Literatura académica sobre el tema "Semiconducting polymer blends"
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Artículos de revistas sobre el tema "Semiconducting polymer blends"
Kulatunga, Piumi, Nastaran Yousefi y Simon Rondeau-Gagné. "Polyethylene and Semiconducting Polymer Blends for the Fabrication of Organic Field-Effect Transistors: Balancing Charge Transport and Stretchability". Chemosensors 10, n.º 6 (24 de mayo de 2022): 201. http://dx.doi.org/10.3390/chemosensors10060201.
Texto completoMcNutt, William W., Aristide Gumyusenge, Luke A. Galuska, Zhiyuan Qian, Jiazhi He, Xiaodan Gu y Jianguo Mei. "N-Type Complementary Semiconducting Polymer Blends". ACS Applied Polymer Materials 2, n.º 7 (10 de junio de 2020): 2644–50. http://dx.doi.org/10.1021/acsapm.0c00261.
Texto completoYu, G., H. Nishino, A. J. Heeger, T. A. Chen y R. D. Rieke. "Enhanced electroluminescence from semiconducting polymer blends". Synthetic Metals 72, n.º 3 (junio de 1995): 249–52. http://dx.doi.org/10.1016/0379-6779(95)03282-7.
Texto completoGong, X., W. Ma, J. C. Ostrowski, G. C. Bazan, D. Moses y A. J. Heeger. "White Electrophosphorescence from Semiconducting Polymer Blends". Advanced Materials 16, n.º 7 (5 de abril de 2004): 615–19. http://dx.doi.org/10.1002/adma.200306230.
Texto completoGumyusenge, Aristide, Dung T. Tran, Xuyi Luo, Gregory M. Pitch, Yan Zhao, Kaelon A. Jenkins, Tim J. Dunn, Alexander L. Ayzner, Brett M. Savoie y Jianguo Mei. "Semiconducting polymer blends that exhibit stable charge transport at high temperatures". Science 362, n.º 6419 (6 de diciembre de 2018): 1131–34. http://dx.doi.org/10.1126/science.aau0759.
Texto completoStingelin, Natalie. "(Invited) Manipulating Photoexcitations of Flexible-Chain Polymer Semiconductors Via the Local Environment". ECS Meeting Abstracts MA2023-01, n.º 14 (28 de agosto de 2023): 1347. http://dx.doi.org/10.1149/ma2023-01141347mtgabs.
Texto completoMulderig, Andrew J., Yan Jin, Fei Yu, Jong Keum, Kunlun Hong, James F. Browning, Gregory Beaucage, Gregory S. Smith y Vikram K. Kuppa. "Determination of active layer morphology in all-polymer photovoltaic cells". Journal of Applied Crystallography 50, n.º 5 (18 de agosto de 2017): 1289–98. http://dx.doi.org/10.1107/s1600576717010457.
Texto completoCleave, V., G. Yahioglu, P. Le Barny, D. H. Hwang, A. B. Holmes, R. H. Friend y N. Tessler. "Transfer Processes in Semiconducting Polymer-Porphyrin Blends". Advanced Materials 13, n.º 1 (enero de 2001): 44–47. http://dx.doi.org/10.1002/1521-4095(200101)13:1<44::aid-adma44>3.0.co;2-#.
Texto completoAliouat, Mouaad Yassine, Dmitriy Ksenzov, Stephanie Escoubas, Jörg Ackermann, Dominique Thiaudière, Cristian Mocuta, Mohamed Cherif Benoudia, David Duche, Olivier Thomas y Souren Grigorian. "Direct Observations of the Structural Properties of Semiconducting Polymer: Fullerene Blends under Tensile Stretching". Materials 13, n.º 14 (10 de julio de 2020): 3092. http://dx.doi.org/10.3390/ma13143092.
Texto completoJo, Sae Byeok, Wi Hyoung Lee, Longzhen Qiu y Kilwon Cho. "Polymer blends with semiconducting nanowires for organic electronics". Journal of Materials Chemistry 22, n.º 10 (2012): 4244. http://dx.doi.org/10.1039/c2jm16059e.
Texto completoTesis sobre el tema "Semiconducting polymer blends"
Griffo, Michael S. "Charge dynamics in polymer-nanoparticle blends for nonvolatile memory : Surface enhanced fluorescence of a semiconducting polymer; surface plasmon assisted luminescent solar concentrator waveguides /". Diss., Digital Dissertations Database. Restricted to UC campuses, 2009. http://uclibs.org/PID/11984.
