Thermochromic Oxide-Based Thin Films and Nanoparticle Composites for Energy-Efficient Glazings
暂无分享,去创建一个
[1] Sabine Hoffmann,et al. Examination of the technical potential of near-infrared switching thermochromic windows for commercial building applications , 2014 .
[2] Javier Garcia-Martinez,et al. Nanotechnology for the energy challenge , 2010 .
[3] Bruno K. Meyer,et al. Tungsten and fluorine co-doping of VO2 films , 2002 .
[4] J. Houghton,et al. Climate Change 2013 - The Physical Science Basis: Working Group I Contribution to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change , 2014 .
[5] Mats Nygren,et al. Electrical and magnetic properties of V1−xWxO2, 0 ≤ x ≤ 0.060 , 1972 .
[6] Charles B. Greenberg,et al. Undoped and doped VO2 films grown from VO(OC3H7)3 , 1983 .
[7] Rene Lopez,et al. Designing Plasmon‐Enhanced Thermochromic Films Using a Vanadium Dioxide Nanoparticle Elastomeric Composite , 2016 .
[8] Claes-Göran Granqvist,et al. Recent Progress in Thermochromics and Electrochromics: A Brief Survey , 2016 .
[9] Mirela Petruta Suchea,et al. Atmospheric Pressure Chemical Vapor Deposition Of Amorphous Tungsten Doped Vanadium Dioxide For smart Window Applications , 2016 .
[10] T. E. Haynes,et al. Temperature-controlled surface plasmon resonance in VO (2) nanorods. , 2002, Optics letters.
[11] Joyeeta Nag,et al. Electron-beam deposition of vanadium dioxide thin films , 2013 .
[12] Thomas C. Grenfell,et al. Representation of a nonspherical ice particle by a collection of independent spheres for scattering , 1999 .
[13] S. Esterby. American Society for Testing and Materials , 2006 .
[14] Russell Binions,et al. Sol-gel approaches to thermochromic vanadium dioxide coating for smart glazing application , 2017 .
[15] J. C. Lee,et al. Doped vanadium oxide for optical switching films , 1986 .
[16] K. Dahmen,et al. Random Field Driven Spatial Complexity at the Mott Transition in VO(2). , 2015, Physical review letters.
[17] Zongtao Zhang,et al. Nanoceramic VO2 thermochromic smart glass: A review on progress in solution processing , 2012 .
[18] Ping Jin,et al. Fabrication of VO2 nanorods/PVP composite fiber mats and their unique optical diffuse reflectance properties , 2014 .
[19] Thompson Hine. COLOR NIEUTRAL THERMOCHROMC LAYERS AND LAMINATES , 2017 .
[20] Lisa Heschong,et al. Daylighting Impacts on Human Performance in School , 2002 .
[21] R. Burnett,et al. It's about time: A comparison of Canadian and American time–activity patterns† , 2002, Journal of Exposure Analysis and Environmental Epidemiology.
[22] Ping Jin,et al. Preparation of VO2/Al-O core-shell structure with enhanced weathering resistance for smart window , 2017 .
[23] Claes-Göran Granqvist,et al. Durability of thermochromic VO2 thin films under heating and humidity: Effect of Al oxide top coatings , 2014 .
[24] Gunther Wyszecki,et al. Color Science: Concepts and Methods, Quantitative Data and Formulae, 2nd Edition , 2000 .
[25] Claes-Goeran Granqvist,et al. Thermochromic sputter‐deposited vanadium oxyfluoride coatings with low luminous absorptance , 1989 .
[26] Gunnar A. Niklasson,et al. Thermochromic light scattering from particulate VO2 layers , 2016 .
[27] Claes-Göran Granqvist,et al. Optical properties of Mg-doped VO2: Absorption measurements and hybrid functional calculations , 2012 .
[28] Yanfeng Gao,et al. Calculation Evidence of Staged Mott and Peierls Transitions in VO2 Revealed by Mapping Reduced-Dimension Potential Energy Surface. , 2015, The journal of physical chemistry letters.
[29] C. Granqvist. Electrochromics for smart windows: Oxide-based thin films and devices , 2014 .
[30] M. Burke,et al. Global non-linear effect of temperature on economic production , 2015, Nature.
