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Over 65% Sunlight Absorption in a 1 µm Si Slab with Hyperuniform Texture.
Tavakoli, Nasim; Spalding, Richard; Lambertz, Alexander; Koppejan, Pepijn; Gkantzounis, Georgios; Wan, Chenglong; Röhrich, Ruslan; Kontoleta, Evgenia; Koenderink, A Femius; Sapienza, Riccardo; Florescu, Marian; Alarcon-Llado, Esther.
Afiliação
  • Tavakoli N; Center for Nanophotonics, AMOLF, Science Park 104, 1098XG Amsterdam, The Netherlands.
  • Spalding R; Department of Physics, Advanced Technology Institute, University of Surrey, GU2 7XH Guildford, United Kingdom.
  • Lambertz A; Center for Nanophotonics, AMOLF, Science Park 104, 1098XG Amsterdam, The Netherlands.
  • Koppejan P; Center for Nanophotonics, AMOLF, Science Park 104, 1098XG Amsterdam, The Netherlands.
  • Gkantzounis G; Department of Physics, Advanced Technology Institute, University of Surrey, GU2 7XH Guildford, United Kingdom.
  • Wan C; Department of Physics, Advanced Technology Institute, University of Surrey, GU2 7XH Guildford, United Kingdom.
  • Röhrich R; Center for Nanophotonics, AMOLF, Science Park 104, 1098XG Amsterdam, The Netherlands.
  • Kontoleta E; Advanced Research Center for Nanolithography, Science Park 106, 1098XG Amsterdam, The Netherlands.
  • Koenderink AF; Center for Nanophotonics, AMOLF, Science Park 104, 1098XG Amsterdam, The Netherlands.
  • Sapienza R; Center for Nanophotonics, AMOLF, Science Park 104, 1098XG Amsterdam, The Netherlands.
  • Florescu M; The Blackett Laboratory, Department of Physics, Imperial College London, London SW7 2BW, United Kingdom.
  • Alarcon-Llado E; Department of Physics, Advanced Technology Institute, University of Surrey, GU2 7XH Guildford, United Kingdom.
ACS Photonics ; 9(4): 1206-1217, 2022 Apr 20.
Article em En | MEDLINE | ID: mdl-35480493
ABSTRACT
Thin, flexible, and invisible solar cells will be a ubiquitous technology in the near future. Ultrathin crystalline silicon (c-Si) cells capitalize on the success of bulk silicon cells while being lightweight and mechanically flexible, but suffer from poor absorption and efficiency. Here we present a new family of surface texturing, based on correlated disordered hyperuniform patterns, capable of efficiently coupling the incident spectrum into the silicon slab optical modes. We experimentally demonstrate 66.5% solar light absorption in free-standing 1 µm c-Si layers by hyperuniform nanostructuring for the spectral range of 400 to 1050 nm. The absorption equivalent photocurrent derived from our measurements is 26.3 mA/cm2, which is far above the highest found in literature for Si of similar thickness. Considering state-of-the-art Si PV technologies, we estimate that the enhanced light trapping can result in a cell efficiency above 15%. The light absorption can potentially be increased up to 33.8 mA/cm2 by incorporating a back-reflector and improved antireflection, for which we estimate a photovoltaic efficiency above 21% for 1 µm thick Si cells.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2022 Tipo de documento: Article