Literatura académica sobre el tema "OER reaction"
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Artículos de revistas sobre el tema "OER reaction"
Rahman, Sheikh Tareq, Kyong Yop Rhee y Soo-Jin Park. "Nanostructured multifunctional electrocatalysts for efficient energy conversion systems: Recent perspectives". Nanotechnology Reviews 10, n.º 1 (1 de enero de 2021): 137–57. http://dx.doi.org/10.1515/ntrev-2021-0008.
Texto completoYan, Zhenwei, Shuaihui Guo, Zhaojun Tan, Lijun Wang, Gang Li, Mingqi Tang, Zaiqiang Feng, Xianjie Yuan, Yingjia Wang y Bin Cao. "Research Advances of Non-Noble Metal Catalysts for Oxygen Evolution Reaction in Acid". Materials 17, n.º 7 (3 de abril de 2024): 1637. http://dx.doi.org/10.3390/ma17071637.
Texto completoMorales, Dulce M., Mariya A. Kazakova, Maximilian Purcel, Justus Masa y Wolfgang Schuhmann. "The sum is more than its parts: stability of MnFe oxide nanoparticles supported on oxygen-functionalized multi-walled carbon nanotubes at alternating oxygen reduction reaction and oxygen evolution reaction conditions". Journal of Solid State Electrochemistry 24, n.º 11-12 (1 de junio de 2020): 2901–6. http://dx.doi.org/10.1007/s10008-020-04667-2.
Texto completoHong, Yu-Rim, Sungwook Mhin, Jiseok Kwon, Won-Sik Han, Taeseup Song y HyukSu Han. "Synthesis of transition metal sulfide and reduced graphene oxide hybrids as efficient electrocatalysts for oxygen evolution reactions". Royal Society Open Science 5, n.º 9 (septiembre de 2018): 180927. http://dx.doi.org/10.1098/rsos.180927.
Texto completoKim, Yohan, Seongmin Kim, Minyoung Shim, Yusik Oh, Kug-Seung Lee, Yousung Jung y Hye Ryung Byon. "Alteration of Oxygen Evolution Mechanisms in Layered LiCoO2 Structures By Intercalation of Alkali Metal Ions". ECS Meeting Abstracts MA2022-01, n.º 34 (7 de julio de 2022): 1356. http://dx.doi.org/10.1149/ma2022-01341356mtgabs.
Texto completoWan, Xin, Yingjie Song, Hua Zhou y Mingfei Shao. "Layered Double Hydroxides for Oxygen Evolution Reaction towards Efficient Hydrogen Generation". Energy Material Advances 2022 (7 de septiembre de 2022): 1–17. http://dx.doi.org/10.34133/2022/9842610.
Texto completoFukushima, Tomohiro, Masaki Itatani y Kei Murakoshi. "(Invited) Evaluation of Oxygen Evolution Reaction Electrodes through Machine-Learning Analysis and in-Situ Electrochemical Spectroscopy". ECS Meeting Abstracts MA2024-02, n.º 59 (22 de noviembre de 2024): 4023. https://doi.org/10.1149/ma2024-02594023mtgabs.
Texto completoChae, Sangwoo, Akihito Shio, Tomoya Kishida, Kosuke Furutono, Yumi Kojima, Gasidit Panomsuwan y Takahiro Ishizaki. "Synthesis of High-Entropy Perovskite Hydroxides as Bifunctional Electrocatalysts for Oxygen Evolution Reaction and Oxygen Reduction Reaction". Materials 17, n.º 12 (17 de junio de 2024): 2963. http://dx.doi.org/10.3390/ma17122963.
Texto completoLin, Shiru, Haoxiang Xu, Yekun Wang, Xiao Cheng Zeng y Zhongfang Chen. "Directly predicting limiting potentials from easily obtainable physical properties of graphene-supported single-atom electrocatalysts by machine learning". Journal of Materials Chemistry A 8, n.º 11 (2020): 5663–70. http://dx.doi.org/10.1039/c9ta13404b.
Texto completoWu, Hengbo, Jie Wang, Wei Jin y Zexing Wu. "Recent development of two-dimensional metal–organic framework derived electrocatalysts for hydrogen and oxygen electrocatalysis". Nanoscale 12, n.º 36 (2020): 18497–522. http://dx.doi.org/10.1039/d0nr04458j.
