| Literature DB >> 30395478 |
Chun-Chieh Chang1, Wilton J M Kort-Kamp2,3, John Nogan4, Ting S Luk4, Abul K Azad1, Antoinette J Taylor5, Diego A R Dalvit3, Milan Sykora6, Hou-Tong Chen1.
Abstract
Solar energy promises a viable solution to meet the ever-increasing power demand by providing a clean, renewable energy alternative to fossil fuels. For solar thermophotovoltaics (STPV), high-temperature absorbers and emitters with strong spectral selectivity are imperative to efficiently couple solar radiation into photovoltaic cells. Here, we demonstrate refractory metasurfaces for STPV with tailored absorptance and emittance characterized by in situ high-temperature measurements, featuring thermal stability up to at least 1200 °C. Our tungsten-based metasurface absorbers have close-to-unity absorption from visible to near-infrared and strongly suppressed emission at longer wavelengths, while our metasurface emitters provide wavelength-selective emission spectrally matched to the band-edge of InGaAsSb photovoltaic cells. The projected overall STPV efficiency is as high as 18% when a fully integrated absorber/emitter metasurface structure is employed, which is comparable to the efficiencies of the best currently available commercial single-junction PV cells and can be further improved to potentially exceed those in mainstream photovoltaic technologies. Our work opens a path forward for high-performance STPV systems based on refractory metasurface structures.Keywords: Metasurfaces; high temperature; refractory metamaterials; solar absorbers; solar thermophotovoltaics; thermal emitters
Year: 2018 PMID: 30395478 DOI: 10.1021/acs.nanolett.8b03322
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189