[31] Shuyi Li,et al. Bandgap widening in thermochromic Mg-doped VO2 thin films: Quantitative data based on optical absorption , 2013 .
[32] Ning Wang,et al. Terbium-Doped VO2 Thin Films: Reduced Phase Transition Temperature and Largely Enhanced Luminous Transmittance. , 2016, Langmuir : the ACS journal of surfaces and colloids.
[33] Gunnar A. Niklasson,et al. Thermochromic VO2 Films for Energy-Efficient Windows , 1987, Optics & Photonics.
[34] Martin Becker,et al. Influence of doping with alkaline earth metals on the optical properties of thermochromic VO2 , 2015 .
[35] J. F. Smith,et al. Phase diagrams of binary vanadium alloys , 1989 .
[36] Ping Jin,et al. Composite Film of Vanadium Dioxide Nanoparticles and Ionic Liquid-Nickel-Chlorine Complexes with Excellent Visible Thermochromic Performance. , 2016, ACS applied materials & interfaces.
[37] Youn-Bae Kang,et al. Critical evaluation and thermodynamic optimization of the VO–VO2.5 system , 2012 .
[38] Ludvik Martinu,et al. HiPIMS-deposited thermochromic VO2 films with high environmental stability , 2017 .
[39] Geoffrey B. Smith,et al. Preparation of plasmonically resonant VO 2 thermochromic pigment , 2012 .
[40] Russell Binions,et al. Thin Films for Advanced Glazing Applications , 2016 .
[41] Ludvik Martinu,et al. HiPIMS-deposited thermochromic VO2 films on polymeric substrates , 2016 .
[42] Gunnar A. Niklasson,et al. Direct formation of thermochromic composite films of VO2 nanoparticles in SiO2 hosts , 2016, 2016 IEEE 16th International Conference on Nanotechnology (IEEE-NANO).
[43] J. Rezek,et al. Characterization of thermochromic VO 2 (prepared at 250 °C) in a wide temperature range by spectroscopic ellipsometry , 2017 .
[44] Ning Wang,et al. Two-Dimensional SiO2/VO2 Photonic Crystals with Statically Visible and Dynamically Infrared Modulated for Smart Window Deployment. , 2016, ACS applied materials & interfaces.
[45] Naoufal Bahlawane,et al. Vanadium Oxide Compounds: Structure, Properties, and Growth from the Gas Phase , 2014 .
[46] Sergio Altomonte,et al. Daylight for Energy Savings and Psycho-Physiological Well-Being in Sustainable Built Environments , 2009 .
[47] Claes-Göran Granqvist,et al. Nanoparticles of TiO2 and VO2 in dielectric media: Conditions for low optical scattering, and comparison between effective medium and four-flux theories , 2014 .
[48] E. Koudoumas,et al. Thermochromic amorphous VO2 coatings grown by APCVD using a single-precursor , 2014 .
[49] Claes-Göran Granqvist,et al. Thermochromic undoped and Mg-doped VO2 thin films and nanoparticles: Optical properties and performance limits for energy efficient windows , 2014 .
[50] Arild Gustavsen,et al. Fenestration of Today and Tomorrow: A State-of-the-Art Review and Future Research Opportunities , 2013 .
[51] Huihuo Zheng,et al. Computation of the correlated metal-insulator transition in vanadium dioxide from first principles. , 2013, Physical review letters.
[52] F. J. Morin,et al. Oxides Which Show a Metal-to-Insulator Transition at the Neel Temperature , 1959 .
[53] A. Talledo,et al. Electrochromic Vanadium-pentoxide- based Films: Structural, Electrochemical and Optical Properties , 1995 .
[54] Lisa Heschong,et al. Daylighting Impacts on Retail Sales Performance , 2002 .
[55] Aibing Yu,et al. Recent progress in VO2 smart coatings: Strategies to improve the thermochromic properties , 2016 .
[56] Arno Seeboth,et al. Thermochromic and Thermotropic Materials , 2013 .
[57] Claes-Göran Granqvist,et al. Nanothermochromics: Calculations for VO2 nanoparticles in dielectric hosts show much improved luminous transmittance and solar energy transmittance modulation , 2010 .
[58] C. M. Lampert,et al. Large-area chromogenics: Materials and devices for transmittance control. Volume IS 4 , 1990 .
