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Articles

Polymer dispersed liquid crystal device with integrated luminescent solar concentrator

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Pages 498-506 | Received 15 Jun 2017, Accepted 12 Jul 2017, Published online: 02 Aug 2017

References

  • Alghamedi R, Vasiliev M, Nur-E-Alam M, et al. Spectrally-selective all-inorganic scattering luminophores for solar energy-harvesting clear glass windows. Sci Rep. 2014;4:6632.
  • Granqvist CG, Azens A, Heszler P, et al. Nanomaterials for benign indoor environments: electrochromics for “smart windows”, sensors for air quality, and photo-catalysts for air cleaning. Sol Energy Mater Sol Cells. 2007;91:355–365.
  • Khaligh HH, Liew K, Han Y, et al. Silver nanowire transparent electrodes for liquid crystal-based smart windows. Sol Energy Mater Sol Cells. 2015;132:337–341.
  • Macrelli G. Optical characterization of commercial large area liquid crystal devices. Sol Energy Mater Sol Cells. 1995;39:123–131.
  • Baetens R, Jelle BP, Gustavsen A. Properties, requirements and possibilities of smart windows for dynamic daylight and solar energy control in buildings: a state-of-the-art review. Sol Energy Mater Sol Cells. 2010;94:87–105.
  • Fahad M, Ye H, Jeon S, et al. Enhancement of reflective optical properties using photoluminescence-polymer-dispersed liquid crystal with added chiral dopant. Sci Advanced Mater. 2016;8:1745–1751.
  • Wiegman J, Van der Kolk E. Building integrated thin film luminescent solar concentrators: detailed efficiency characterization and light transport modelling. Sol Energy Mater Sol Cells. 2012;103:41–47.
  • Klimov VI, Brovelli S. Large-area luminescent solar concentrators based on/Stokes-shift-engineered/nanocrystals in a mass-polymerized PMMA matrix. Nat Photonics. 2014;8:392–399.
  • Kerrouche A, Hardy D, Ross D, et al. Luminescent solar concentrators: from experimental validation of 3D ray-tracing simulations to coloured stained-glass windows for BIPV. Sol Energy Mater Sol Cells. 2014;122:99–106.
  • Debije MG, Verbunt PP. Thirty years of luminescent solar concentrator research: solar energy for the built environment. Adv Energy Mater. 2012;2:12–35.
  • Bruijnaers BJ, Schenning AP, Debije MG. Capture and concentration of light to a spot in plastic lightguides by circular luminophore arrangements. Advanced Opt Mater. 2015;3:257–262.
  • Currie MJ, Mapel JK, Heidel TD, et al. High-efficiency organic solar concentrators for photovoltaics. Science. 2008;321:226–228.
  • Tsoi S, Broer DJ, Bastiaansen CW, et al. Using lenses to improve the output of a patterned luminescent solar concentrator. Adv Energy Mater. 2013;3:337–341.
  • Ebrahimipour BA, Askari HR, Ramezani AB. Investigation of linear optical absorption coefficients in core-shell quantum dot (QD) luminescent solar concentrators (LSCs). Superlattices Microstruct. 2016;97:495–505.
  • Corrado C, Leow SW, Osborn M, et al. Optimization of gain and energy conversion efficiency using front-facing photovoltaic cell luminescent solar concentrator design. Sol Energy Mater Sol Cells. 2013;111:74–81.
  • Khandelwal H, Loonen RC, Hensen JL, et al. Electrically switchable polymer stabilised broadband infrared reflectors and their potential as smart windows for energy saving in buildings. Sci Rep. 2015;5:11773.
  • Kendhale AM, Schenning AP, Debije MG. Superior alignment of multi-chromophoric perylenebisimides in nematic liquid crystals and their application in switchable optical waveguides. J Mater Chem. 2013;1:229–232.
  • Tummeltshammer C, Portnoi M, Mitchell SA, et al. On the ability of förster resonance energy transfer to enhance luminescent solar concentrator efficiency. Nano Energy. 2016;32:263-270.
  • El-Shaarawy M, El-Bashir S, Hammam M, et al. Bent fluorescent solar concentrators (BFSCs): spectroscopy, stability and outdoor performance. Curr Appl Phys. 2007;7:643–649.
  • Friedman PS, Parent C. Luminescent solar concentrator development: final subcontract report, 1 June 1982–31 December 1984. Toledo (OH): Owens-Illinois, Inc.; 1987. Solar Energy Research Inst., Golden, CO (USA).
  • Sapsford KE, Berti L, Medintz IL. Materials for fluorescence resonance energy transfer analysis: beyond traditional donor–acceptor combinations. Angew Chem Int Ed Engl. 2006;45:4562–4589.
  • Joseph RL, Lakowicz R. Principles of fluorescence spectroscopy. New York: Kluwer Academic/Plenum Publishers; 1999.
  • Bailey ST, Lokey GE, Hanes MS, et al. Optimized excitation energy transfer in a three-dye luminescent solar concentrator. Sol Energy Mater Sol Cells. 2007;91:67–75.
  • Banal JL, Ghiggino KP, Wong WW. Efficient light harvesting of a luminescent solar concentrator using excitation energy transfer from an aggregation-induced emitter. Phys Chem Chem Phys. 2014;16:25358–25363.
  • Balaban B, Doshay S, Osborn M, et al. The role of FRET in solar concentrator efficiency and color tunability. J Lumin. 2014;146:256–262.
  • McDowall S, Butler T, Bain E, et al. Comprehensive analysis of escape-cone losses from luminescent waveguides. Appl Opt. 2013;52:1230–1239.
  • Meinardi F, McDaniel H, Carulli F, et al. Highly efficient large-area colourless luminescent solar concentrators using heavy-metal-free colloidal quantum dots. Nat Nanotechnol. 2015;10:878–885.
  • Wang C, Abdul-Rahman H, Rao S. Daylighting can be fluorescent: development of a fiber solar concentrator and test for its indoor illumination. Energy Build. 2010;42:717–727.

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