Photonic crystals for highly efficient silicon single junction solar cells

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autorschaft

  • J. Krügener
  • M. Rienäcker
  • S. Schäfer
  • M. Sanchez
  • S. Wolter
  • R. Brendel
  • S. John
  • H. J. Osten
  • R. Peibst

Externe Organisationen

  • Institut für Solarenergieforschung GmbH (ISFH)
  • University of Toronto
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Details

OriginalspracheEnglisch
Aufsatznummer111337
FachzeitschriftSolar Energy Materials and Solar Cells
Jahrgang233
Frühes Online-Datum20 Sept. 2021
PublikationsstatusVeröffentlicht - Dez. 2021

Abstract

The maximum achievable silicon single junction solar cell efficiency is limited by intrinsic recombination and by its limited capability of absorbing sun light. For Lambertian light trapping the maximum theoretical solar cell efficiency is around 29.5%. Recently a new approach for light trapping has been proposed for silicon photovoltaics. Highly regular structures with a size in the range of the wavelengths of the incident light act as so-called photonic crystals. Such structures allow wave-interference light trapping beyond the Lambertian limit. Applying these photonic crystals to silicon solar cells can help to reduce the absorber thickness and thus to minimizing the unavoidable intrinsic recombination. From a simulation study, we can conclude that 31.6% is the maximum possible single junction solar cell efficiency for a 15 μm-thin substrate. Furthermore, we present a process flow for the preparation of regular inverted pyramid structure, that acts as photonic crystal. Finally, regular inverted pyramid structures are prepared on polished and shiny-etched, i. e. on surfaces with a certain roughness, substrates. Surface passivation of these structured surfaces shows as good lifetimes as on conventional randomly pyramid textured surface. Excellent total saturation current densities on asymmetric samples of 4 ± 2 fA/cm2 for n-type and of 4.5 ± 2.2 fA/cm2 on p-type substrates are obtained.

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Photonic crystals for highly efficient silicon single junction solar cells. / Krügener, J.; Rienäcker, M.; Schäfer, S. et al.
in: Solar Energy Materials and Solar Cells, Jahrgang 233, 111337, 12.2021.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Krügener, J, Rienäcker, M, Schäfer, S, Sanchez, M, Wolter, S, Brendel, R, John, S, Osten, HJ & Peibst, R 2021, 'Photonic crystals for highly efficient silicon single junction solar cells', Solar Energy Materials and Solar Cells, Jg. 233, 111337. https://doi.org/10.1016/j.solmat.2021.111337
Krügener, J., Rienäcker, M., Schäfer, S., Sanchez, M., Wolter, S., Brendel, R., John, S., Osten, H. J., & Peibst, R. (2021). Photonic crystals for highly efficient silicon single junction solar cells. Solar Energy Materials and Solar Cells, 233, Artikel 111337. https://doi.org/10.1016/j.solmat.2021.111337
Krügener J, Rienäcker M, Schäfer S, Sanchez M, Wolter S, Brendel R et al. Photonic crystals for highly efficient silicon single junction solar cells. Solar Energy Materials and Solar Cells. 2021 Dez;233:111337. Epub 2021 Sep 20. doi: 10.1016/j.solmat.2021.111337
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title = "Photonic crystals for highly efficient silicon single junction solar cells",
abstract = "The maximum achievable silicon single junction solar cell efficiency is limited by intrinsic recombination and by its limited capability of absorbing sun light. For Lambertian light trapping the maximum theoretical solar cell efficiency is around 29.5%. Recently a new approach for light trapping has been proposed for silicon photovoltaics. Highly regular structures with a size in the range of the wavelengths of the incident light act as so-called photonic crystals. Such structures allow wave-interference light trapping beyond the Lambertian limit. Applying these photonic crystals to silicon solar cells can help to reduce the absorber thickness and thus to minimizing the unavoidable intrinsic recombination. From a simulation study, we can conclude that 31.6% is the maximum possible single junction solar cell efficiency for a 15 μm-thin substrate. Furthermore, we present a process flow for the preparation of regular inverted pyramid structure, that acts as photonic crystal. Finally, regular inverted pyramid structures are prepared on polished and shiny-etched, i. e. on surfaces with a certain roughness, substrates. Surface passivation of these structured surfaces shows as good lifetimes as on conventional randomly pyramid textured surface. Excellent total saturation current densities on asymmetric samples of 4 ± 2 fA/cm2 for n-type and of 4.5 ± 2.2 fA/cm2 on p-type substrates are obtained.",
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T1 - Photonic crystals for highly efficient silicon single junction solar cells

