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Статті в журналах з теми "Hybrid cathodes"
Yamada, Mitsuru, Mika Fukunishi, and Futoshi Matsumoto. "Improvement in Rate Capabilities of Hybrid Cathodes with through-Holed Layers of Cathode Material and Activated Carbon on Each Side of a Current Collector in Lithium-Ion Batteries." ECS Meeting Abstracts MA2024-02, no. 67 (November 22, 2024): 4550. https://doi.org/10.1149/ma2024-02674550mtgabs.
Повний текст джерелаDolphijn, Guillaume, Fernand Gauthy, Alexandru Vlad, and Jean-François Gohy. "High Power Cathodes from Poly(2,2,6,6-Tetramethyl-1-Piperidinyloxy Methacrylate)/Li(NixMnyCoz)O2 Hybrid Composites." Polymers 13, no. 6 (March 23, 2021): 986. http://dx.doi.org/10.3390/polym13060986.
Повний текст джерелаEvans, John Parker, Dominic F. Gervasio, and Barry M. Pryor. "A Hybrid Microbial–Enzymatic Fuel Cell Cathode Overcomes Enzyme Inactivation Limits in Biological Fuel Cells." Catalysts 11, no. 2 (February 11, 2021): 242. http://dx.doi.org/10.3390/catal11020242.
Повний текст джерелаZhu, Sheng, and Yan Li. "Carbon-metal oxide nanocomposites as lithium-sulfur battery cathodes." Functional Materials Letters 11, no. 06 (December 2018): 1830007. http://dx.doi.org/10.1142/s1793604718300074.
Повний текст джерелаDu, Leilei, Xu Hou, Debbie Berghus, Richard Schmuch, Martin Winter, Jie Li, and Tobias Placke. "Failure Mechanism of LiNi0.6Co0.2Mn0.2O2 Cathodes in Aqueous/Non-Aqueous Hybrid Electrolytes." ECS Meeting Abstracts MA2022-01, no. 55 (July 7, 2022): 2276. http://dx.doi.org/10.1149/ma2022-01552276mtgabs.
Повний текст джерелаAmine, Khalil. "(Invited) Advances in Lithium-Ion Battery for Enabling Mass Electrification of Vehicles." ECS Meeting Abstracts MA2024-02, no. 7 (November 22, 2024): 896. https://doi.org/10.1149/ma2024-027896mtgabs.
Повний текст джерелаHu, Xue, Zi Lin, Li Liu, Jian Huai, and Hua Deng. "Effects of the LiFePO4 content and the preparation method on the properties of (LiFePO4+AC)/Li4Ti5O12 hybrid batterycapacitors." Journal of the Serbian Chemical Society 75, no. 9 (2010): 1259–69. http://dx.doi.org/10.2298/jsc091228105h.
Повний текст джерелаProffit, Danielle L., Albert L. Lipson, Baofei Pan, Sang-Don Han, Timothy T. Fister, Zhenxing Feng, Brian J. Ingram, Anthony K. Burrell, and John T. Vaughey. "Reducing Side Reactions Using PF6-based Electrolytes in Multivalent Hybrid Cells." MRS Proceedings 1773 (2015): 27–32. http://dx.doi.org/10.1557/opl.2015.590.
Повний текст джерелаRamirez-Meyers, Katrina, and Elizabeth C. Dickey. "A TEM Study of Structural Degradation in LiFePO4 Batteries after Hybrid Vehicle Use." ECS Meeting Abstracts MA2024-01, no. 2 (August 9, 2024): 369. http://dx.doi.org/10.1149/ma2024-012369mtgabs.
Повний текст джерелаOmenya, Fredrick, Xiaolin Li, and David Reed. "(Invited) Insights into the Effects of Doping on Structural Phase Evolution of Sodium Nickel Manganese Oxide Cathodes for High-Energy Sodium Ion Batteries." ECS Meeting Abstracts MA2023-01, no. 5 (August 28, 2023): 939. http://dx.doi.org/10.1149/ma2023-015939mtgabs.
Повний текст джерелаДисертації з теми "Hybrid cathodes"
Adjez, Yanis. "Stimulation of Electrocatalytic Reduction of Nitrate by Immobilized Ionic Liquids." Electronic Thesis or Diss., Sorbonne université, 2024. https://accesdistant.sorbonne-universite.fr/login?url=https://theses-intra.sorbonne-universite.fr/2024SORUS337.pdf.
