Nanostructured solar irradiation control materials for solar energy conversion
Author(s) -
Jin Ho Kang,
Iseley A. Marshall,
Mattew N. Torrico,
Chase R. Taylor,
Jeffry Ely,
Angel Z. Henderson,
Godfrey Sauti,
Luke J. Gibbons,
JaeWoo Kim,
Cheol Park,
Sharon E. Lowther,
Peter T. Lillehei,
Robert G. Bryant
Publication year - 2012
Publication title -
proceedings of spie, the international society for optical engineering/proceedings of spie
Language(s) - English
Resource type - Conference proceedings
SCImago Journal Rank - 0.192
H-Index - 176
eISSN - 1996-756X
pISSN - 0277-786X
DOI - 10.1117/12.930485
Subject(s) - materials science , nanocomposite , solar energy , energy conversion efficiency , irradiation , composite material , solar cell , thermal emittance , dielectric , optoelectronics , optics , ecology , physics , nuclear physics , biology , beam (structure)
Tailoring the solar absorptivity (αs) and thermal emissivity (ƐT) of materials constitutes an innovative approach to solar energy control and energy conversion. Numerous ceramic and metallic materials are currently available for solar absorbance/thermal emittance control. However, conventional metal oxides and dielectric/metal/dielectric multi-coatings have limited utility due to residual shear stresses resulting from the different coefficient of thermal expansion of the layered materials. This research presents an alternate approach based on nanoparticle-filled polymers to afford mechanically durable solar-absorptive and thermally-emissive polymer nanocomposites. The αs and ƐT were measured with various nano inclusions, such as carbon nanophase particles (CNPs), at different concentrations. Research has shown that adding only 5 wt% CNPs increased the αs and T by a factor of about 47 and 2, respectively, compared to the pristine polymer. The effect of solar irradiation control of the nanocomposite on solar energy conversion was studied. The solar irradiation control coatings increased the power generation of solar thermoelectric cells by more than 380% compared to that of a control power cell without solar irradiation control coatings.
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