction composites. Conjugated polymers or oligomers are the favorite p-type semiconducting class for these composites, while for the n-type semiconductor, inorganic nanoparticle
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Dissertations / Theses on the topic "Organic semiconductors – Electric properties"

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Choi, Wing Hong. "Carrier transport characterization and divice applications of amorphous organic semiconductors." HKBU Institutional Repository, 2010. http://repository.hkbu.edu.hk/etd_ra/1093.

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Bunning, J. C. "Electronic transport properties of linear organic semiconductors." Thesis, Queen Mary, University of London, 2006. http://qmro.qmul.ac.uk/xmlui/handle/123456789/1757.

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The electronic transport properties of certain organii c semIi conductors are expected to exhibit a quasi one-dimensional nature. Pulsed laser techniques have been used to study transient photoconductivity in a number of such linear molecular systems. This thesis explores carrier motion of zeolite encapsulated conjugated polymers such as polyacetylene and polypropyne, columnar discotic liquid crystals and single walled carbon nanotubes. At the time of writing, this thesis presents the first observations of transient photoconductivity for carbon nanotubes. In the systems studied: electric field
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Tse, Shing Chi. "Charge transport and injection in amorphous organic electronic materials." HKBU Institutional Repository, 2007. http://repository.hkbu.edu.hk/etd_ra/821.

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Tsung, Ka Kin. "Transport and device application of triarylamine-based organic semiconductor." HKBU Institutional Repository, 2009. http://repository.hkbu.edu.hk/etd_ra/1013.

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Ngai, Jenner Ho Loong. "Synthesis, characterization and electrical properties of indigoids for organic semiconductor applications." HKBU Institutional Repository, 2016. https://repository.hkbu.edu.hk/etd_oa/267.

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Two new series of organic soluble indigoids 7-7-dialkoxyindigoids (4a, 4b) and 4,4-dibromo-7,7-dialkoxyindigoids (5a, 5b) (alkoxy = n-butoxy and n-octyloxy) have been synthesized starting from the inexpensive 3-hydroxybenzaldehyde for OFET applications. The indigoids were soluble in common organic solvents such as chloroform, dichloromethane, toluene, ethyl acetate and ethers. The enhanced solubility was suggested to be a lack of intermolecular hydrogen-bonds as confirmed by single crystal X-ray diffraction analyses. It was found that intramolecular hydrogen-bonds in indigoids were crucial to
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Boskovic, Desanka. "Electronic properties of organic semiconductors and low-dimensional materials." Doctoral thesis, Universitat Autònoma de Barcelona, 2017. http://hdl.handle.net/10803/456582.

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Los semiconductores orgánicos se han convertido en un grupo muy interesante de materiales por sus buenas propiedades de transporte de carga y aplicaciones tecnológicas masivas. Entre todos ellos, el rubreno ganó gran interés porque es un semiconductor orgánico con la movilidad más alta del portador, que puede alcanzar 40cm2=V s para los agujeros. Aquí ofrecemos una descripción completa de los primeros principios de las propiedades electrónicas y el acoplamiento electrón-fonón (incluyendo el tipo de acoplamientos Holstein y Peierls) para los prototipicos cristales de rubreno. Los materia
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Shihub, Salahedin Ibrahim. "Studies of the electrical and structural properties of organic semiconducting thin films of thermally evaporated cobalt phthalocyanine." Thesis, Keele University, 1997. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.301164.

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Xu, Wenwei. "Carrier transport characterization and thin film transistor applications of amorphous organic electronic materials." HKBU Institutional Repository, 2013. http://repository.hkbu.edu.hk/etd_ra/1542.

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Azim-Araghi, Mohammad Esmaeil. "Electrical, optical and gas sensor properties of chloroaluminium (ClAlPc)." Thesis, Lancaster University, 1997. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.387649.

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Fix, Aaron. "Synthesis and Properties of Indenofluorene and Diindenothiophene Derivatives for Use as Semiconducting Materials in Organic Electronic Devices." Thesis, University of Oregon, 2013. http://hdl.handle.net/1794/13444.

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Organic electronic devices are becoming commonplace in many academic and industrial materials laboratories, and commercial application of these technologies is underway. To maximize our fundamental understanding of organic electronics, a wide array of molecular frameworks is necessary, as it allows for a variety of optical and electronic properties to be systematically investigated. With the ability to further tune each individual scaffold via derivatization, access to a broad spectrum of interesting materials is possible. Of particular interest in the search for organic semiconducting materia
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Books on the topic "Organic semiconductors – Electric properties"

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Serdar, Sariciftci Niyazi, and Namdas Ebinazar B, eds. Semiconducting and metallic polymers. Oxford University Press, 2010.

