Solar energy materials for glazing technologies
暂无分享,去创建一个
[1] Stephen B. Marks. The effect of crystal size on the thermal energy storage capacity of thickened Glauber's salt , 1983 .
[2] S Bosi,et al. A robust convection cover material for selective radiative cooling applications , 2011 .
[3] Li-jiu Wang,et al. Synthesis and characterization of silica aerogels by a novel fast ambient pressure drying process , 2006 .
[4] Eleanor S. Lee,et al. Subject Responses to Electrochromic Windows , 2006 .
[5] Vladimir V Tsukruk,et al. Electrically tunable plasmonic behavior of nanocube-polymer nanomaterials induced by a redox-active electrochromic polymer. , 2014, ACS nano.
[6] Yao Li,et al. Improved electrochromic performance of ordered macroporous tungsten oxide films for IR electrochromic device , 2012 .
[7] Valentina Serra,et al. Experimental analysis of the energy performance of a full-scale PCM glazing prototype , 2014 .
[8] Thomas F. Jaramillo,et al. Enhancement of Photocatalytic and Electrochromic Properties of Electrochemically Fabricated Mesoporous WO3 Thin Films , 2003 .
[9] J. Mohelníková. Materials for reflective coatings of window glass applications , 2009 .
[10] Ivan P. Parkin,et al. Intelligent thermochromic windows , 2006 .
[11] P. Ekins,et al. The geographical distribution of fossil fuels unused when limiting global warming to 2 °C , 2015, Nature.
[12] M. Aegerter,et al. Comparison of spray pyrolyzed FTO, ATO and ITO coatings for flat and bent glass substrates , 1999 .
[13] Zhaoyang Fan,et al. Changes in VO2 band structure induced by charge localization and surface segregation , 2009 .
[14] C. Gueymard,et al. Spectral effects on the transmittance, solar heat gain, and performance rating of glazing systems , 2009 .
[15] Geoffrey Smith. Materials and systems for efficient lighting and delivery of daylight , 2004 .
[16] K. Ismail,et al. Two-dimensional model for the double glass naturally ventilated window , 2005 .
[17] Stephen M. Morris,et al. High-efficiency multistable switchable glazing using smectic A liquid crystals , 2009 .
[18] Claes-Göran Granqvist,et al. Out of a niche , 2006, Nature materials.
[19] F. Krebs,et al. Stability/degradation of polymer solar cells , 2008 .
[20] C. Bignozzi,et al. Photo-electrochemical properties of nanostructured WO3 prepared with different organic dispersing agents , 2010 .
[21] Francesco Goia,et al. Possibilities for characterization of a PCM window system using large scale measurements , 2013 .
[22] K. Kalcher,et al. Electrochromism of iron oxide films prepared via the sol-gel route by the dip-coating technique , 1994 .
[23] C. Brinker,et al. Silica aerogel films at ambient pressure , 1995 .
[24] Valentina Serra,et al. Improving thermal comfort conditions by means of PCM glazing systems , 2013 .
[25] B. E. Yoldas,et al. Deposition of optically transparent IR reflective coatings on glass. , 1984, Applied optics.
[26] M. Glora,et al. Highly insulating aerogel glazing for solar energy usage , 2002 .
[27] Ion Tiginyanu,et al. Well-aligned arrays of vertically oriented ZnO nanowires electrodeposited on ITO-coated glass and their integration in dye sensitized solar cells , 2010 .
[28] Evan L. Runnerstrom,et al. Dynamically modulating the surface plasmon resonance of doped semiconductor nanocrystals. , 2011, Nano letters.
[29] Ning Wang,et al. Multifunctional overcoats on vanadium dioxide thermochromic thin films with enhanced luminous transmission and solar modulation, hydrophobicity and anti-oxidation , 2013 .
[30] Jun Wang,et al. Thermochromic properties and low emissivity of ZnO:Al/VO2 double-layered films with a lowered phase transition temperature , 2011 .
[31] Yanfeng Gao,et al. Synthesis and phase transition behavior of undoped VO2 with a strong nano-size effect , 2011 .
[32] F. Schwertfeger,et al. Applications for silica aerogel products , 1998 .
