Enhanced absorption in optically thin solar cells by scattering from embedded dielectric nanoparticles

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Publication Type Journal Article
School or College College of Engineering
Department Materials Science & Engineering
Creator Scarpulla, Michael
Other Author Nagel, James R.
Title Enhanced absorption in optically thin solar cells by scattering from embedded dielectric nanoparticles
Date 2010
Description Abstract: We present a concept for improving the efficiency of thin-film solar cells via scattering from dielectric particles. The particles are embedded directly within the semiconductor absorber material with sizes on the order of one wavelength. Importantly, this geometry is fully compatible with the use of an anti-reflective coating (ARC) to maximize light capture. The concept is demonstrated through finite-difference time domain (FDTD) simulations of spherical SiO2 particles embedded within a 1.0 μm layer of crystalline silicon (c-Si) utilizing a 75 nm ARC of Si3N4. Several geometries are presented, with gains in absorbed photon flux occurring in the red end of the spectrum where silicon absorption is weak. The total integrated absorption of incident photon flux across the visible AM-1.5 spectrum is on the order of 5-10% greater than the same geometry without any dielectric scatterers.
Type Text
Publisher Optical Society of America
Volume 18
Issue S2
First Page A139
Last Page A149
Language eng
Bibliographic Citation Nagel, J. R., & Scarpulla, M. (2010). Enhanced absorption in optically thin solar cells by scattering from embedded dielectric nanoparticles. Optics Express, 18(S2), A139-A46.
Rights Management (c) Optical Society of America
Format Medium application/pdf
Format Extent 1,997,565 bytes
Identifier ir-main,15540
ARK ark:/87278/s6474v6q
Setname ir_uspace
ID 704454
Reference URL https://collections.lib.utah.edu/ark:/87278/s6474v6q
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