Повний текст джерелаNitrate pollution in water represents a significant environmental challenge and is one of the top ten most common water quality violations worldwide. This challenge offers an opportunity for the circular economy as nitrate electrolysis has been suggested as a sustainable method for valorization of nitrate-contaminated effluents by simultaneous decentralized ammonia production (a commodity chemical). In particular, the electrochemical reduction of nitrate (ERN) is a promising and sustainable strategy for addressing the critical issue of nitrate pollution in water sources. Several earth abundant materials such as copper and tin have been suggested as suitable electrocatalytic materials for ERN. Mostly fundamental electrochemical studies under potentiostatic conditions are reported so far. In contrast, this study presents ERN evaluation under galvanostatic conditions for achieving more representative operational conditions for larger engineered systems. However, this provokes the appearance of the concomitant hydrogen evolution reaction (HER), which takes place at a similar thermodynamic potential than ERN. Thus, faradaic efficiency for ERN significantly diminishes under realistic galvanostatic conditions due to the competition with HER. This project addresses this fundamental challenge in electrocatalysis and proposes a novel strategy based on the immobilization of imidazolium-based ionic molecules on the surface of the cathode to selectively inhibit HER and enhance ERN. Notably, this research explores a range of hybrid cathode materials, including 2D plate and 3D foam carbon- and metal-based electrodes, which are recognized for their potential in real world applications for ERN. The success of the ionic organic layer immobilization onto the cathodes was confirmed through different physicochemical characterization techniques and subsequent electrocatalytic activity and selectivity evaluation, which demonstrated an enhanced selectivity and faradaic efficiency for ammonia production on hybrid cathodes twice as much as the bare electrode material for ERN under the same experimental conditions
Moraw, Franz Christian. "Hybrid PEM fuel cell : redox cathode approach." Thesis, University of British Columbia, 2009. http://hdl.handle.net/2429/7720.
Повний текст джерелаGustavsson, Lars-Erik. "Hollow Cathode Deposition of Thin Films." Doctoral thesis, Uppsala : Acta Universitatis Upsaliensis : Universitetsbiblioteket [distributör], 2006. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-6925.
Повний текст джерелаOsiecki, Tomasz, Colin Gerstenberger, Holger Seidlitz, Alexander Hackert, and Lothar Kroll. "Behavior of Cathodic dip Paint Coated Fiber Reinforced Polymer/Metal Hybrids." Universitätsbibliothek Chemnitz, 2015. http://nbn-resolving.de/urn:nbn:de:bsz:ch1-qucosa-175536.
Повний текст джерелаEzzedine, Mariam. "Fabrication of hierarchical hybrid nanostructured electrodes based on nanoparticles decorated carbon nanotubes for Li-Ion batteries." Thesis, Université Paris-Saclay (ComUE), 2017. http://www.theses.fr/2017SACLX105/document.
Повний текст джерелаThis thesis is devoted to the bottom-up fabrication of hierarchical hybrid nanostructured materials based on active vertically aligned carbon nanotubes (VACNTs) decorated with nanoparticles (NPs). Owing to their unique structure and electronic properties, VACNTs act as a support matrix and an excellent current collector, and thus enhance the electronic and ionic transport pathways. The nanostructuration and the confinement of sulfur (S) in a conductive host material improve its conductivity, while the nanostructuration of silicon (Si) accommodates better the volume change during the electrochemical reactions. In the first part of the thesis, we have synthesized VACNTs by a hot filament chemical vapor deposition (HF-CVD) method directly over aluminum and copper commercial foils without any pretreatment of the substrates. In the second part, we have decorated the sidewalls and the surface of the VACNT carpets with various LIB's active electrode materials, including S and Si NPs. We have also deposited and characterized nickel (Ni) NPs on CNTs as alternative materials for the cathode electrode. No conductive additives or any polymer binder have been added to the electrode composition. The CNTs decoration has been done systematically through two different methods: wet method by electrodeposition and dry method by physical vapor deposition (PVD). The obtained hybrid structures have been electrochemically tested separately in a coin cell against a lithium counter-electrode. Regarding the S evaporationon VACNTs, and the S@VACNTs structure, these topics are investigated for the first time to the best of our knowledge.Preliminary tests on the obtained nanostructured cathodes (S@VACNTs coated with alumina or polyaniline) have shown that it is possible to attain a specific capacity close to S theoretical storage capacity. The surface capacity of S@VACNTs, with 0.76 mg cm-2 of S, at C/20 rate reaches 1.15 mAh cm-2 at the first cycle. For the nanostructured anodes Si@VACNTs, with 4.11 mg cm-2 of Si showed an excellent surface capacity of 12.6 mAh cm-2, the highest value for nanostructured silicon anodes obtained so far. In the last part of the thesis, the fabricated nanostructured electrodes have been assembled in a full battery (Li2S/Si) and its electrochemical performances experimentally tested. The high and well-balanced surface capacities obtained for S and Si nanostructured electrodes pave the way for realization of high energy density, all-nanostructured LIBs and demonstrate the large potentialities of the proposed hierarchical hybrid nanostructures' concept
Holmes, Steven. "An investigation into the practical and theoretical aspects of hybrid cathodic protection." Thesis, Loughborough University, 2012. https://dspace.lboro.ac.uk/2134/12280.