[33] I. Pollet,et al. Condensation and Radiation Transmittance of Greenhouse Cladding Materials, Part 2: Results for a Complete Condensation Cycle , 2000 .
[34] Rakel Wreland Lindström,et al. Thin films of vanadium oxide grown on vanadium metal: oxidation conditions to produce V2O5 films for Li‐intercalation applications and characterisation by XPS, AFM, RBS/NRA , 2006 .
[35] Fernanda Rodrigues,et al. Development of a window shutter with phase change materials: Full scale outdoor experimental approach , 2015 .
[36] T. S. Eriksson,et al. Surface coatings for radiative cooling applications: Silicon dioxide and silicon nitride made by reactive rf-sputtering , 1985 .
[37] Alessandro Carbonari,et al. Experimental estimation of the solar properties of a switchable liquid shading system for glazed facades , 2012 .
[38] A. Ali,et al. Effect of aging, thickness and color on both the radiative properties of polyethylene films and performance of the nocturnal cooling unit , 1998 .
[39] E. Moretti,et al. Glazing systems with silica aerogel for energy savings in buildings , 2012 .
[40] Akira Hoyano,et al. A numerical simulation method for analyzing the thermal improvement effect of super-hydrophilic photocatalyst-coated building surfaces with water film on the urban/built environment , 2008 .
[41] Martyn E. Pemble,et al. Vanadium oxides prepared by liquid injection MOCVD using vanadyl acetylacetonate , 2004 .
[42] Hong Ye,et al. Performance demonstration and evaluation of the synergetic application of vanadium dioxide glazing and phase change material in passive buildings , 2014 .
[43] A. Goetzberger,et al. Photovoltaic materials, history, status and outlook , 2003 .
[44] Christophe Menezo,et al. Efficient single glazed flat plate photovoltaic–thermal hybrid collector for domestic hot water system , 2011 .
[45] Yanfeng Gao,et al. Nanoporous thermochromic VO(2) films with low optical constants, enhanced luminous transmittance and thermochromic properties. , 2011, ACS applied materials & interfaces.
[46] S. Corgnati,et al. Experimental assessment of the performance of an active transparent façade during actual operating conditions , 2007 .
[47] A. Schüler,et al. Thermal solar collector with VO2 absorber coating and V1-xWxO2 thermochromic glazing - Temperature matching and triggering , 2014 .
[48] Nopparat Khamporn,et al. Heat transmission through a glass window with a curved venetian blind installed , 2014 .
[49] Zhang Lin,et al. Thermal characteristics of water-flow double-pane window , 2011 .
[50] Nila Keumala,et al. THE EFFECTIVENESS OF THE SUSTAINABLE FLOWING WATER FILM IN IMPROVING THE SOLAR-OPTICAL PROPERTIES OF GLAZING IN THE TROPICS , 2014 .
[51] Hidekazu Tanaka,et al. Metal-insulator transition with multiple micro-scaled avalanches in VO2 thin film on TiO2(001) substrates , 2012 .
[52] J. Xamán,et al. Thermal analysis for a double glazing unit with and without a solar control film (SnS-CuxS) for using in hot climates , 2011 .
[53] Targo Kalamees,et al. Cost optimal and nearly zero (nZEB) energy performance calculations for residential buildings with R , 2011 .
[54] John B. Goodenough,et al. The two components of the crystallographic transition in VO2 , 1971 .
[55] A. Hjortsberg,et al. Radiative cooling to low temperatures: General considerations and application to selectively emitting SiO films , 1981 .
[56] Claes-Göran Granqvist,et al. Nanothermochromics: Calculations for VO2 nanoparticles in dielectric hosts show much improved luminous transmittance and solar energy transmittance modulation , 2010 .
[57] Jørgen Munthe Schultz,et al. Evacuated aerogel glazings , 2008 .
[58] É. Yashina. Preparation and Properties of Polycrystalline ZnS for IR Applications , 2003 .
[59] K. Emery,et al. Proposed reference irradiance spectra for solar energy systems testing , 2002 .
[60] Finn Harken Kristiansen,et al. Super insulating aerogel glazing , 2005 .
[61] Y. Oh,et al. Transparent SiO2 aerogels prepared by ambient pressure drying with ternary azeotropes as components of pore fluid , 2008 .