[59] Ali Nazari,et al. Nanotechnology in Eco-Efficient Construction , 2013 .
[60] Matthew D. Pickett,et al. The phase transition in VO2 probed using x-ray, visible and infrared radiations , 2015, 1512.08921.
[61] Tao Lu,et al. Nearly Zero Energy Building Refurbishment , 2013 .
[62] Shobha Muthukumaran,et al. Impact of climate change on urban heat island effect and extreme temperatures: a case‐study , 2016 .
[63] Michael Sayer,et al. Electrical, Optical, Magnetic Resonance and Microhardness Properties of Tungsten-doped VO2, , 1972 .
[64] Mark A. Cane,et al. Climate change in the Fertile Crescent and implications of the recent Syrian drought , 2015, Proceedings of the National Academy of Sciences.
[65] C. Drosos,et al. Perspectives of energy materials grown by APCVD , 2015 .
[66] Michael E. A. Warwick,et al. Thermochromic vanadium dioxide thin films prepared by electric field assisted atmospheric pressure chemical vapour deposition for intelligent glazing application and their energy demand reduction properties , 2016 .
[67] David R. Rosseinsky,et al. Electrochromic materials and devices , 2015 .
[68] Claes-Göran Granqvist,et al. Electronic density-of-states of amorphous vanadium pentoxide films: Electrochemical data and density functional theory calculations , 2014 .
[69] Michael E. A. Warwick,et al. Fluorine doped vanadium dioxide thin films for smart windows , 2011 .
[70] Ping Jin,et al. Functional fiber mats with tunable diffuse reflectance composed of electrospun VO2/PVP composite fibers. , 2014, ACS applied materials & interfaces.
[71] Shuyi Li,et al. Sputter deposition of thermochromic VO2 films on In2O3:Sn, SnO2, and glass: Structure and composition versus oxygen partial pressure , 2015 .
[72] Geoffrey B. Smith,et al. The preparation of a plasmonically resonant VO2 thermochromic pigment , 2009, Nanotechnology.
[73] Claes-Göran Granqvist,et al. Mg doping of thermochromic VO2 films enhances the optical transmittance and decreases the metal-insulator transition temperature , 2009 .
[74] H. Wriedt,et al. The O-V (Oxygen-Vanadium) system , 1989 .
[75] H. Akbari,et al. Local climate change and urban heat island mitigation techniques – the state of the art , 2015 .
[76] David Cahen,et al. Fundamentals of materials for energy and environmental sustainability , 2011 .
[77] Gunnar A. Niklasson,et al. Electrochromics for smart windows: thin films of tungsten oxide and nickel oxide, and devices based on these , 2007 .
[78] Claes-Göran Granqvist,et al. Nanothermochromics with VO2-based core-shell structures: Calculated luminous and solar optical properties , 2011 .
[79] Claes G. Granqvist,et al. Green Nanotechnology: Solutions for Sustainability and Energy in the Built Environment, by G. B. Smith and C. G. Granqvist , 2010 .
[80] M. Maaza,et al. Electronic and optical properties of Mg-, F-doped and Mg-,F-codoped M 1 -VO 2 via hybrid density functional calculations , 2016 .
[81] João A. Labrincha,et al. Eco-Efficient Materials for Mitigating Cooling Needs: Design, Properties and Applications , 2015 .
[82] John B. Goodenough,et al. The two components of the crystallographic transition in VO2 , 1971 .
[83] Erle C. Ellis,et al. The Anthropocene is functionally and stratigraphically distinct from the Holocene , 2016, Science.
[84] Aiping Chen,et al. Sharp semiconductor-to-metal transition of VO2 thin films on glass substrates , 2013 .
[85] Claes-Göran Granqvist,et al. Durability of VO2-based thin films at elevated temperature: Towards thermochromic fenestration , 2014 .
[86] A. I. Maaroof,et al. Nanograin VO2 in the metal phase: a plasmonic system with falling dc resistivity as temperature rises , 2007 .
[87] Giuseppe Peter Vanoli,et al. Cost-Effective Energy Efficient Building Retrofitting : Materials, Technologies, Optimization, and Case Studies , 2017 .
[88] Thomas C. Grenfell,et al. Representation Of A Nonspherical Ice Particle By A Collection Of Independent Spheres For Scattering And Absorption Of Radiation : 2 . Hexagonal Columns And Plates , 2003 .