Texto completoTesis sobre el tema "OER reaction"
Chen, Junsheng. "Ternary Metal Oxide/(Oxy)Hydroxide for Efficient Oxygen Evolution Reaction". Thesis, The University of Sydney, 2021. https://hdl.handle.net/2123/25536.
Texto completoMamtani, Kuldeep. "Carbon-based Materials for Oxygen Reduction Reaction (ORR) and Oxygen Evolution Reaction (OER) in Acidic Media". The Ohio State University, 2017. http://rave.ohiolink.edu/etdc/view?acc_num=osu149376896628355.
Texto completoWu, Qi-Long. "Defect Based Three-Dimensional Hierarchical Porous Carbons for Efficient Oxygen Reduction Reaction". Thesis, Griffith University, 2022. http://hdl.handle.net/10072/419073.
Texto completoThesis (Masters)
Master of Philosophy (MPhil)
School of Eng & Built Env
Science, Environment, Engineering and Technology
Full Text
Zou, Yu. "Supported Composite Electrocatalysts for Energy Conversion Applications". Thesis, Griffith University, 2022. http://hdl.handle.net/10072/417198.
Texto completoThesis (PhD Doctorate)
Doctor of Philosophy (PhD)
School of Environment and Sc
Science, Environment, Engineering and Technology
Full Text
Duan, Yan. "Understanding the oxygen evolution reaction (OER) for Co based transition metal oxides / hydroxides in alkaline electrolytes". Electronic Thesis or Diss., Sorbonne université, 2021. http://www.theses.fr/2021SORUS416.
Texto completoThe development of efficient electrocatalysts to lower the overpotential of oxygen evolution reaction (OER) is of fundamental importance in improving the overall efficiency of fuel production by water electrolysis. Among a plethora of catalysts being studied on, transition metal oxides / hydroxides that exhibit reasonable activity and stability in alkaline electrolyte have been identified as catalysts to potentially overpass the activity of expensive Ir- and Ru- based oxides. Understanding the OER for transition metal oxides / hydroxides in alkaline electrolytes paves the way for better design of low cost and highly efficient electrocatalysts. This dissertation, with three different work on Co-based oxides / hydroxides, studies and deepens the understanding of the bulk properties, surface properties of materials and interfacial properties on OER. Firstly, with Fe substitution, it addresses tuning the eg configuration of metal cations in LaCoO3 where adjusting the metal 3d oxygen 2p covalency can bring benefits to the OER performance. Secondly, with Ni substitution in ZnCo2O4, it demonstrates a change in relative position of O p-band and MOh d-band centre which induces a change in stability as well as the possibility for lattice oxygen to participate in the OER. Finally, with La1-xSrxCoO3 series, CoOOH and Fe-containing CoOOH as examples, the impact of the electrolyte has been explored by the study of reaction kinetics parameters. With a better understanding of how material properties and dynamic environment influence the OER activity and mechanism, we can obtain more efficient OER catalysts for better energy infrastructure
Stevens, Michaela. "Fundamentals and Industrial Applications: Understanding First Row Transition Metal (Oxy)Hydroxides as Oxygen Evolution Reaction Catalysts". Thesis, University of Oregon, 2017. http://hdl.handle.net/1794/22633.
Texto completo10000-01-01
Al-Mamun, Mohammad. "Rational Design of Nanostructured Earth-Abundant Electrocatalysts for Energy Conversion Applications". Thesis, Griffith University, 2016. http://hdl.handle.net/10072/365651.
Texto completoThesis (PhD Doctorate)
Doctor of Philosophy (PhD)
Griffith School of Environment
Science, Environment, Engineering and Technology
Full Text
Bernicke, Michael [Verfasser], Ralph [Akademischer Betreuer] Krähnert, Peter [Gutachter] Strasser y Michael [Gutachter] Bron. "Mesoporous oxides as efficient catalysts for the electrocatalytic oxygen evolution reaction (OER) / Michael Bernicke ; Gutachter: Peter Strasser, Michael Bron ; Betreuer: Ralph Krähnert". Berlin : Technische Universität Berlin, 2016. http://d-nb.info/1156010195/34.
