000823551 000__ 05237cam\a2200541Mi\4500 000823551 001__ 823551 000823551 005__ 20230306143932.0 000823551 006__ m\\\\\o\\d\\\\\\\\ 000823551 007__ cr\un\nnnunnun 000823551 008__ 170909s2018\\\\sz\\\\\\o\\\\\001\0\eng\d 000823551 019__ $$a1003106682$$a1003205361$$a1005137414$$a1005299363$$a1005481747$$a1011852712$$a1012449528 000823551 020__ $$a9783319628004$$q(electronic book) 000823551 020__ $$a3319628003$$q(electronic book) 000823551 020__ $$z9783319627991 000823551 020__ $$z3319627996 000823551 0247_ $$a10.1007/978-3-319-62800-4$$2doi 000823551 035__ $$aSP(OCoLC)on1003259672 000823551 035__ $$aSP(OCoLC)1003259672$$z(OCoLC)1003106682$$z(OCoLC)1003205361$$z(OCoLC)1005137414$$z(OCoLC)1005299363$$z(OCoLC)1005481747$$z(OCoLC)1011852712$$z(OCoLC)1012449528 000823551 040__ $$aEBLCP$$beng$$epn$$cEBLCP$$dGW5XE$$dAZU$$dYDX$$dOCLCF$$dN$T$$dCOO$$dUAB$$dOCLCQ$$dU3W$$dCAUOI$$dSNK 000823551 049__ $$aISEA 000823551 050_4 $$aTA418.9.N35 000823551 08204 $$a620.1/15$$223 000823551 24500 $$aNanoenergy :$$bnanotechnology applied for energy production /$$cFlavio Leandro de Souza, Edson Leite, editors. 000823551 250__ $$a2nd ed. 000823551 260__ $$aCham :$$bSpringer,$$c©2018. 000823551 300__ $$a1 online resource (336 pages) 000823551 336__ $$atext$$btxt$$2rdacontent 000823551 337__ $$acomputer$$bc$$2rdamedia 000823551 338__ $$aonline resource$$bcr$$2rdacarrier 000823551 347__ $$atext file$$bPDF$$2rda 000823551 500__ $$aIncludes index. 000823551 504__ $$aReferences6 Developments in Electrocatalysts for Oxygen Reduction and Ethanol Oxidation; 1 Introduction; 1.1 Initial Considerations; 2 Oxygen Reduction Electrocatalysis; 2.1 Nanoparticle; 2.2 Non-noble Electrocatalysts for the Oxygen Reduction Reaction; 3 Ethanol Electro-oxidatio; 4 Conclusions; 4.1 Oxygen Reduction on Noble Metal Electrocatalyst; 4.2 Oxygen Reduction on Non-noble Metal Electrocatalyst; 4.3 Ethanol Oxidation; Acknowledgements; References; 7 Nanocomposites from V2O5 and Lithium-Ion Batteries; 1 Introduction; 2 Vanadium Pentoxide; 3 Nanomaterials; 4 Conclusions. 000823551 5050_ $$aPreface; Contents; 1 Hybrid Solar Cells: Effects of the Incorporation of Inorganic Nanoparticles into Bulk Heterojunction Organic Solar Cells; 1 Introduction; 2 Organic Solar Cells; 3 Semiconductor Nanoparticles in Organic Solar Cells; 3.1 Cd-Based Inorganic Nanoparticles; 3.2 Pb-Based Inorganic Nanoparticles; 4 Metal Nanoparticles in Organic Solar Cells; 5 Conclusions and Perspectives; Acknowledgements; References; 2 Nanomaterials for Solar Energy Conversion: Dye-Sensitized Solar Cells Based on Ruthenium(II) tris-Heteroleptic Compounds or Natural Dyes; 1 Aims and Scope; 2 Introduction. 000823551 5058_ $$a2.1 Dye-Sensitized Solar Cells-Principles and Operation2.2 Performance Experiments; 3 Current-Voltage (I × V) Curves; 4 Photocurrent Action Spectra; 4.1 Molecular Engineering; 5 Ruthenium tris-Heteroleptic Complexes; 5.1 2,22 Bipyridine Derivative Ligands; 6 Amphiphilic Compounds; 7 Donor Antenna Compounds; 8 Thiophene Compounds; 8.1 1,10-Phenanthroline Derivative Ligands; 9 Natural Dyes; 10 Conclusion; Acknowledgements; References; 3 Photocatalytic Water Splitting by Suspended Semiconductor Particles; 1 Introduction; 2 An Overview of Semiconductor Materials Applied to Solar Water Splitting. 000823551 5058_ $$a2.1 UV Light Active Photocatalysts2.2 Visible Light Active Photocatalysts; 2.2.1 Native Visible Light Absorber Materials; 2.2.2 Metal Doping of Wide Band Gap Semiconductors; 2.2.3 Nonmetal Doping of Wide Band Gap Semiconductors; 2.2.4 Self-doped Photocatalyst; 2.2.5 Heterojunctions Photocatalysts; 3 The Tandem Concept for Water Splitting on Particulate Photocatalysts; 4 Efficiency Determination in Solar Water Splitting; 4.1 STH (Solar-to-Hydrogen) Efficiency; 4.2 Apparent Quantum Efficiency (AQE); 5 Conclusion; References. 000823551 5058_ $$a4 Latest Advances on the Columnar Nanostructure for Solar Water Splitting1 Introduction; 2 Colloidal Deposition; 3 Hydrothermal-Assisted Synthesis; 4 Conclusion and Perspectives; References; 5 Biofuel Cells; 1 Introduction; 2 Fundamental Aspects in BFCs Development; 3 Power Energy and Thermodynamics in BFCs; 4 Nanostructured Materials Applied to Modified Electrodes and BFCs; 5 Enzyme-Based Modified Electrodes Applied to BFCs; 6 Microbial-Based Modified Electrodes Applied to BFCs; 7 Implantable BFCs; 8 Bio-inspired Catalysts; 9 Perspectives on Green Energy Generation and Future Applications. 000823551 506__ $$aAccess limited to authorized users. 000823551 520__ $$aPresenting the latest trends in solar energy storage and the main developments in energy in Brazil, this volume explores the revolutionary technology of low-dimensional systems and assesses what the next research moves must be to advance the field. 000823551 588__ $$aDescription based on print version record. 000823551 650_0 $$aNanostructured materials. 000823551 650_0 $$aRenewable energy sources$$xTechnological innovations. 000823551 7001_ $$aSouza, Flavio Leandro de. 000823551 7001_ $$aLeite, Edson Roberto. 000823551 77608 $$iPrint version:$$aDe Souza, Flavio Leandro.$$tNanoenergy : Nanotechnology Applied for Energy Production.$$dCham : Springer International Publishing, ©2017$$z9783319627991 000823551 852__ $$bebk 000823551 85640 $$3SpringerLink$$uhttps://univsouthin.idm.oclc.org/login?url=http://link.springer.com/10.1007/978-3-319-62800-4$$zOnline Access$$91397441.1 000823551 909CO $$ooai:library.usi.edu:823551$$pGLOBAL_SET 000823551 980__ $$aEBOOK 000823551 980__ $$aBIB 000823551 982__ $$aEbook 000823551 983__ $$aOnline 000823551 994__ $$a92$$bISE