[62] Jun Peng,et al. Gas-sensing properties of α-Fe2O3 thin films prepared by plasma-enhanced chemical vapour deposition , 1994 .
[63] S. Mali,et al. Enhanced electrochromic coloration in Ag nanoparticle decorated WO3 thin films , 2013 .
[64] Rupa Basu,et al. Relation between elevated ambient temperature and mortality: a review of the epidemiologic evidence. , 2002, Epidemiologic reviews.
[65] N. Kikuchi,et al. Super-hydrophilic and solar-heat-reflective coatings for smart windows , 2013 .
[66] Hong Ye,et al. The demonstration and simulation of the application performance of the vanadium dioxide single glazing , 2013 .
[67] Werner Platzer,et al. Total heat transport data for plastic honeycomb-type structures , 1992 .
[68] Yang-Fan Xu,et al. Hydrothermal Fabrication of Hierarchically Anatase TiO2 Nanowire arrays on FTO Glass for Dye-sensitized Solar Cells , 2013, Scientific Reports.
[69] Tomas Gil-Lopez,et al. Influence of double glazing with a circulating water chamber on the thermal energy savings in buildings , 2013 .
[70] Hongxing Yang,et al. Study on thermal performance of semi-transparent building-integrated photovoltaic glazings , 2008 .
[71] Ivan P. Parkin,et al. Intelligent window coatings: Atmospheric pressure chemical vapor deposition of tungsten-doped vanadium dioxide , 2004 .
[72] Valentina Serra,et al. Spectral and angular solar properties of a PCM-filled double glazing unit , 2015 .
[73] M Janak,et al. Assessing the overall performance of advanced glazing systems , 1998 .
[74] Zhang Lin,et al. Innovative solar windows for cooling-demand climate , 2010 .
[75] Shuyi Li,et al. Electrochromics and thermochromics for energy efficient fenestration : Functionalities based on nanoparticles of In2O3:Sn and VO2 , 2014 .
[76] X. Lan,et al. Tuning Thermal Properties of Latent Heat Storage Material through Confinement in Porous Media: The Case of (1-CnH2n+1NH3)2ZnCl4 (N=10 and 12) , 2014 .
[77] Matthias Rommel,et al. Application of transparent insulation materials in improved flat-plate collectors and integrated collector storages , 1992 .
[78] Sreenivasaiah Purushothama Rao,et al. Experimental determination of thermal performance of glazed façades with water film, under direct solar radiation in the tropics , 2011 .
[79] Viktoria Martin,et al. Active free cooling optimization with thermal energy storage in Stockholm , 2012 .
[80] K. F. Fong,et al. Annual performance of building-integrated photovoltaic/water-heating system for warm climate application , 2009 .
[81] D. Basak,et al. Effect of substrate-induced strain on the structural, electrical, and optical properties of polycrystalline ZnO thin films , 2004 .
[82] K Darkwa,et al. Quasi-isotropic laminated phase-change material system , 2007 .
[83] Peng Xu,et al. Case study: Energy savings from solar window film in two commercial buildings in Shanghai , 2012 .
[84] Zongtao Zhang,et al. Nanoceramic VO2 thermochromic smart glass: A review on progress in solution processing , 2012 .
[85] Jean-Louis Scartezzini,et al. Reactively sputtered coatings on architectural glazing for coloured active solar thermal facades , 2014 .
[86] Hong Ye,et al. The performance evaluation of shape-stabilized phase change materials in building applications using energy saving index , 2014 .
[87] G. Mihalakakou,et al. The urban heat island effect in a small Mediterranean city of high summer temperatures and cooling energy demands , 2013 .
[88] Shriram Ramanathan,et al. Structure-functional property relationships in rf-sputtered vanadium dioxide thin films , 2007 .
[89] Y. Cho,et al. Stress-induced anomalous shift of optical band gap in ZnO:Al thin films , 2009 .
[90] Arild Gustavsen,et al. Properties, Requirements and Possibilities of Smart Windows for Dynamic Daylight and Solar Energy Control in Buildings: A State-of-the-Art Review , 2010 .
