Review Topical Sections

Grating optical filters for smart windows: Materials, calculations and prospects

  • Received: 10 July 2020 Accepted: 27 September 2020 Published: 05 November 2020
  • Smart windows with advanced architectural glass coatings providing the comfortable daylight and thermal environment indoors are an important component to improve the energy efficiency of the buildings. Chromogenic and other materials potentially applicable for filtering the solar radiation are reviewed. They have a variety of mechanisms for changing the light transmission depending on change in the ambient conditions or under the influence of electric current. A smart window with additional function of angular filtering of solar radiation without using the blinds or other light redistribution devices is described. Such a window has an optical filter consisting of parallel non-transmissive (absorptive, reflective or scattering, including chromogenics) strips on two surfaces of the pane(s). The filter blocks the direct sunlight partially or completely in a preset angular range and transmits the diffused light providing comfortable day lighting indoors. Methods for calculating the geometrical parameters of the gratings considering the annual and daily change in the solar radiation, the location of the building and the window's azimuth are given. Calculated angular and temporal characteristics of the light transmittance demonstrate the angular selectivity of the transmission of a smart window with grating optical filter compared to a conventional smart window fully glazed with chromogenic glass. A comparative assessment of the potential of various chromogenic and other materials for the use in smart windows, as well as in grating filters for them, is carried out. The future prospects of the field are declared.

    Citation: Rustam Zakirullin. Grating optical filters for smart windows: Materials, calculations and prospects[J]. AIMS Materials Science, 2020, 7(6): 720-771. doi: 10.3934/matersci.2020.6.720

    Related Papers:

  • Smart windows with advanced architectural glass coatings providing the comfortable daylight and thermal environment indoors are an important component to improve the energy efficiency of the buildings. Chromogenic and other materials potentially applicable for filtering the solar radiation are reviewed. They have a variety of mechanisms for changing the light transmission depending on change in the ambient conditions or under the influence of electric current. A smart window with additional function of angular filtering of solar radiation without using the blinds or other light redistribution devices is described. Such a window has an optical filter consisting of parallel non-transmissive (absorptive, reflective or scattering, including chromogenics) strips on two surfaces of the pane(s). The filter blocks the direct sunlight partially or completely in a preset angular range and transmits the diffused light providing comfortable day lighting indoors. Methods for calculating the geometrical parameters of the gratings considering the annual and daily change in the solar radiation, the location of the building and the window's azimuth are given. Calculated angular and temporal characteristics of the light transmittance demonstrate the angular selectivity of the transmission of a smart window with grating optical filter compared to a conventional smart window fully glazed with chromogenic glass. A comparative assessment of the potential of various chromogenic and other materials for the use in smart windows, as well as in grating filters for them, is carried out. The future prospects of the field are declared.