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Jain, S. C. Conducting organic materials and devices. Elsevier/Academic Press, 2007.

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Royal Society (Great Britain). Discussion Meeting. Electrical and magnetic properties of low-dimensional solids: Proceedings of a Royal Society discussion meeting held on 31 May and 1 June 1984. Royal Society, 1985.

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Velasquez, Maria A. Organic semiconductors: Properties, fabrication, and applications. Nova Science, 2011.

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Linjun, Wang, Song Chenchen, and SpringerLink (Online service), eds. Theory of Charge Transport in Carbon Electronic Materials. Springer Berlin Heidelberg, 2012.

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Shik, A. Y. Electronic properties of inhomogeneous semiconductors. Gordon and Breach, 1995.

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Simon, Jacques. Molecular Semiconductors: Photoelectrical Properties and Solar Cells. Springer Berlin Heidelberg, 1985.

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Łozowski, Tadeusz. Nieniszczące metody i urządzenia do charakteryzacji warstw wysokooporowych. Oficyna Wydawnicza Politechniki Wrocławskiej, 2001.

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Pope, Martin. Electronic processes in organic crystals and polymers. 2nd ed. Oxford University Press, 1999.

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Electronic properties of engineering materials. Wiley, 1999.

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Book chapters on the topic "Organic semiconductors – Electric properties"

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Mori, Takehiko. "Organic Semiconductors." In Electronic Properties of Organic Conductors. Springer Japan, 2016. http://dx.doi.org/10.1007/978-4-431-55264-2_8.

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Pohl, Udo W. "Electronic Properties of Organic Semiconductors." In Graduate Texts in Physics. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-43869-2_5.

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Knupfer, M., and H. Peisert. "Electronic Properties of Interfaces between Model Organic Semiconductors and Metals." In Physics of Organic Semiconductors. Wiley-VCH Verlag GmbH & Co. KGaA, 2006. http://dx.doi.org/10.1002/3527606637.ch2.

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Inokuchi, Hiroo, and Kenichi Imaeda. "Three Component Organic Semiconductors, Conductors and Superconductors." In Electrical and Related Properties of Organic Solids. Springer Netherlands, 1997. http://dx.doi.org/10.1007/978-94-011-5790-2_13.

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Cölle, M., and Wolfgang Brütting. "Thermal and Structural Properties of the Organic Semiconductor Alq3 and Characterization of Its Excited Electronic Triplet State." In Physics of Organic Semiconductors. Wiley-VCH Verlag GmbH & Co. KGaA, 2006. http://dx.doi.org/10.1002/3527606637.ch4.

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Jurchescu, Oana D., Devin A. Mourey, Yuanyuan Li, David J. Gundlach, and Thomas N. Jackson. "Interplay between Processing, Structure, and Electronic Properties in Soluble Small-Molecule Organic Semiconductors." In Organic Electronics II. Wiley-VCH Verlag GmbH & Co. KGaA, 2012. http://dx.doi.org/10.1002/9783527640218.ch10.

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Ma, Dongge, and Yonghua Chen. "Electrical Properties of Organic Semiconductor Heterojunctions." In Organic Semiconductor Heterojunctions and Its Application in Organic Light-Emitting Diodes. Springer Berlin Heidelberg, 2017. http://dx.doi.org/10.1007/978-3-662-53695-7_2.

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Zhu, F. "Organic Semiconductors and Applications." In Optical Properties of Condensed Matter and Applications. John Wiley & Sons, Ltd, 2006. http://dx.doi.org/10.1002/0470021942.ch12.

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Ostroverkhova, Oksana. "Photophysical and Photoconductive Properties of Novel Organic Semiconductors." In Organic Electronics. Wiley-VCH Verlag GmbH & Co. KGaA, 2013. http://dx.doi.org/10.1002/9783527650965.ch10.

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He, Jun, and Gerald J. Iafrate. "Quantum Properties of Bloch Electrons in Spatially Homogeneous Electric Fields." In Hot Carriers in Semiconductors. Springer US, 1996. http://dx.doi.org/10.1007/978-1-4613-0401-2_35.