[91] F. Yakuphanoglu,et al. The role of pH and boron doping on the characteristics of sol gel derived ZnO films , 2011 .
[92] N. D. Kaushika,et al. Solar transparent insulation materials: a review , 2003 .
[93] P. W. O’Callaghan,et al. Phase-change drywalls in a passive-solar building , 2006 .
[94] S. Lim,et al. Modeling of optical and energy performance of tungsten-oxide-based electrochromic windows including their intermediate states , 2013 .
[95] Satyen K. Deb,et al. Stand-alone photovoltaic-powered electrochromic smart window , 2001 .
[96] Carlos B. Pinheiro,et al. Inkjet printing of sol-gel synthesized hydrated tungsten oxide nanoparticles for flexible electrochromic devices. , 2012, ACS applied materials & interfaces.
[97] Esam M. Alawadhi,et al. Using phase change materials in window shutter to reduce the solar heat gain , 2012 .
[98] Gunnar A. Niklasson,et al. Electrochromics for smart windows: thin films of tungsten oxide and nickel oxide, and devices based on these , 2007 .
[99] L. P. Purohit,et al. Highly transparent and conducting boron doped zinc oxide films for window of Dye Sensitized Solar Cell applications , 2012 .
[100] J. Jirešová,et al. Iron oxide thin film gas sensor , 1994 .
[101] Gunnar A. Niklasson,et al. Thermochromic VO2‐based multilayer films with enhanced luminous transmittance and solar modulation , 2009 .
[102] Arild Gustavsen,et al. Phase Change Materials for Building Applications: A State-of-the-Art Review , 2010 .
[103] Arild Gustavsen,et al. Key elements of and material performance targets for highly insulating window frames , 2011 .
[104] Dan Zhou,et al. Review on thermal energy storage with phase change materials (PCMs) in building applications , 2012 .
[105] Carmen Vázquez,et al. Modelling and electro-optical testing of suspended particle devices , 2008 .
[106] K. F. Fong,et al. A Comparative Study of PV Glazing Performance in Warm Climate , 2009 .
[107] Huijuan Yu,et al. Low infrared emissivity of polyurethane/Cu composite coatings , 2009 .
[108] J. C. Lee,et al. Doped vanadium oxide for optical switching films , 1986 .
[109] Christoph Maurer,et al. Closed translucent façade elements with switchable U-value—A novel option for energy management via the facade , 2015 .
[110] Mario A. Medina,et al. On the importance of the location of PCMs in building walls for enhanced thermal performance , 2013 .
[111] R. Almanza,et al. Solar filters based on iron oxides used as efficient windows for energy savings , 2007 .
[112] Arild Gustavsen,et al. Insulating glazing units with silica aerogel granules: The impact of particle size , 2014 .
[113] Yalin Lu,et al. Simulation of smart windows in the ZnO/VO2/ZnS sandwiched structure with improved thermochromic properties , 2013 .
[114] P. H. Berning. Principles of design of architectural coatings. , 1983, Applied optics.
[115] G. Fang,et al. Preparation and characteristics of microencapsulated palmitic acid with TiO2 shell as shape-stabilized thermal energy storage materials , 2014 .
[116] L. Aranda,et al. Silica aerogel , 2001 .
[117] Eleanor S. Lee,et al. End user impacts of automated electrochromic windows in a pilot retrofit application , 2012 .
[118] Mats Sandberg,et al. Thermal analysis of super insulated windows (numerical and experimental investigations) , 1999 .
[119] A. C. Dillon,et al. Metal oxide nano-particles for improved electrochromic and lithium-ion battery technologies , 2008 .
[120] U. Krašovec,et al. Photoelectrochromic window with Pt catalyst , 2006 .
[121] H. Schade,et al. Photovoltaic thin‐film technology based on hydrogenated amorphous silicon , 2002 .
[122] Bobby To,et al. Crystalline WO3 Nanoparticles for Highly Improved Electrochromic Applications , 2006 .
[123] P. Jin,et al. Synthesis and characterization of plate-like VO2(M)@SiO2 nanoparticles and their application to smart window , 2013 .
[124] A. Polity,et al. Annealing effects on VO2 thin films deposited by reactive sputtering , 2006 .