    加载中


    [1] Casini M (2016) Smart Buildings: Advanced Materials and Nanotechnology to Improve Energy-Efficiency and Environmental Performance, Woodhead Publishing.
    [2] Rezaei SD, Shannigrahi S, Ramakrishna S (2017) A review of conventional, advanced, and smart glazing technologies and materials for improving indoor environment. Sol Energ Mater Sol C 159: 26-51.
    [3] Desideri U, Asdrubali F (2018) Handbook of Energy Efficiency in Buildings, 1 Ed., Butterworth-Heinemann.
    [4] Casini M (2018) Active dynamic windows for buildings: A review. Renew Energ 119: 923-934.
    [5] Berning PH (1983) Principles of design of architectural coatings. Appl Optics 22: 4127-4141.
    [6] Horowitz F, Pereira MB, de Azambuja GB (2011) Glass window coatings for sunlight heat reflection and co-utilization. Appl Optics 50: C250-C252.
    [7] Marquez H, Rincon JM, Celaya LE (1990) Experimental study of CdCl2: CuCl photochromic coatings. Appl Optics 29: 3699-3703.
    [8] Neveux D (1993) Photochromic effect in germanosilicate fibers at very low intensities in the blue-green domain. Appl Optics 32: 3952-3958.
    [9] Fanderlik I (1996) Vlastnostiskel, Informatorium.
    [10] Scarminio J, Lourenco A, Gorenstein A (1997) Electrochromism and photochromism in amorphous molybdenum oxide films. Thin Solid Films 302: 66-70.
    [11] Gavrilyuk A (1999) Photochromism in WO3 thin films. Electrochim Acta 44: 3027-3037.
    [12] Cattaneo S, Lecomte S, Bosshard C, et al. (2002) Photoinduced reversible optical gratings in photochromic diarylethene-doped polymeric thin films. JOSA B 19: 2032-2038.
    [13] Dürr H, Bouas-Laurent H (2003) Photochromism: Molecules and Systems, 1 Ed., Elsevier.
    [14] Chiang CH, Chen JC, Hu C (2007) Photorefractive and photochromic properties of Ru-doped lithium niobate crystal, CLEO/Europe and IQEC 2007 Conference Digest. The European Conference on Lasers and Electro-Optics, OSA publishing, CC_15.
    [15] Kiyama H, Fujimura R, Shimura T, et al. (2007) Photorefractive effect and photochromism in Fe doped GaN, Controlling Light with Light: Photorefractive Effects, Photosensitivity, Fiber Gratings, Photonic Materials and More. Photorefractive Effects, Photosensitivity, Fiber Gratings, Photonic Materials and More, OSA publishing, MB1.
    [16] Ferrari JA, Perciante CD (2008) Two-state model of light induced activation and thermal bleaching of photochromic glasses: theory and experiments. Appl Optics 47: 3669-3673.
    [17] Pardo R, Zayat M, Levy D (2011) Photochromic organic-inorganic hybrid materials. Chem Soc Rev 40: 672-687.
    [18] Diop D, Simonot L, Martínez-García J, et al. (2016) Spectral and color changes of Ag/TiO2 photochromic films deposited on diffusing paper and transparent flexible plastic substrates. Appl Spectrosc 71: 1271-1279.
    [19] Hocevar M, Bogati S, Georg A, et al. (2017) A photoactive layer in photochromic glazing. Sol Energ Mater Sol C 171: 85-90.
    [20] Wu L YL, Zhao Q, Huang H, et al. (2017) Sol-gel based photochromic coating for solar responsive smart window. Surf Coat Tech 320: 601-607.
    [21] Hocevar M, Krasovec UO (2018) A photochromic single glass pane. Sol Energ Mater Sol C 186: 111-114.
    [22] Montero J, Martinsen F, Lelis M (2018) Preparation of yttrium hydride-based photochromic films by reactive magnetron sputtering. Sol Energ Mater Sol C 177: 106-109.
    [23] Perciante CD, Ferrari JA (2019) Transversal observation of the light-induced color-center concentration in photochromic glasses in stationary state. Appl Optics 58: 9570-9576.
    [24] Yokoyama Y, Yamane T, Kurita Y (1991) Photochromism of a protonated 5-dimethylaminoindolylfulgide: a model of a non-destructive readout for a photon mode optical memory. J Chem Soc Chem Commun 24: 1722-1724.
    [25] Lévesque I, Leclerc M (1995) Ionochromic effects in regioregular ether-substituted polythiophenes. J Chem Soc Chem Commun 22: 2293-2294.
    [26] Shepelenko EN, Podshibyakin VA, Tikhomirova KS, et al. (2018) Photo- and ionochromicthienyl (coumarinyl) thiazoles. J Mol Struct 1163: 221-226.