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Conference papers on the topic "Organic semiconductors – Electric properties"

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Hill, Ian G., and Antoine Kahn. "Interface electronic properties of organic molecular semiconductors." In SPIE's International Symposium on Optical Science, Engineering, and Instrumentation, edited by Zakya H. Kafafi. SPIE, 1998. http://dx.doi.org/10.1117/12.332610.

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Kuranov, Dmitriy Y., Marina E. Bedrina, and Nikolai V. Egorov. "The structure and electronic properties of organic semiconductors." In 2015 International Conference "Stability and Control Processes" in Memory of V.I. Zubov (SCP). IEEE, 2015. http://dx.doi.org/10.1109/scp.2015.7342233.

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Rand, Barry P. "Formation, growth, and electronic properties of microcrystalline organic semiconductors." In Organic and Hybrid Field-Effect Transistors XX, edited by Oana D. Jurchescu and Iain McCulloch. SPIE, 2021. http://dx.doi.org/10.1117/12.2593271.

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Nüesch, Frank A. "Organic salt semiconductors with surprising optical and electronic properties." In Novel Optical Materials and Applications. OSA, 2018. http://dx.doi.org/10.1364/noma.2018.noth1d.1.

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Wakhodkin, Taras, and Vitaliy K. Perepelitsa. "Molecular organic semiconductors, electronic structure, and properties of photopolymers." In San Diego '92, edited by Roger A. Lessard. SPIE, 1993. http://dx.doi.org/10.1117/12.139183.

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Rangel-Kuoppa, Victor-Tapio, Cesia Guarneros Aguilar, Victor Sánchez-Reséndiz, Jisoon Ihm, and Hyeonsik Cheong. "Electrical Properties Of GaN Layers Grown By Metal Organic Vapor Phase Epitaxy (MOVPE)." In PHYSICS OF SEMICONDUCTORS: 30th International Conference on the Physics of Semiconductors. AIP, 2011. http://dx.doi.org/10.1063/1.3666245.

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Pei, Jian, Jie-Yu Wang, Ke Shi, and Yu-Qing Zheng. "What is the real effect of halogen atoms? electronic and packing properties of organic semiconductors (Conference Presentation)." In Organic Field-Effect Transistors XV, edited by Oana D. Jurchescu and Iain McCulloch. SPIE, 2016. http://dx.doi.org/10.1117/12.2238787.

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Choi, H. M., H. S. Han, J. Y. Lee, et al. "Effect of the electron-transport and hole-transport layers on the electrical properties of organic photovoltaic cells performed by simulation and experiment." In PHYSICS OF SEMICONDUCTORS: 30th International Conference on the Physics of Semiconductors. AIP, 2011. http://dx.doi.org/10.1063/1.3666656.

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Rangel-Kuoppa, Victor-Tapio, Victor Sánchez-Reséndiz, Jisoon Ihm, and Hyeonsik Cheong. "Electrical Properties Of InN Layers Obtained Via Nitridation Of InAs Substrates Using Metal Organic Vapor Phase Epitaxy (MOVPE)." In PHYSICS OF SEMICONDUCTORS: 30th International Conference on the Physics of Semiconductors. AIP, 2011. http://dx.doi.org/10.1063/1.3666293.

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Rasponi, Marco, Tania Ullah, Richard Gilbert, Gianfranco B. Fiore, and Todd Thorsen. "A Microfluidic Device for Flow-Through Blood Oxygenation by Photocatalytic Action." In ASME 2009 Summer Bioengineering Conference. American Society of Mechanical Engineers, 2009. http://dx.doi.org/10.1115/sbc2009-206652.

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The breakthrough work of Fujishima and Honda in 1972 [1], in which they achieved ultraviolet light-induced water cleavage with the use of titanium dioxide (TiO2) in an electrochemical cell, has drawn considerable attention in recent years to the “acceleration of a photoreaction by the presence of a catalyst” [2] or photocatalysis. Research on photocatalysis has explored the decomposition of organic pollutants and microorganisms, the superhydrophilic self-cleaning properties of surfaces, and the photosplitting of water, among other applications. Semiconductors can act as photocatalysts because
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Reports on the topic "Organic semiconductors – Electric properties"

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Cheon, Kwang-Ohk. The Electric and Optical Properties of Doped Small Molecular Organic Light-Emitting Devices. Office of Scientific and Technical Information (OSTI), 2003. http://dx.doi.org/10.2172/816444.

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