AU - Krügener, J.

AU - Rienäcker, M.

AU - Schäfer, S.

AU - Sanchez, M.

AU - Wolter, S.

AU - Brendel, R.

AU - John, S.

AU - Osten, H. J.

AU - Peibst, R.

N1 - Funding Information: We would like to thank H. Fischer, S. Spätlich, R. Winter, A. Raugewitz, G. Glowatzki and R. Zieseniβ for sample processing, M. Wolf, A. Dietrich, R. Reineke-Koch for discussion and support with the measurement systems, and Sajeev John for fruitfull discussions. This work is funded by the German Ministry for Economic Affairs and Energy (grant FKZ 003EE1056A ) and the federal state of Lower Saxony.

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N2 - The maximum achievable silicon single junction solar cell efficiency is limited by intrinsic recombination and by its limited capability of absorbing sun light. For Lambertian light trapping the maximum theoretical solar cell efficiency is around 29.5%. Recently a new approach for light trapping has been proposed for silicon photovoltaics. Highly regular structures with a size in the range of the wavelengths of the incident light act as so-called photonic crystals. Such structures allow wave-interference light trapping beyond the Lambertian limit. Applying these photonic crystals to silicon solar cells can help to reduce the absorber thickness and thus to minimizing the unavoidable intrinsic recombination. From a simulation study, we can conclude that 31.6% is the maximum possible single junction solar cell efficiency for a 15 μm-thin substrate. Furthermore, we present a process flow for the preparation of regular inverted pyramid structure, that acts as photonic crystal. Finally, regular inverted pyramid structures are prepared on polished and shiny-etched, i. e. on surfaces with a certain roughness, substrates. Surface passivation of these structured surfaces shows as good lifetimes as on conventional randomly pyramid textured surface. Excellent total saturation current densities on asymmetric samples of 4 ± 2 fA/cm2 for n-type and of 4.5 ± 2.2 fA/cm2 on p-type substrates are obtained.

AB - The maximum achievable silicon single junction solar cell efficiency is limited by intrinsic recombination and by its limited capability of absorbing sun light. For Lambertian light trapping the maximum theoretical solar cell efficiency is around 29.5%. Recently a new approach for light trapping has been proposed for silicon photovoltaics. Highly regular structures with a size in the range of the wavelengths of the incident light act as so-called photonic crystals. Such structures allow wave-interference light trapping beyond the Lambertian limit. Applying these photonic crystals to silicon solar cells can help to reduce the absorber thickness and thus to minimizing the unavoidable intrinsic recombination. From a simulation study, we can conclude that 31.6% is the maximum possible single junction solar cell efficiency for a 15 μm-thin substrate. Furthermore, we present a process flow for the preparation of regular inverted pyramid structure, that acts as photonic crystal. Finally, regular inverted pyramid structures are prepared on polished and shiny-etched, i. e. on surfaces with a certain roughness, substrates. Surface passivation of these structured surfaces shows as good lifetimes as on conventional randomly pyramid textured surface. Excellent total saturation current densities on asymmetric samples of 4 ± 2 fA/cm2 for n-type and of 4.5 ± 2.2 fA/cm2 on p-type substrates are obtained.

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KW - Photolithography

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JO - Solar Energy Materials and Solar Cells

JF - Solar Energy Materials and Solar Cells

SN - 0927-0248

M1 - 111337

ER -

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