[89] Anna Laura Pisello,et al. Eco-efficient Materials for Mitigating Building Cooling Needs , 2015 .
[90] I. Papakonstantinou,et al. Intelligent Multifunctional VO2/SiO2/TiO2 Coatings for Self-Cleaning, Energy-Saving Window Panels , 2016 .
[91] Michael E. A. Warwick,et al. Advances in Thermochromic Vanadium Dioxide Films , 2014 .
[92] Ping Jin,et al. Improved luminous transmittance and diminished yellow color in VO2 energy efficient smart thin films by Zn doping , 2014 .
[93] D. Kammen,et al. How America can look within to achieve energy security and reduce global warming , 2008 .
[94] Guoqiang Tan,et al. VO2-based double-layered films for smart windows: Optical design, all-solution preparation and improved properties , 2011 .
[95] Gunnar A. Niklasson,et al. Low-temperature synthesis of thermochromic vanadium dioxide thin films by reactive high power impulse magnetron sputtering , 2016 .
[96] Katerina Tsagaraki,et al. Study of low temperature rf-sputtered Mg-doped vanadium dioxide thermochromic films deposited on low-emissivity substrates , 2016 .
[97] Ludvik Martinu,et al. Thermochromic VO2 thin films deposited by HiPIMS , 2014 .
[98] Richard F. Haglund,et al. Synthesis and characterization of size-controlled vanadium dioxide nanocrystals in a fused silica matrix , 2002 .
[99] Claes-Göran Granqvist,et al. Oxide-based chromogenic coatings and devices for energy efficient fenestration: Brief survey and update on thermochromics and electrochromics , 2014 .
[100] Claes-Göran Granqvist,et al. Thermochromic vanadium-dioxide-based thin films and nanoparticles: Survey of some buildings-related advances , 2016 .
[101] Claes-Göran Granqvist,et al. Start-Up Creation: The Smart Eco-Efficient Built Environment , 2020 .
[102] Claes-Göran Granqvist,et al. Thermochromic VO2 nanorods made by sputter deposition: Growth conditions and optical modeling , 2013 .
[103] Michael E. A. Warwick,et al. Variation of Thermochromic Glazing Systems Transition Temperature, Hysteresis Gradient and Width Effect on Energy Efficiency , 2016 .
[104] Claes-Göran Granqvist,et al. Thermochromics for Energy Efficient Buildings: Thin Surface Coatings and Nanoparticle Composites , 2016 .
[105] C. Granqvist,et al. Thermochromic fenestration with VO2-based materials: Three challenges and how they can be met , 2012 .
[106] I. Parkin,et al. Direct and continuous synthesis of VO2 nanoparticles. , 2015, Nanoscale.
[107] Ivan P. Parkin,et al. Energy modelling studies of thermochromic glazing , 2010 .
[108] Cinzia Buratti,et al. Nano and Biotech Based Materials for Energy Building Efficiency , 2016 .
[109] Roland Steiner,et al. nc-VO2/Al2O3 nanocomposite films prepared by dual target magnetron sputtering , 2008 .
[110] Ioannis Papakonstantinou,et al. A bioinspired solution for spectrally selective thermochromic VO2 coated intelligent glazing. , 2013, Optics express.
[111] D. Nečas,et al. Gwyddion: an open-source software for SPM data analysis , 2012 .
[112] Ivan P. Parkin,et al. Nano-composite thermochromic thin films and their application in energy-efficient glazing , 2010 .
[113] Claes-Göran Granqvist,et al. Thermochromic multilayer films of VO2 and TiO2 with enhanced transmittance , 2009 .
[114] E. Aperathitis,et al. Thermochromic performance of Mg-doped VO2 thin films on functional substrates for glazing applications , 2016 .
[115] Gunnar A. Niklasson,et al. Thermochromic VO2‐based multilayer films with enhanced luminous transmittance and solar modulation , 2009 .
[116] C. Granqvist,et al. Chromogenic materials for transmittance control of large-area windows , 1990 .
[117] Claes-Göran Granqvist,et al. Thermochromic VO2 films by thermal oxidation of vanadium in SO2 , 2016 .
[118] Tamma A. Carleton,et al. Social and economic impacts of climate , 2016, Science.