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Superlattice photonic crystal as broadband solar absorber for high temperature operation

  • Veronika Rinnerbauer
  • , Yichen Shen
  • , John D. Joannopoulos
  • , Marin Soljačić
  • , Friedrich Schäffler
  • , Ivan Celanovic

Publikation: Beitrag in FachzeitschriftArtikelBegutachtung

Abstract

A high performance solar absorber using a 2D tantalum superlattice photonic crystal (PhC) is proposed and its design is optimized for high-temperature energy conversion. In contrast to the simple lattice PhC, which is limited by diffraction in the short wavelength range, the superlattice PhC achieves solar absorption over broadband spectral range due to the contribution from two superposed lattices with different cavity radii. The superlattice PhC geometry is tailored to achieve maximum thermal transfer efficiency for a low concentration system of 250 suns at 1500 K reaching 85.0\% solar absorptivity. In the high concentration case of 1000 suns, the superlattice PhC absorber achieves a solar absorptivity of 96.2\% and a thermal transfer efficiency of 82.9\% at 1500 K, amounting to an improvement of 10\% and 5\%, respectively, versus the simple square lattice PhC absorber. In addition, the performance of the superlattice PhC absorber is studied in a solar thermophotovoltaic system which is optimized to minimize absorber re-emission by reducing the absorber-to-emitter area ratio and using a highly reflective silver aperture.
OriginalspracheEnglisch
Seiten (von - bis)A1895-A1906
Seitenumfang12
FachzeitschriftOptics Express
Volume22
Ausgabenummer25
DOIs
PublikationsstatusVeröffentlicht - 15 Dez. 2014

UN SDGs

Dieser Output leistet einen Beitrag zu folgendem(n) Ziel(en) für nachhaltige Entwicklung

  1. SDG 7 – Erschwingliche und saubere Energie
    SDG 7 – Erschwingliche und saubere Energie

Wissenschaftszweige

  • 103 Physik, Astronomie

JKU-Schwerpunkte

  • Nano-, Bio- and Polymer-Systems: From Structure to Function

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