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Light trapping in ultrathin plasmonic solar cells

Optics Express · 2010 · Vol. 18(S2) · pp. A237–A237
Vivian E. FerryMarc A. VerschuurenHongbo B. T. LiEwold VerhagenRobert WaltersR.E.I. SchroppHarry A. AtwaterAlbert Polman

Abstract

We report on the design, fabrication, and measurement of ultrathin film a-Si:H solar cells with nanostructured plasmonic back contacts, which demonstrate enhanced short circuit current densities compared to cells having flat or randomly textured back contacts. The primary photocurrent enhancement occurs in the spectral range from 550 nm to 800 nm. We use angle-resolved photocurrent spectroscopy to confirm that the enhanced absorption is due to coupling to guided modes supported by the cell. Full-field electromagnetic simulation of the absorption in the active a-Si:H layer agrees well with the experimental results. Furthermore, the nanopatterns were fabricated via an inexpensive, scalable, and precise nanopatterning method. These results should guide design of optimized, non-random nanostructured back reflectors for thin film solar cells.

Thin-Film Transistor TechnologiesOptical Coatings and GratingsSilicon Nanostructures and PhotoluminescenceMaterials sciencePhotocurrentPlasmonPlasmonic solar cellOptoelectronicsAbsorption (acoustics)Solar cellOpticsFabricationShort circuit

Funding

  • U.S. Department of Energy
  • California Institute of Technology
  • Universiteit Utrecht
  • Nederlandse Organisatie voor Wetenschappelijk Onderzoek
Citations
630
FWCI
61.65
field-weighted impact
References
35
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100%
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References
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Applied Physics Letters · 1977 · 2,901 citations
Plasmonics for improved photovoltaic devices
Nature Materials · 2010 · 8,191 citations
Surface plasmon enhanced silicon solar cells
Journal of Applied Physics · 2007 · 1,822 citations
TCO and light trapping in silicon thin film solar cells
Solar Energy · 2004 · 993 citations
Intensity enhancement in textured optical sheets for solar cells
IEEE Transactions on Electron Devices · 1982 · 863 citations
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