Texto completoTerry, Alexandre. "New mixed 3d metal-based oxyfluorinated materials as anodic catalysts for water splitting : from elaboration to mechanistic study". Electronic Thesis or Diss., Le Mans, 2024. https://cyberdoc-int.univ-lemans.fr/Theses/2024/2024LEMA1029.pdf.
Texto completoIf hydrogen is a promising energy vector for sustainable energy storage, its production must rely on carbon-free technologies. Water splitting powered by green electricity is ideal for producing a decarbonized energy carrier from water. However, this process is hampered by the sluggish kinetics of the oxidation evolution reaction (OER, 2H2O ⇋ O2 + 4H+ + 4e-) at the anode, requiring extra energy to ensure a suitable production rate. Catalysts, usually iridium and ruthenium oxides, are employed to reduce the energy requirement by facilitating electron and proton transfer involved in OER, but these metals are scarce, limiting the scalability of this technology. To overcome this, oxides and oxyhydroxides catalysts based on cost-effective and abundant 3d transition metal-based have been developed for alkaline water splitting, presenting high performance. In this way, this work presents the synthesis of new oxyfluorides with eco-compatible and affordable elements using a simple and straightforward two-step synthetic route for application as OER electrocatalyst in alkaline electrolyte.The initial study focuses on iron-enriched oxyfluoride catalysts from thermal decomposition under ambient air of (Co1-xFex)2+Fe3+F5(H2O)7 (0 ≤ x ≤ 0.72). Results show that cobalt content can be reduced by 20% without affecting OER performance, achieving an overpotential of 320 mV at 10 mA.cm-2, a mass activity of 110 A.g-1 at 1.55 V vs. RHE and high stability. The second part aims to enhanced the catalytic properties of Co0.5Fe0.5O0.5F1.5 reference by substituting cobalt with nickel, known for its OER activity. The (Co(1-x)/2Nix/2)2+Fe0.5O0.5F1.5-y(OH)y (y ≤ 0.3) solid solution have been obtained by thermal decomposition (Co1-xNix)2+FeF5(H2O)7 (0 ≤ x ≤ 1). The final section assesses the performance of these materials and studies their reaction mechanism. The x = 0.5 composition shows the best performance, with a low overpotential of 290 mV at 10 mA.cm-2 and a specific activity of 3.9 A.m-2 of BET surface area at 1.5 V vs. RHE. The origin of the exceptional catalytic properties of (Co0.25Ni0.25)2+Fe3+0.5O0.5F1.3(OH)0.2, highlighted via in-situ/operando analyses, among others, were employed, would stem from the synergy between Co and Ni, and the involvement of lattice oxygens in the mechanism (LOM), circumventing the theoretical limits linked to the conventional mechanism
Kumar, Kavita. "Catalyseurs sans métaux nobles pour pile à combustible régénérative". Thesis, Poitiers, 2017. http://www.theses.fr/2017POIT2284/document.
Texto completoHydrogen, as an environmentally friendly future energy vector, is a non-toxic and convenient molecule for regenerative fuel cell, which connects two different technologies: an electrolyzer for H2 production, and a fuel cell for its direct conversion to electric energy. This kind of system possesses many advantages, such as lightness, compactness and more autonomy. However, improvement of activity and durability of electrode materials free from noble metals in their composition is needed. Thereby, bifunctional catalysts composed of transition metals deposited onto graphene-based materials were synthesized. The interaction between the metal atom of the oxide and the graphene doped heteroatom in the Co3O4/NRGO catalyst was investigated physicochemically. With a low cobalt loading, the interaction between cobalt and nitrogen was characterized by cyclic voltammetry, which revealed that it was responsible for decreasing the oxide nanoparticle size, as well as increasing the material activity towards the oxygen reduction reaction (ORR). The substitution of Co by Ni in the spinel structure (NiCo2O4/RGO) obtained by solvothermal synthesis, allowed the enhancement of the electrocatalytic performances towards the ORR and OER. Moreover, this catalyst as well as another material prepared in collaborative program with a lab from Technical University of Berlin were used as cathode in preliminary studies undertaken on solid alkaline fuel cell (SAFC)
Libros sobre el tema "OER reaction"
Kerekes, Amália. Mehr oder Weininger: Eine Textoffensive aus Österreich/Ungarn. Wien: Braumüller, 2005.