    [27] Chernyshev AV, Voloshin NA, Rostovtseva IA, et al. (2018) Polychromogenic molecular systems based on photo- and ionochromic spiropyrans. Dyes Pigments 158: 506-516.
    [28] Gong H, Wang C, Liu M, et al. (2001) Acidichromism in the Langmuir-Blodgett films of novel photochromic spiropyran and spirooxazine derivatives. J Mater Chem 11: 3049-3052.
    [29] Yin MF, Jiao TF, Liu MH (2007) Acidichromism in the LB film of bolaform Schiff base. Chinese Chem Lett 18: 30-32.
    [30] Zheng C, Fan C, Pu S, et al. (2016) A novel Br-substituted diarylethene: Synthesis, crystal structure, and solvent dependent acidichromism. J Mol Struct 1123: 355-359.
    [31] Mott NF, Friedman L (1974) Metal-insulator transitions in VO2, Ti2O3 and Ti2-xVxO3. Philos Mag 30: 389-402.
    [32] Jiang SJ, Ye CB, Khan MSR (1991) Evolution of thermochromism during oxidation of evaporated vanadium films. Appl Optics 30: 847-851.
    [33] Tazawa M, Jin P, Tanemura S (1998) Optical constants of V1-xWxO2 films. Appl Optics 37: 1858-1861.
    [34] Heo KC, Sohn Y, Yi J, et al. (2012) Reflective color display using thermochromic pigments. Appl Optics 51: 4246-4249
    [35] Gao Y, Luo H, Zhang, et al. (2012) Nanoceramic VO2 thermochromic smart glass: A review on progress in solution processing. Nano Energy 1: 221-246.
    [36] Tan X, Yao T, Long R, et al. (2012) Unraveling metal-insulator transition mechanism of VO2 triggered by tungsten doping. Sci Rep 2: 466-471.
    [37] Taylor A, Parkin I, Noor N, et al. (2013) A bioinspired solution for spectrally selective thermochromic VO2 coated intelligent glazing. Opt Express 21: A750-A764.
    [38] Heo KC, Son PK, Sohn Y, et al. (2013) Reflective thermochromic display on polyethylene naphthalate film. J Opt Soc Korea 17: 168-171.
    [39] Liu C, BalinI, Magdassi S, et al. (2015) Vanadium dioxide nanogrid films for high transparency smart architectural window applications. Opt Express 23: A124-A132.
    [40] Wang Y, Su D, Huang Z, et al. (2015) VO2 Film with high luminous transmittance and infrared modulation for smart windows application, Optical Nanostructures and Advanced Materials for Photovoltaics, OSA publishing, JTu5A-28.
    [41] Liu Y, Liu J, Li Y, et al. (2016) Effect of annealing temperature on the structure and properties of vanadium oxide films. Opt Mater Express 6: 1552-1560.
    [42] Baloukas B, Loquai S, Martinu L (2016) Low emissivity coatings incorporating thermochromic VO2: Performance enhancement and new opportunities. Optical Interference Coatings, MD-5.
    [43] Wang S, Liu X, Ji R (2016) Tuning phase transition temperature of VO2 thin films with annealing O2 pressure, Optical Interference Coatings 2016. Optical Interference Coatings, OSA publishing, MD-10.
    [44] Sinko JE, Gaffney M, Preusser R, et al. (2016) Diffuse reflectance study on thermochromic coatings for solar infrared management, Advanced Photonics 2016 (IPR, NOMA, Sensors, Networks, SPPCom, SOF). Novel Optical Materials and Applications, OSA publishing, NoW1D-4.
    [45] Jostmeier T, Mangold M, Zimmer J, et al. (2016) Thermochromic modulation of surface plasmon polaritons in vanadium dioxide nanocomposites. Opt Express 24: 17322.
    [46] Liang Z, Zhao L, Meng W, et al. (2017) Tungsten-doped vanadium dioxide thin films as smart windows with self-cleaning and energy-saving functions. J Alloys Compd 694: 124-131.
    [47] Yang Y-S, Yang Z, Chiang FBY, et al. (2017) Tungsten doped VO2/microgels hybrid thermochromic material and its smart window application. RSC Adv 7: 7758-7762.
    [48] Cao Z, Lu Y, Xiao X, et al. (2017) Tunable simultaneously visible-light and near-infrared transmittance for VO2/SiO2 composite films to enhance thermochromic properties. Mater Lett 209: 609-612.
    [49] Wang N, Goh QS, Lee PL, et al. (2017) One-step hydrothermal synthesis of rare earth/W-codoped VO2 nanoparticles: Reduced phase transition temperature and improved thermochromic properties. J Alloys Compd 711: 222-228.
    [50] Cai L, Wu X, Gao Q, et al. (2018) Effect of morphology on the near infrared shielding property and thermal performance of K0.3WO3 blue pigments for smart window applications. Dyes Pigments 156: 33-38.