Повний текст джерелаMyalo, Zolani. "Graphenised Lithium Iron Phosphate and Lithium Manganese Silicate Hybrid Cathode Systems for Lithium-Ion Batteries." University of the Western Cape, 2017. http://hdl.handle.net/11394/6036.
Повний текст джерелаThis research was based on the development and characterization of graphenised lithium iron phosphate-lithium manganese silicate (LiFePO4-Li2MnSiO4) hybrid cathode materials for use in Li-ion batteries. Although previous studies have mainly focused on the use of a single cathode material, recent works have shown that a combination of two or more cathode materials provides better performances compared to a single cathode material. The LiFePO4- Li2MnSiO4 hybrid cathode material is composed of LiFePO4 and Li2MnSiO4. The Li2MnSiO4 contributes its high working voltage ranging from 4.1 to 4.4 V and a specific capacity of 330 mA h g-1, which is twice that of the LiFePO4 which, in turn, offers its long cycle life, high rate capacity as well as good electrochemical and thermal stability. The two cathode materials complement each other's properties however they suffer from low electronic conductivities which were suppressed by coating the hybrid material with graphene nanosheets. The synthetic route entailed a separate preparation of the individual pristine cathode materials, using a sol-gel protocol. Then, the graphenised LiFePO4-Li2MnSiO4 and LiFePO4-Li2MnSiO4 hybrid cathodes were obtained in two ways: the hand milling (HM) method where the pristine cathodes were separately prepared and then mixed with graphene using a pestle and mortar, and the in situ sol-gel (SG) approach where the Li2MnSiO4 and graphene were added into the LiFePO4 sol, stirred and calcined together.
2021-04-30
Söderström, Daniel. "Modelling and Applications of the Hollow Cathode Plasma." Doctoral thesis, Uppsala universitet, Elektricitetslära, 2008. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-8747.
Повний текст джерелаVickers, Simon. "Particle in cell and hybrid simulations of the Z double-post-hole convolute cathode plasma evolution and dynamics." Thesis, Imperial College London, 2013. http://hdl.handle.net/10044/1/17874.
Повний текст джерелаEl, jouad Zouhair. "Réalisation et caractérisation des cellules photovoltaïques organiques." Thesis, Angers, 2016. http://www.theses.fr/2016ANGE0022/document.
Повний текст джерелаThis thesis concerns elaboration and characterization of classical and inverse organic photovoltaic cells, specifically improving the anodic and cathodic buffer layers. We started by improving the cathode buffer layers with different electron donors: copper phthalocyanine CuPc, subphtalocyanine SubPc and thiophene derivatives (BSTV and BOTV). In the first case of electron donor (CuPc), we highlighted the effect of the thin layer of cesium compound, used as a cathodic buffer layer in inverse cells, on the collection of electrons after heat treatment.We have also shown that the hybrid cathodic buffer layer, Alq3 (9 nm) / Ca (3nm) improves the cell performance whatever the electron donor without annealing. In the case of thiophene derivatives, we have shown how the morphology of the organic layers surface can influence the performance of organic photovoltaic cells. In the case of SubPc used in inverse cells, we studied the effect of the deposition rate of the layer on the morphology of SubPc surface.Regarding the improvement of the anodic buffer layers, we investigated those based on the SubPc and pentathiophene (5T) in classical cells. After optimization of the electron donors thickness, we have shown that the bilayer MoO3 (3 nm) / CuI (1.5 nm) used as an anodic buffer layer, improves cell performances, whatever the electron donor. In the case of SubPc, we obtained a efficiency approaching 5%
Частини книг з теми "Hybrid cathodes"
Wen, Zhenhai, Suqin Ci, and Junhong Chen. "Nanocarbon-Based Hybrids as Cathode Electrocatalysts for Microbial Fuel Cells." In Nanocarbons for Advanced Energy Conversion, 215–32. Weinheim, Germany: Wiley-VCH Verlag GmbH & Co. KGaA, 2015. http://dx.doi.org/10.1002/9783527680016.ch8.
