Title :
17.1%-Efficient multi-scale-textured black silicon solar cells without dielectric antireflection coating
Author :
Toor, Fatima ; Page, Matthew R. ; Branz, Howard M. ; Yuan, Hao-Chih
Author_Institution :
Nat. Renewable Energy Lab. (NREL), Golden, CO, USA
Abstract :
In this work we present 17.1%-efficient p-type single crystal Si solar cells with a multi-scale-textured surface and no dielectric antireflection coating. Multi-scale texturing is achieved by a gold-nanoparticle-assisted nanoporous etch after conventional micron scale KOH-based pyramid texturing (pyramid black etching). By incorporating geometric enhancement of antireflection, this multi-scale texturing reduces the nanoporosity depth required to make silicon `black´ compared to nanoporous planar surfaces. As a result, it improves short-wavelength spectral response (blue response), previously one of the major limiting factors in `black-Si´ solar cells. With multi-scale texturing, the spectrum-weighted average reflectance from 350- to 1000-nm wavelength is below 2% with a 100-nm deep nanoporous layer. In comparison, roughly 250-nm deep nanopores are needed to achieve similar reflectance on planar surface. Here, we characterize surface morphology, reflectivity and solar cell performance of the multi-scale textured solar cells.
Keywords :
antireflection coatings; gold; porosity; silicon; solar cells; surface morphology; Au; antireflection geometric enhancement; blue response; efficient multiscale-textured black silicon solar cells; gold-nanoparticle-assisted nanoporous etch; micron scale KOH-based pyramid texturing; multiscale texturing; multiscale-textured surface; nanoporosity depth; nanoporous planar surfaces; p-type single crystal silicon solar cells; planar surface reflectance; short-wavelength spectral response; silicon black; spectrum-weighted average reflectance; surface morphology; wavelength 350 nm to 1000 nm; Optical surface waves; Photovoltaic cells; Silicon; Surface morphology; Surface texture; Surface treatment; Surface waves;
Conference_Titel :
Photovoltaic Specialists Conference (PVSC), 2011 37th IEEE
Conference_Location :
Seattle, WA
Print_ISBN :
978-1-4244-9966-3
DOI :
10.1109/PVSC.2011.6185835