Texto completoAl, Yaman Yasmina. "Comprendre les mélanges de polymères pour leur utilisation comme conducteurs mixtes d'ions et d'électrons". Electronic Thesis or Diss., Bordeaux, 2024. http://www.theses.fr/2024BORD0431.
Texto completoOrganic Electrochemical devices are emerging as vital components in bioelectronics, particularly for applications requiring interfacing with biological systems, such as medical implants and wearable devices. A recurring challenge in the performance of these devices is the inefficient ion transport within the semiconducting polymers used, which limits their overall efficiency. To address this, we initially investigated newly synthesized hydrophilic polymers designed to enhance ion mobility. However, these materials exhibited poor solubility, leading to ineffective device performance. Consequently, we shifted our approach to polymer blending as a more practical solution. By blending the hydrophobic poly(3-hexylthiophene) (P3HT) with hydrophilic polymers such as P3HT-b-PEO or polyethylene oxide (PEO), we enhanced ion mobility while maintaining the necessary electronic properties. These blends demonstrated clear transistor behavior, with P3HT-b-PEO acting as a compatibilizer, significantly improving stability comparedto PEO alone. Blends with higher molecular weight P3HT also exhibited greater stability and faster response times, likely due to increased polymer entanglement. When this blending strategy was applied to the more rigid polymer Poly[2,5-(2-octyldodecyl)-3,6-diketopyrrolopyrrole-alt-5,5-(2,5-di(thien-2-yl)thieno[3,2-b]thiophene)] (PDPP2T-TT-OD), we observed similar improvements in device performance, although the polymer's rigid backbone limited compatibility. Overall, this research highlights the effectiveness of polymer blending in optimizing ion transport and stability in OECTs, paving the way for more efficient bio-interfacing electronic devices
Chan, Ka Hin. "Charge injection and transport characterization of semiconducting polymers and their bulk heterojunction blends". HKBU Institutional Repository, 2012. https://repository.hkbu.edu.hk/etd_ra/1405.
Texto completo(8086511), Aristide Gumyusenge. "High Temperature Semiconducting Polymers and Polymer Blends". Thesis, 2019.
Buscar texto completoChuang, Ching-Heng y 莊靖恆. "Morphology and Electronic Properties of Semiconducting Polymer and Branched Polyethylene Blends and the synthesis of Self-Healing and elastic random copolymer". Thesis, 2019. http://ndltd.ncl.edu.tw/handle/8wkqrq.
Texto completoCapítulos de libros sobre el tema "Semiconducting polymer blends"
McNeill, Christopher R. "Conjugated Polymer Blends: Toward All-Polymer Solar Cells". En Semiconducting Polymer Composites, 399–425. Weinheim, Germany: Wiley-VCH Verlag GmbH & Co. KGaA, 2013. http://dx.doi.org/10.1002/9783527648689.ch14.
Texto completoLoos, Joachim. "Nanoscale Morphological Characterization for Semiconductive Polymer Blends". En Semiconducting Polymer Composites, 39–64. Weinheim, Germany: Wiley-VCH Verlag GmbH & Co. KGaA, 2013. http://dx.doi.org/10.1002/9783527648689.ch2.
Texto completoActas de conferencias sobre el tema "Semiconducting polymer blends"
Gong, Xiong, Daniel Moses y Alan J. Heeger. "White electrophosphorescence from semiconducting polymer blends". En Optical Science and Technology, the SPIE 49th Annual Meeting, editado por Zakya H. Kafafi y Paul A. Lane. SPIE, 2004. http://dx.doi.org/10.1117/12.559072.
Texto completoMei, Jianguo y Aristide Gumyusenge. "Semiconducting polymer blends that exhibit stable charge transport at high temperatures (Conference Presentation)". En Physical Chemistry of Semiconductor Materials and Interfaces XVIII, editado por Daniel Congreve, Hugo A. Bronstein, Christian Nielsen y Felix Deschler. SPIE, 2019. http://dx.doi.org/10.1117/12.2529702.
Texto completoBeek, Waldo J. E., Martijn M. Wienk y René A. J. Janssen. "Hybrid bulk heterojunction solar cells: blends of ZnO semiconducting nanoparticles and conjugated polymers". En Optics & Photonics 2005, editado por Zakya H. Kafafi y Paul A. Lane. SPIE, 2005. http://dx.doi.org/10.1117/12.614911.
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