Повний текст джерелаMurugesan, Chinnasamy, Baskar Senthilkumar, Kriti Choudhary, and Prabeer Barpanda. "Cobalt–Phosphate-Based Insertion Material as a Multifunctional Cathode for Rechargeable Hybrid Sodium–Air Batteries." In Recent Research Trends in Energy Storage Devices, 35–41. Singapore: Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-6394-2_5.
Повний текст джерелаGodefroidt, Emile, Bjorn Van Belleghem, and Tim Soetens. "Effectiveness and Throwing Power of Hybrid Anode Cathodic Protection in Chloride Contaminated Reinforced Concrete." In RILEM Bookseries, 175–86. Cham: Springer Nature Switzerland, 2024. http://dx.doi.org/10.1007/978-3-031-75507-1_18.
Повний текст джерелаGoyal, Megha, and Tapas Kumar Mandal. "Influence of Different Precipitating Agents on the Synthesis of NiMn-LDHs Based Cathode Materials for High Performance Hybrid Devices." In Springer Proceedings in Physics, 187–92. Singapore: Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-99-1971-0_28.
Повний текст джерелаParbey, Joseph, Fehrs Adu-Gyamfi, and Michael Gyan. "Progress in Cathode Materials for Methanol Fuel Cells." In Methanol Fuel - New Developments, Perspectives and Applications [Working Title]. IntechOpen, 2024. http://dx.doi.org/10.5772/intechopen.1003869.
Повний текст джерелаRajpurohit, Praveen, and Manaswini Behera. "Light-assisted microbial electrochemical technologies for bioelectricity generation and product recovery." In Resource Recovery from Industrial Wastewater through Microbial Electrochemical Technologies, 61–80. IWA Publishing, 2024. http://dx.doi.org/10.2166/9781789063813_0061.
Повний текст джерелаM. Orona-Hinojos, Jesus. "Innovative Double Cathode Configuration for Hybrid ECM + EDM Blue Arc Drilling." In Drilling Technology. IntechOpen, 2021. http://dx.doi.org/10.5772/intechopen.97547.
Повний текст джерелаArif, Khizra, Abdul Shakoor, Muhammad Awais, Marvi Dashi, Behram Khan Ajat Khel, Bentham Science Publisher Sami Ur Rehman, Khansa Masood, Farah Hussain, Waheed Alam, and Muhammad Atif. "Graphene-based Materials for Electrochemical Energy Storage Devices-EESDs; Opportunities and Future Perspective." In The 2-Dimensional World of Graphene, 160–76. BENTHAM SCIENCE PUBLISHERS, 2024. http://dx.doi.org/10.2174/9789815238938124010011.
Повний текст джерелаLitovko, Iryna, Alexey Goncharov, Andrew Dobrovolskyi, and Iryna Naiko. "The Emerging Field Trends Erosion-Free Electric Hall Thrusters Systems." In Plasma Science and Technology [Working Title]. IntechOpen, 2021. http://dx.doi.org/10.5772/intechopen.99096.
Повний текст джерелаMohammadi, Arash. "Hybrid nanomaterials of hollow carbon spheres as cathode materials." In Nanostructured Lithium-ion Battery Materials, 87–109. Elsevier, 2025. http://dx.doi.org/10.1016/b978-0-443-13338-1.00024-1.
