Title :
Optical design of selectively scattering nanostructures for angle sensitive semi-transparent photovoltaics
Author :
Roberts, Brian ; Boyd, Michael ; Ku, P.-C.
Author_Institution :
Univ. of Michigan, Ann Arbor, MI, USA
Abstract :
Semi-transparent photovoltiacs are of interest for improving integration of solar energy harvesting with architecture. However, the competing requirements of optical transparency and efficient absorption of the incident spectrum severely limit performance. To address this tradeoff, we propose an angle selective organic photovoltaic window structure, structured such that normally incident light is transmitted to maintain window-quality transparency, while direct sunlight at an elevated angle is targeted for absorption. The localized surface plasmon resonance properties of metal nanorods are employed for angle and spectrally dependant scattering. The optical interference patterns arising when light propagates through subwavelength planar dielectric stacks are engineered to optimize the optical mode created by the metal scatterers via an evolutionary algorithm. We numerically model the transmission and absorption performance of a thin semi-transparent organic photovoltiac film under angled solar illumination to evaluate the potential for the proposed design. An optimized selective structure can maintain 70% optical transparency at normal incidence while improving total absorbed power by a factor of 2.3 vs. a lone semi-transparent cell of comparable transparency.
Keywords :
absorption; energy harvesting; evolutionary computation; light interference; nanorods; semiconductor thin films; solar cells; solar power; surface plasmon resonance; absorption performance; angle selective organic photovoltaic window structure; angle sensitive semitransparent photovoltaic cell; angled solar illumination; evolutionary algorithm; incident spectrum absorption; localized surface plasmon resonance properties; metal nanorods; metal scatterers; optical design; optical interference patterns; optical transparency; optimized selective structure; scattering nanostructures; solar energy harvesting; spectrally dependant scattering; subwavelength planar dielectric stacks; thin semitransparent organic photovoltaic film; window-quality transparency; Absorption; Dielectrics; Metals; Optical films; Optical reflection; Optical scattering; numerical models; photovoltaic cells; plasmons;
Conference_Titel :
Photovoltaic Specialists Conference (PVSC), 2012 38th IEEE
Conference_Location :
Austin, TX
Print_ISBN :
978-1-4673-0064-3
DOI :
10.1109/PVSC.2012.6317574