    [51] Zhang K, Shi Y, Wu L, et al. (2018) Thermo- and pH-responsive starch derivatives for smart window. Carbohyd Polym 196: 209-216.
    [52] Xu F, Cao X, Zhu J, et al. (2018) Broadband thermochromic VO2-based composite film with ultra-high solar modulation ability. Mater Lett 222: 62-65.
    [53] Wang S, Owusu KA, Mai L, et al. (2018) Vanadium dioxide for energy conservation and energy storage applications: Synthesis and performance improvement. Appl Energ 211: 200-217.
    [54] Drosos C, Vernardou D (2018) Advancements, challenges and prospects of chemical vapour pressure at atmospheric pressure on vanadium dioxide structures. Materials 11: 384.
    [55] Ji C, Wu Z, Wu X, et al. (2018) Al-doped VO2 films as smart window coatings: Reduced phase transition temperature and improved thermochromic performance. Sol Energ Mater Sol C 176: 174-180.
    [56] Youn JW, Lee SJ, Kim KS, et al. (2018) Adhesion characteristics of VO2 ink film sintered by intense pulsed light for smart window. Appl Surf Sci 441: 508-514.
    [57] Baloukas B, Loquai S, Martinu L (2018) VO2-based thermally active low emissivity coatings. Sol Energ Mater Sol C 183: 25-33.
    [58] Ren C, Liu F, Umair M, et al. (2019) Excellent temperature-control based on reversible thermochromic materials for light-driven phase change materials system. Molecules 24: 1623.
    [59] Chen S, Wang Z, Ren H, et al. (2019) Gate-controlled VO2 phase transition for high-performance smart windows. Sci Adv 5: 6815.
    [60] Seeboth A, Ruhmann R, Mühling O (2010) Thermotropic and thermochromic polymer based materials for adaptive solar control. Materials 3: 5143-5168.
    [61] Gladen AC, Davidson JH, Mantell SC (2014) The effect of a thermotropic material on the optical efficiency and stagnation temperature of a polymer flat plate solar collector. J Sol Energ-T ASME 137: 021003.
    [62] Allen K, Connelly K, Rutherford P, et al. (2017) Smart windows-dynamic control of building energy performance. Energ Buildings 139: 535-546.
    [63] Benson DK, Tracy CE, Hishmeh GA, et al. (1999) Low-cost fiber-optic hydrogen gas detector using guided-wave, surface-plasmon resonance in chemochromic thin films, Proceedings SPIE. Advanced Sensors and Monitors for Process Industries and the Environment, 3535: 185-202.
    [64] Whitten MC, Captain JE, Peterson BV, et al. (2006) Chemochromic hydrogen detection, Sensors for Propulsion Measurement Applications, SPIE, 6222: 62220C.
    [65] Georg A, Graf W, Schweiger D, et al. (1998) Switchable glazing with a large dynamic range in total solar energy transmittance (TSET). Sol Energy 62: 215-228.
    [66] Opara Krasovec U, Orel B, Georg A, et al. (2000) The gasochromic properties of sol-gel WO3 films with sputtered Pt catalyst. Sol Energy 68: 541-551.
    [67] Gunde MK, Krasovec UO, Platzer WJ (2005) Color rendering properties of interior lighting influenced by a switchable window. JOSA A 22: 416-423.
    [68] Nishizawa K, Yamada Y, Yoshimura K (2017) Low-temperature chemical fabrication of Pt-WO3 gasochromic switchable films using UV irradiation. Sol Energ Mater Sol C 170: 21-26.
    [69] De Meyer T, Hemelsoet K, Van der Schueren L, et al. (2012) Investigating the halochromic properties of azo dyes in an aqueous environment by using a combined experimental and theoretical approach. Chemistry 18: 8120-8129.
    [70] Van der Schueren L, Hemelsoet K, Van Speybroeck V, et al. (2012) Influence of a polyamide matrix on the halochromic behaviour of the pH-sensitive azo dye Nitrazine Yellow. Dyes Pigments 94: 443-451.
    [71] De Meyer T, Steyaert I, Hemelsoet K, et al. (2016) Halochromic properties of sulfonphthaleine dyes in a textile environment: The influence of substituents. Dyes Pigments 124: 249-257.
    [72] Reichardt C (1994) Solvatochromic dyes as solvent polarity indicators. Chem Rev 94: 2319-2358.
    [73] Nigam S, Rutan S (2001) Principles and applications of solvatochromism. Appl Spectrosc 55: 362-370.