Buscar texto completoFattahi, Mir Taher. Emil Abderhalden (1877-1950), die Abwehrfermente: Ein langer Irrweg oder wissenschaftlicher Betrug? Berlin: Uni-Edition, 2006.
Buscar texto completoIssel, Wolfgang. Die Wiederaurarbeitung von bestrahlten Kernbrennstoffen in der Bundesrepublik Deutschland: Technologische Chance oder energiepolitischer Zwang. Frankfurt am Main: P. Lang, 2003.
Buscar texto completoHenriksen, Niels Engholm y Flemming Yssing Hansen. Bimolecular Reactions, Dynamics of Collisions. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198805014.003.0004.
Texto completoWiffen, Philip, Marc Mitchell, Melanie Snelling y Nicola Stoner. Adverse drug reactions and drug interactions. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780198735823.003.0002.
Texto completoHenriksen, Niels Engholm y Flemming Yssing Hansen. From Microscopic to Macroscopic Descriptions. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198805014.003.0002.
Texto completoFerner, Robin y Anthony Cox. Drug-induced neurological disease. Editado por Patrick Davey y David Sprigings. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780199568741.003.0240.
Texto completoMisbah, Siraj. Suspected anaphylaxis. Editado por Patrick Davey y David Sprigings. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780199568741.003.0075.
Texto completoHenriksen, Niels E. y Flemming Y. Hansen. Theories of Molecular Reaction Dynamics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198805014.001.0001.
Texto completoRoss, John, Igor Schreiber y Marcel O. Vlad. Determination of Complex Reaction Mechanisms. Oxford University Press, 2006. http://dx.doi.org/10.1093/oso/9780195178685.001.0001.
Texto completoCapítulos de libros sobre el tema "OER reaction"
Bi, Songhu, Zhen Geng, Liming Jin, Mingzhe Xue y Cunman Zhang. "Porous Heterogeneous Sulfide Nickel/Nickel Iron Alloy Catalysts for Oxygen Evolution Reaction of Alkaline Water Electrolysis at High Current Density". En Proceedings of the 10th Hydrogen Technology Convention, Volume 1, 116–21. Singapore: Springer Nature Singapore, 2024. http://dx.doi.org/10.1007/978-981-99-8631-6_13.
Texto completoDeng, Jiayao, Xiao Hu, Gnauizhi Xu, Zhanfeng Deng, Lan Yang, Ding Chen, Ming Zhou y Boyuan Tian. "The Preparation of Iridium-Based Catalyst with Different Melting Point-Metal Nitrate and Its OER Performance in Acid Media". En Proceedings of the 10th Hydrogen Technology Convention, Volume 1, 61–68. Singapore: Springer Nature Singapore, 2024. http://dx.doi.org/10.1007/978-981-99-8631-6_6.
Texto completoBell, Alexis T. "Chapter 3. Understanding the Effects of Composition and Structure on the Oxygen Evolution Reaction (OER) Occurring on NiFeOx Catalysts". En Energy and Environment Series, 79–116. Cambridge: Royal Society of Chemistry, 2018. http://dx.doi.org/10.1039/9781788010313-00079.
Texto completoAndronov, Mikhail, Natalia Andronova, Michael Wand, Jürgen Schmidhuber y Djork-Arné Clevert. "Curating Reagents in Chemical Reaction Data with an Interactive Reagent Space Map". En Lecture Notes in Computer Science, 21–35. Cham: Springer Nature Switzerland, 2024. http://dx.doi.org/10.1007/978-3-031-72381-0_3.
Texto completoCao, Dong, Mengyao Ma y Peng Gao. "Trifunctional Electrocatalysts for the Hydrogen Evolution Reaction (HER), Oxygen Evolution Reaction (OER), and Oxygen Reduction Reaction (ORR)". En Multi-functional Electrocatalysts, 407–33. Royal Society of Chemistry, 2024. http://dx.doi.org/10.1039/9781837674497-00407.