Повний текст джерелаТези доповідей конференцій з теми "Hybrid cathodes"
Major, K., G. Brisard, and J. Veilleux. "Lithium Iron Phosphate Coatings Deposited by Means of Inductively-Coupled Thermal Plasma." In ITSC2015, edited by A. Agarwal, G. Bolelli, A. Concustell, Y. C. Lau, A. McDonald, F. L. Toma, E. Turunen, and C. A. Widener. ASM International, 2015. http://dx.doi.org/10.31399/asm.cp.itsc2015p0566.
Повний текст джерелаTucker, David, Larry Lawson, Thomas P. Smith, and Comas Haynes. "Evaluation of Cathodic Air Flow Transients in a Hybrid System Using Hardware Simulation." In ASME 2006 4th International Conference on Fuel Cell Science, Engineering and Technology. ASMEDC, 2006. http://dx.doi.org/10.1115/fuelcell2006-97107.
Повний текст джерелаAvdeev, Ilya V., and Mehdi Gilaki. "Explicit Dynamic Simulation of Impact in Cylindrical Lithium-Ion Batteries." In ASME 2012 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/imece2012-88165.
Повний текст джерелаLambruschini, Fabio, Mario L. Ferrari, Alberto Traverso, and Luca Larosa. "Emergency Shutdown Management in Fuel Cell Gas Turbine Hybrid Systems." In ASME Turbo Expo 2014: Turbine Technical Conference and Exposition. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/gt2014-25432.
Повний текст джерелаHao, Xia, Shenghao Wang, Takeaki Sakurai, and Katsuhiro Akimoto. "The effect of cathode buffer in small molecule organic solar cells." In 2nd Asia-Pacific Hybrid and Organic Photovoltaics. Valencia: Fundació Scito, 2017. http://dx.doi.org/10.29363/nanoge.ap-hopv.2018.047.
Повний текст джерелаOpitz, Andreas, Dominique Lungwitz, Raphael Schlesinger, Sujitkumar Bontapalle, Susy Varughese, Keli Fabiana Seidel, Thomas Krüger, Jan Behrends, Seth R. Marder, and Norbert Koch. "Polyethylenimine cathode interlayer: influence of solvent on functionality and single-step formation from polymer blend solution." In Organic, Hybrid, and Perovskite Photovoltaics XXII, edited by Zakya H. Kafafi, Paul A. Lane, Gang Li, Ana Flávia Nogueira, and Ellen Moons. SPIE, 2021. http://dx.doi.org/10.1117/12.2593881.
Повний текст джерелаBanta, Larry E., Bernardo Restrepo, Alex J. Tsai, and David Tucker. "Cathode Temperature Management During Hybrid System Startup." In ASME 2010 8th International Conference on Fuel Cell Science, Engineering and Technology. ASMEDC, 2010. http://dx.doi.org/10.1115/fuelcell2010-33121.
Повний текст джерелаBooth, Ronald E., Yuan Xiong, Yuxuan Liu, Yong Zhu, Harald W. Ade, and Brendan T. O'Connor. "ITO-free fully solution-processed flexible semi-transparent organic photovoltaics utilizing metal nanowire for anode and cathode." In Organic, Hybrid, and Perovskite Photovoltaics XXI, edited by Kwanghee Lee, Zakya H. Kafafi, Paul A. Lane, Harald W. Ade, and Yueh-Lin (Lynn) Loo. SPIE, 2020. http://dx.doi.org/10.1117/12.2570470.
Повний текст джерелаChen, Jinwei, Kuanying Gao, Maozong Liang, and Huisheng Zhang. "Performance Evaluation of a SOFC-GT Hybrid System With Ejectors for the Anode and Cathode Recirculations." In ASME Turbo Expo 2017: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2017. http://dx.doi.org/10.1115/gt2017-63745.
Повний текст джерелаVanOsdol, John G., Randall Gemmen, and Edward Parsons. "Using Staged Compression to Increase the System Efficiency of a Coal Based Gas Turbine Fuel Cell Hybrid Power Generation System With Carbon Capture." In ASME 2008 Power Conference. ASMEDC, 2008. http://dx.doi.org/10.1115/power2008-60111.
Повний текст джерелаЗвіти організацій з теми "Hybrid cathodes"
Lawson and Thompson. L52100 Hot-Spot Protection for Impressed Current Systems. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), September 2003. http://dx.doi.org/10.55274/r0010153.
Повний текст джерела