    [74] House JE (2018) Molecular spectroscopy, Fundamentals of Quantum Mechanics, 3 Eds., Academic Press, 271-296.
    [75] Deparis O, Ghazzal MN, Simonis P, et al. (2014) Theoretical condition for transparency in mesoporous layered optical media: Application to switching of hygrochromic coatings. Appl Phys Lett 104: 023704.
    [76] Ghazzal MN, Deparis O, Coninck JD, et al. (2013) Tailored refractive index of inorganic mesoporous mixed-oxide Bragg stacks with bio-inspired hygrochromic optical properties. J Mater Chem C 1: 6202-6209.
    [77] Morris WA, Liua T, Fraser CL (2015) Mechanochromic luminescence of halide-substituted difluoroboronβ-diketonate dyes. J Mater Chem C 3: 352-363.
    [78] Wang Y, Cheng D, Zhou H, et al. (2019) Mechanochromic luminescence of AIEE-active tetraphenylethene-containing cruciform luminophores. Dyes Pigments 171: 107739.
    [79] Cho H, Kwon J, Ha I (2019) Mechano-thermo-chromic device with supersaturated salt hydrate crystal phase change. Sci Adv 5: 4916.
    [80] Seeboth A, Loetzsch D, Ruhmann R (2011) Piezochromic polymer materials displaying pressure changes in bar-ranges. Am J Mater Sci 1: 139-142.
    [81] Hasan N, Banerjee A, Kim H, et al. (2017) Tunable-focus lens for adaptive eyeglasses. Opt Express 25: 1221-1233.
    [82] Lee YA, Eisenberg R (2003) Luminescence tribochromism and bright emission in gold(I) thiouracilate complexes. J Am Chem Soc 125: 7778-7779.
    [83] Asiri AM, Heller HG, Hughes DS, et al. (2014) A mechanophysical phase transition provides a dramatic example of colour polymorphism: the tribochromism of a substituted tri(methylene)tetrahydrofuran-2-one. Chem Cent J 8: 70.
    [84] Shian S, Clarke DR (2016) Electrically tunable window device. Opt Lett 41: 1289-1292.
    [85] Granqvist CG (1995) Handbook of Inorganic Electrochromic Materials, 1 Ed., Elsevier.
    [86] Huiberts JN, Griessen R, RectorJH, et al. (1996) Yttrium and lanthanum hydride films with switchable optical properties. Nature 380: 231-234.
    [87] Niklasson GA, Granqvist CG (2007) Electrochromics for smart windows: thin films of tungsten oxide and nickel oxide, and devices based on these. J Mater Chem 17: 127-156.
    [88] Sequeira C, Santos D (2010) Polymer Electrolytes: Fundamentals and Applications, 1 Ed., Woodhead Publishing.
    [89] Luo J, Chen R, Zhou Y, et al. (2013) Flexible solid-state electrochromic devices based on amorphous WO3 thin films, International Photonics and Optoelectronics Meetings (POEM). Nanophotonics, Nanoelectronics and Nanosensor, OSA Publishing, NSa3A.26.
    [90] Jaing CC, Tang CJ, Chan CC, et al. (2014) Optical constants of electrochromic films and contrast ratio of reflective electrochromic devices. Appl Optics 53: A154-A158.
    [91] Cocilovo B, Hashimura A, Tweet DJ, et al. (2015) Highly transparent light-harvesting window film. Appl Optics 54, 8990-8998.
    [92] Dussault JM, Gosselin L (2017) Office buildings with electrochromic windows: A sensitivity analysis of design parameters on energy performance, and thermal and visual comfort. Energ Buildings 153: 50-62.
    [93] Ramadan R, Elshorbagy MH, Kamal H, et al. (2017) Preparation and characterization of protonic solid electrolyte applied to a smart window device with high optical modulation. Optik 135: 85-97.
    [94] Ulrich S, Szyszko C, Jung S, et al. (2017) Electrochromic properties of mixed oxides based on titanium and niobium for smart window applications. Surf Coat Tech 314: 41-44.
    [95] Kimura R, Tsuboi A, Nakamura K, et al. (2018) Effects of silver halide complexes on optical and electrochemical properties of silver deposition-based electrochromic device. Sol Energ Mater Sol C 177: 128-133.
    [96] Cannavale A, Martellotta F, Cossari P, et al. (2018) Energy savings due to building integration of innovative solid-state electrochromic devices. Appl Energ 225: 975-985.
    [97] Granqvist CG, Pehlivan IB, Niklasson GA (2018) Electrochromics on a roll: Web-coating and lamination for smart windows. Surf Coat Tech 336: 133-138.
    [98] Li H, Firby CJ, Elezzabi AY (2019) Rechargeable aqueous hybrid Zn2+/Al3+ electrochromic batteries. Joule 3: 2268-2278.