Texto completoKhrizanforova, Vera V. y Yulia H. Budnikova. "MOFs and their Derived Structures for Multifunctional Electrocatalysis". En Advanced Catalysts Based on Metal-organic Frameworks (Part 2), 162–91. BENTHAM SCIENCE PUBLISHERS, 2023. http://dx.doi.org/10.2174/9789815136029123010007.
Texto completoThomassen, Magnus y Svein Sunde. "Electrocatalysts for Oxygen Evolution Reaction (OER)". En PEM Electrolysis for Hydrogen Production, 35–64. CRC Press, 2015. http://dx.doi.org/10.1201/b19096-4.
Texto completo"Electrocatalysts for Oxygen Evolution Reaction (OER)". En PEM Electrolysis for Hydrogen Production, 47–76. CRC Press, 2016. http://dx.doi.org/10.1201/b19096-7.
Texto completoPataniya, Pratik M., Ayushi Shah, Pooja Sharma y C. K. Sumesh. "Trifunctional Electrocatalysts for the Hydrogen Evolution Reaction (HER), Oxygen Evolution Reaction (OER), and Urea Oxidation Reaction (UOR)". En Multi-functional Electrocatalysts, 434–69. Royal Society of Chemistry, 2024. http://dx.doi.org/10.1039/9781837674497-00434.
Texto completoSingha, Debal Kanti, Tapan Ping, Biswajit Nayak, Smruti Vardhan Purohit y Bikash Kumar Jena. "Metal–Organic Framework-derived Bifunctional Electrocatalysts". En Multi-functional Electrocatalysts, 226–65. Royal Society of Chemistry, 2024. http://dx.doi.org/10.1039/9781837674497-00226.
Texto completoActas de conferencias sobre el tema "OER reaction"
Hameed, Areeba, Khulood Logade, Naba Ali, Priya Ghosh, Sadiya Shafath, Sumaiya Salim, Anchu Ashok, Anand Kumar y Mohd Ali H. Saleh Saad. "Highly active Bifunctional Lamo3 (M=Cr, Mn, Fe, Co, Ni) Perovskites for Oxygen Reduction and Oxygen Evolution Reaction in Alkaline Media". En Qatar University Annual Research Forum & Exhibition. Qatar University Press, 2020. http://dx.doi.org/10.29117/quarfe.2020.0106.
Texto completoPanigrahy, Bharati, B. Ramachandra Rao y Vipul Kumar Maheshwari. "Development and Demonstration of In-House Design Green Hydrogen Production Technologies with Reduced CAPEX and OPEX". En ADIPEC. SPE, 2024. http://dx.doi.org/10.2118/222255-ms.
Texto completoMotyka, Elaine, Erin Volpe, Stefan Roeseler, Ryan Plessinger, Tyler Noyes, Chenyu Li, Habin Park, Paul Kohl, William Mustain y Jonathan Kweder. "The Effect of FELTMETAL™ Porous Transport Layer Structure on Performance of Anion Exchange Membrane Water Electrolyzers". En ASME Turbo Expo 2024: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2024. http://dx.doi.org/10.1115/gt2024-129232.
Texto completoMohammed, Habiba, Zainab Muhammad Shuaibu, Binta Asabe Muhammad, Bello Aminu Aminu y Maryam Albashir. "Assessment of Teacher Network for Girls Education (TEN-G) Project in Kaduna State, Nigeri". En Tenth Pan-Commonwealth Forum on Open Learning. Commonwealth of Learning, 2022. http://dx.doi.org/10.56059/pcf10.2671.
Texto completoAhsan, Syed Saad y David Erickson. "Microfluidic Photocatalytic Water-Splitting Reactors". En ASME 2012 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/imece2012-87860.
Texto completoMatsumura, Yukihiko, Go Tsujimoto y Takuro Konishi. "Determination of Heat of Reaction in Supercritical Water". En ASME/JSME 2011 8th Thermal Engineering Joint Conference. ASMEDC, 2011. http://dx.doi.org/10.1115/ajtec2011-44073.
Texto completoGokulakrishnan, P., S. Kwon, A. J. Hamer, M. S. Klassen y R. J. Roby. "Reduced Kinetic Mechanism for Reactive Flow Simulation of Syngas/Methane Combustion at Gas Turbine Conditions". En ASME Turbo Expo 2006: Power for Land, Sea, and Air. ASMEDC, 2006. http://dx.doi.org/10.1115/gt2006-90573.
