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3D‐printed external light trap for solar cells

We present a universally applicable 3D‐printed external light trap for enhanced absorption in solar cells. The macroscopic external light trap is placed at the sun‐facing surface of the solar cell and retro‐reflects the light that would otherwise escape. The light trap consists of a reflective parab...

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Autores principales: van Dijk, Lourens, Paetzold, Ulrich W., Blab, Gerhard A., Schropp, Ruud E. I., di Vece, Marcel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5020602/
https://www.ncbi.nlm.nih.gov/pubmed/27667911
http://dx.doi.org/10.1002/pip.2702
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author van Dijk, Lourens
Paetzold, Ulrich W.
Blab, Gerhard A.
Schropp, Ruud E. I.
di Vece, Marcel
author_facet van Dijk, Lourens
Paetzold, Ulrich W.
Blab, Gerhard A.
Schropp, Ruud E. I.
di Vece, Marcel
author_sort van Dijk, Lourens
collection PubMed
description We present a universally applicable 3D‐printed external light trap for enhanced absorption in solar cells. The macroscopic external light trap is placed at the sun‐facing surface of the solar cell and retro‐reflects the light that would otherwise escape. The light trap consists of a reflective parabolic concentrator placed on top of a reflective cage. Upon placement of the light trap, an improvement of 15% of both the photocurrent and the power conversion efficiency in a thin‐film nanocrystalline silicon (nc‐Si:H) solar cell is measured. The trapped light traverses the solar cell several times within the reflective cage thereby increasing the total absorption in the cell. Consequently, the trap reduces optical losses and enhances the absorption over the entire spectrum. The components of the light trap are 3D printed and made of smoothened, silver‐coated thermoplastic. In contrast to conventional light trapping methods, external light trapping leaves the material quality and the electrical properties of the solar cell unaffected. To explain the theoretical operation of the external light trap, we introduce a model that predicts the absorption enhancement in the solar cell by the external light trap. The corresponding calculated path length enhancement shows good agreement with the empirically derived value from the opto‐electrical data of the solar cell. Moreover, we analyze the influence of the angle of incidence on the parasitic absorptance to obtain full understanding of the trap performance. © 2015 The Authors. Progress in Photovoltaics: Research and Applications published by John Wiley & Sons, Ltd.
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spelling pubmed-50206022016-09-23 3D‐printed external light trap for solar cells van Dijk, Lourens Paetzold, Ulrich W. Blab, Gerhard A. Schropp, Ruud E. I. di Vece, Marcel Prog Photovolt Research Articles We present a universally applicable 3D‐printed external light trap for enhanced absorption in solar cells. The macroscopic external light trap is placed at the sun‐facing surface of the solar cell and retro‐reflects the light that would otherwise escape. The light trap consists of a reflective parabolic concentrator placed on top of a reflective cage. Upon placement of the light trap, an improvement of 15% of both the photocurrent and the power conversion efficiency in a thin‐film nanocrystalline silicon (nc‐Si:H) solar cell is measured. The trapped light traverses the solar cell several times within the reflective cage thereby increasing the total absorption in the cell. Consequently, the trap reduces optical losses and enhances the absorption over the entire spectrum. The components of the light trap are 3D printed and made of smoothened, silver‐coated thermoplastic. In contrast to conventional light trapping methods, external light trapping leaves the material quality and the electrical properties of the solar cell unaffected. To explain the theoretical operation of the external light trap, we introduce a model that predicts the absorption enhancement in the solar cell by the external light trap. The corresponding calculated path length enhancement shows good agreement with the empirically derived value from the opto‐electrical data of the solar cell. Moreover, we analyze the influence of the angle of incidence on the parasitic absorptance to obtain full understanding of the trap performance. © 2015 The Authors. Progress in Photovoltaics: Research and Applications published by John Wiley & Sons, Ltd. John Wiley and Sons Inc. 2015-11-26 2016-05 /pmc/articles/PMC5020602/ /pubmed/27667911 http://dx.doi.org/10.1002/pip.2702 Text en © 2015 The Authors. Progress in Photovoltaics: Research and Applications published by John Wiley & Sons, Ltd. This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial (http://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Articles
van Dijk, Lourens
Paetzold, Ulrich W.
Blab, Gerhard A.
Schropp, Ruud E. I.
di Vece, Marcel
3D‐printed external light trap for solar cells
title 3D‐printed external light trap for solar cells
title_full 3D‐printed external light trap for solar cells
title_fullStr 3D‐printed external light trap for solar cells
title_full_unstemmed 3D‐printed external light trap for solar cells
title_short 3D‐printed external light trap for solar cells
title_sort 3d‐printed external light trap for solar cells
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5020602/
https://www.ncbi.nlm.nih.gov/pubmed/27667911
http://dx.doi.org/10.1002/pip.2702
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