[125] Björn Karlsson,et al. Increased solar energy and daylight utilisation using anti-reflective coatings in energy efficient windows , 2005 .
[126] A. Hunt,et al. Thermal characterization of carbon-opacified silica aerogels☆ , 1995 .
[127] C. Granqvist. Transparent conductors as solar energy materials: A panoramic review , 2007 .
[128] M. Deepa,et al. Red to blue high electrochromic contrast and rapid switching poly(3,4-ethylenedioxypyrrole)-Au/Ag nanocomposite devices for smart windows. , 2011, Chemphyschem : a European journal of chemical physics and physical chemistry.
[129] Ping Jin,et al. TiO2(R)/VO2(M)/TiO2(A) multilayer film as smart window: Combination of energy-saving, antifogging and self-cleaning functions , 2015 .
[130] Tin-Tai Chow,et al. Potential application of “see-through” solar cells in ventilated glazing in Hong Kong , 2009 .
[131] Tilmann E. Kuhn. Solar control: Comparsion of two new systems with the state of the art on the basis of a new general evaluation method for facades with venetian blinds or other solar control systems , 2006 .
[132] Chaiwat Engtrakul,et al. Scalable synthesis of improved nanocrystalline, mesoporous tungsten oxide films with exceptional electrochromic performance , 2015 .
[133] Nopparat Khamporn,et al. Effect of installing a venetian blind to a glass window on human thermal comfort , 2014 .
[134] A Bassam,et al. Water film cooling over the glass cover of a solar still including evaporation effects , 1997 .
[135] F. Schneider. OKAGEL: High Insulating Day Lighting Systems , 2011 .
[136] S. Krauter. Increased electrical yield via water flow over the front of photovoltaic panels , 2004 .
[137] Kuo-Chuan Ho,et al. Photovoltaic electrochromic device for solar cell module and self-powered smart glass applications , 2012 .
[138] David R. Rosseinsky,et al. Electrochromic Systems and the Prospects for Devices , 2001 .
[139] D. Kammen,et al. How America can look within to achieve energy security and reduce global warming , 2008 .
[140] Chao Ma,et al. Flexible electrochromic device based on poly (3,4-(2,2-dimethylpropylenedioxy)thiophene) , 2008 .
[141] Mohammad Hasan Abbasi,et al. Silica aerogel; synthesis, properties and characterization , 2008 .
[142] Michel Prassas,et al. Glasses from aerogels , 1990 .
[143] Hidekazu Tanaka,et al. Interface effect on metal-insulator transition of strained vanadium dioxide ultrathin films , 2007 .
[144] Xiaosong Zhang,et al. Comparative study on the dynamic heat transfer characteristics of PCM-filled glass window and hollow glass window , 2014 .
[145] F. Simone,et al. Effect of switchable glazing on discomfort glare from windows , 2009 .
[146] Cinzia Buratti,et al. Experimental performance evaluation of aerogel glazing systems , 2012 .
[147] Zhaoyang Fan,et al. Structural, electrical, and terahertz transmission properties of VO2 thin films grown on c-, r-, and m-plane sapphire substrates , 2012 .
[148] D. Ruggi,et al. The radiative cooling of selective surfaces , 1975 .
[149] Claes-Göran Granqvist,et al. Mg doping of thermochromic VO2 films enhances the optical transmittance and decreases the metal-insulator transition temperature , 2009 .
[150] A. Pennisi,et al. Daylighting performance of an electrochromic window in a small scale test-cell , 2009 .
[151] Patrick James,et al. Potential of emerging glazing technologies for highly glazed buildings in hot arid climates , 2008 .
[152] Sabine Hoffmann,et al. An empirical study of a full-scale polymer thermochromic window and its implications on material science development objectives , 2013 .
[153] Chunye Xu,et al. A novel photoelectrochromic device based on poly(3,4-(2,2-dimethylpropylenedioxy)thiophene) thin film and dye-sensitized solar cell , 2012 .
[154] Yanfeng Gao,et al. Pt/VO2 double-layered films combining thermochromic properties with low emissivity , 2010 .
[155] Lawrence W. Hrubesh,et al. Thin aerogel films for optical, thermal, acoustic and electronic applications , 1995 .