Texto completoDu, T. Z., Chun-Ho Liu y Y. B. Zhao. "Large-Eddy Simulation of Reactive Pollutant Dispersion Over Street Canyons of Different Aspect Ratios". En ASME 2014 4th Joint US-European Fluids Engineering Division Summer Meeting collocated with the ASME 2014 12th International Conference on Nanochannels, Microchannels, and Minichannels. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/fedsm2014-21252.
Texto completoSchaffer, W. M. y T. V. Bronnikova. "Modeling Peroxidase-Oxidase Interactions". En ASME 2011 Dynamic Systems and Control Conference and Bath/ASME Symposium on Fluid Power and Motion Control. ASMEDC, 2011. http://dx.doi.org/10.1115/dscc2011-5946.
Texto completoLe Cong, Tanh y Philippe Dagaut. "Kinetics of Natural Gas, Natural Gas/Syngas Mixtures Oxidation and Effect of Burnt Gas Recirculation: Experimental and Detailed Modeling". En ASME Turbo Expo 2007: Power for Land, Sea, and Air. ASMEDC, 2007. http://dx.doi.org/10.1115/gt2007-27146.
Texto completoInformes sobre el tema "OER reaction"
Knibb, Rebecca, Lily Hawkins y Dan Rigby. Food Sensitive Study: Wave Two Survey. Food Standards Agency, septiembre de 2022. http://dx.doi.org/10.46756/sci.fsa.nyx192.
Texto completoDong, Yi, LiJia Liu, Jianing Liu, Tianqi Liao, Jieru Zhou y Huaien Bu. Incidences of Adverse Reactions in BNT162b2: A Meta-analysis. INPLASY - International Platform of Registered Systematic Review and Meta-analysis Protocols, enero de 2022. http://dx.doi.org/10.37766/inplasy2022.1.0043.
Texto completoSmith, Donald L. Observations on the Effects of 252Cf Spontaneous-Fission Neutron Spectrum Uncertainties on Uncertainties in Calculated Spectrum-Average Cross Sections for Reactions in the Neutron Dosimetry Library IRDFF-II. IAEA Nuclear Data Section, noviembre de 2022. http://dx.doi.org/10.61092/iaea.wx80-dm11.
Texto completoAhlquist, J. T. y N. N. Watkins. Modeling Continuous-Flow Reactor Improvements over Batch Reactions for Enzyme Catalyzed Microsphere Surface Reactions. Office of Scientific and Technical Information (OSTI), septiembre de 2019. http://dx.doi.org/10.2172/1568027.
Texto completoBordalo, Pedro, Nicola Gennaioli, Yueran Ma y Andrei Shleifer. Over-reaction in Macroeconomic Expectations. Cambridge, MA: National Bureau of Economic Research, agosto de 2018. http://dx.doi.org/10.3386/w24932.
Texto completoSyvash, Kateryna. AUDIENCE FEEDBACK AS AN ELEMENT OF PARASOCIAL COMMUNICATION WITH SCREEN MEDIA-PERSONS. Ivan Franko National University of Lviv, febrero de 2021. http://dx.doi.org/10.30970/vjo.2021.49.11062.
Texto completoda Silveira, Rava Azeredo y Michael Woodford. Noisy Memory and Over-Reaction to News. Cambridge, MA: National Bureau of Economic Research, enero de 2019. http://dx.doi.org/10.3386/w25478.
Texto completoKanner, Joseph, Mark Richards, Ron Kohen y Reed Jess. Improvement of quality and nutritional value of muscle foods. United States Department of Agriculture, diciembre de 2008. http://dx.doi.org/10.32747/2008.7591735.bard.
Texto completoPanizza, Ugo y Dany Jaimovich. Procyclicality or Reverse Causality? Inter-American Development Bank, marzo de 2007. http://dx.doi.org/10.18235/0010973.
Texto completoFerreira, Clodomiro y Stefano Pica. Households’ subjective expectations: disagreement, common drivers and reaction to monetary policy. Madrid: Banco de España, noviembre de 2024. http://dx.doi.org/10.53479/38316.
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