    [99] Pan M, Ke Y, Ma L, et al. (2018) Single-layer electrochromic device based on hydroxylalkyl viologens with large contrast and high coloration efficiency. Electrochim Acta 266: 395-403.
    [100] Li H, McRae L, Firby CJ, et al. (2018) Nanohybridization of molybdenum oxide with tungsten molybdenum oxide nanowires for solution-processed fully reversible switching of energy storing smart windows. Nano Energy 47: 130-139.
    [101] Wang M, Xing X, Perepichka IF (2019) Electrochromic smart windows can achieve an absolute private state through thermochromically engineered electrolyte. Adv Energy Mater 9: 1900433.
    [102] Otanicar TP, De Jarnette D, Hewakuruppu Y, et al. (2016) Filtering light with nanoparticles: a review of optically selective particles and applications. Adv Opt Photonics 8: 541-585.
    [103] Li Y, Wu X, Li J, et al. (2018) Z-scheme g-C3N4@CsxWO3heterostructure as smart window coating for UV isolating, Vis penetrating, NIR shielding and full spectrum photocatalytic decomposing VOCs. Appl Catal B-Environ 229: 218-226.
    [104] Oh SW, Baek JM, Yoon TH (2016) Sunlight-switchable light shutter fabricated using liquid crystals doped with push-pull azobenzene. Opt Express 24: 26575-26582.
    [105] Park S, Lee SK (2016) Micro-optical pattern-based selective transmission mechanism. Appl Optics 55: 2457-2462.
    [106] Hakemi H (2017) Polymer-dispersed liquid crystal technology "industrial evolution and current market situation". Liq Cryst Today 26: 70-73.
    [107] Jung D, Choi W, Park JY, et al. (2017) Inorganic gel and liquid crystal based smart window using silica sol-gel process. Sol Energ Mater Sol C 159: 488-495.
    [108] Oh SW, Kim SH, Yoon TH (2018) Self-shading by optical or thermal control of transmittance with liquid crystals doped with push-pull azobenzene. Sol Energ Mater Sol C 183: 146-150.
    [109] Kim DJ, Hwang DY, Park JY, et al. (2018) Liquid crystal-based flexible smart windows on roll-to-roll slot die-coated Ag nanowire network films. J Alloys Compd 765: 1090-1098.
    [110] Casini M (2014) Smart windows for energy efficiency of buildings. IJCSE 2: 230-238.
    [111] Mukherjee S, Hsieh WL, Smith N, et al. (2015) Electrokinetic pixels with biprimary inks for color displays and color-temperature-tunable smart windows. Appl Optics 54: 5603-5609.
    [112] Fazel A, Izadi A, Azizi M (2016) Low-cost solar thermal based adaptive window: combination of energy-saving and self-adjustment in buildings. Sol Energy 133: 274-282.
    [113] Carbonari A, De Grassi M, Naticchia B, et al. (2008) Design and experimentation of a variable solar transmittance window prototype, Sustainability and Innovation in Construction, 286-399 (in Italian).
    [114] Rumbarger J, Vitullo RJ (2003) Architectural Graphic Standards for Residential Construction, John Wiley and Sons.
    [115] Fernandes LL, Lee ES, McNeil A, et al. (2015) Angular selective window systems: Assessment of technical potential for energy savings. Energ Buildings 90: 188-206.
    [116] Luecke GR, Slaughter J (1995) Design, development, and testing of an automated window shade controller. J Sol Energy Eng 117: 326-332.
    [117] Jahan F, Smith GB (1998) Investigation of angular selective optical properties of silver/titanium oxide cermet thin films. Thin Solid Films 333: 185-190.
    [118] Palmer S, Mbise GW, Niklasson GA, et al. (1996) Angular selective optical properties of thin films: Measurement of polar and azimuthal transmittance. Sol Energ Mater Sol C 44: 397-403.
    [119] Peters M, Goldschmidt JC, Loeper P, et al. (2008) Lighttrapping with angular selective filters, Proceedings of 23rd European Photovoltaic Solar Energy Conference, 353-357.
    [120] Hö hn O, Kraus T, Bauhuis G, et al. (2014) Maximal power output by solar cells with angular confinement. Opt Express 22: A715-A722.
    [121] Gruneisen MT, Sickmiller BA, Flanagan MB, et al. (2016) Adaptive spatial filtering of daytime sky noise in a satellite quantum key distribution downlink receiver. Opt Eng 55: 026104.
    [122] Nielsen T, Nielsen TR, Svendsen S (2005) Calculation of daylight distribution and utilization in rooms with solar shadings and light redirecting devices, Proceedings of the 7th Symposium on Building Physics in the Nordic Countries, 2: 1011-1018.
    [123] Lee T, Oppenheim D, Williamson TJ (1995) Australian Solar Radiation Data Handbook, Canberra: Energy research and development corporation, 249.
    [124] Page JK, Albuisson M, Wald L (2001) The european solar radiation Atlas: A valuable digital tool. Sol Energy 71: 81-83.
    [125] Marion W, George R (2001) Calculation of solar radiation using a methodology with worldwide potential. Sol Energy 71: 275-283.
    [126] Gueymard C (2004) The sun's total and spectral irradiance for solar energy applications and solar radiation models. Sol Energy 76: 423-453.
    [127] Yang D, Walsh WM, Jirutitijaroen P (2012) Estimation and applications of clear sky global horizontal irradiance at the equator. J Sol Energy Eng 136: 034505.
    [128] Blanc P, Espinar B, Geuder N, et al. (2014) Direct normal irradiance related definitions and applications: The circumsolar issue. Sol Energy 110: 561-577.
    [129] Ruiz-Arias JA, Gueymard CA (2018) A multi-model benchmarking of direct and global clear-sky solar irradiance predictions at arid sites using a reference physical radiative transfer model. Sol Energy 171: 447-465.
    [130] Zakirullin RS (2012) Selective beam incidence angle control over directional light transmission. Tech Phys 57: 1456-1458.
    [131] Zakirullin RS (2013) An optical filter with angular selectivity of the transmittance. J Opt Technol 80: 480-485.
    [132] Zakirullin RS (2013) Grating optical filter for pre-adapted angular selective regulation of directional light transmission, Proceedings SPIE. 8th Iberoamerican Optics Meeting and 11th Latin American Meeting on Optics, Lasers, and Applications, 8785: 87851P.
    [133] Zakirullin RS (2015) Creating optical filters with angular-selective light transmission. Appl Optics 54: 6416-6419.
    [134] Zakirullin RS, Letuta SN (2015) A smart window for angular selective filtering solar radiation. Sol Energy 120: 585-592.
    [135] Zakirullin RS (2015) An optical filter with angular selectivity of the light transmission, Proceedings SPIE. Novel Optical Systems Design and Optimization XVIII, 9579: 95790Q.
    [136] Zakirullin RS (2018) Optimized angular selective filtering of direct solar radiation. JOSA A 35: 1592-1598.
    [137] Zakirullin RS (2019) Optical filter for smart windows with angle-selective light transmission. J Opt Technol 86: 278-283.
    [138] Zakirullin RS (2019) Optimized angular selective filtering of direct solar radiation. Appl Sol Energy 55: 48-56.
    [139] Zakirullin RS, Odenbakh IA (2019) Smart window for angular selective filtering of solar radiation, E3S Web of Conferences, 124: 01002.
    [140] Zakirullin RS, Odenbakh IA (2020) Cities of the future: a building typology with optimal daylighting. IOP Conf Ser Mater Sci Eng 775: 012062.
    [141] Zakirullin RS (2020) A smart window for angular selective filtering of direct solar radiation. J Sol Energ-T ASME 142: 011001.
    [142] Zakirullin RS (2020) Chromogenic materials in smart windows for angular-selective filtering of solar radiation. Mater Today Energy 17: 100476.
    [143] Zakirullin RS (2020) Diffraction in grating optical filters with angular-selective light transmission. Comput Opt 44: 343-351.
    [144] Zakirullin RS, Odenbakh IA (2020) Chromogenic materials in optical filters for smart windows, OSA Advanced Photonics Congress (AP) 2020 (IPR, NP, NOMA, Networks, PVLED, PSC, SPPCom, SOF). Novel Optical Materials and Applications, OSA Publishing, JTu4C.19.
  • Reader Comments
  • © 2020 the Author(s), licensee AIMS Press. This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0)
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Metrics

Article views(4799) PDF downloads(233) Cited by(3)

Article outline

Figures and Tables

Figures(27)  /  Tables(4)

Other Articles By Authors

/

DownLoad:  Full-Size Img  PowerPoint
Return
Return

Catalog