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      Photocurrent increase in n-i-p thin film silicon solar cells by guided mode excitation via grating coupler

      , , , ,
      Applied Physics Letters
      AIP Publishing

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          Optical absorption enhancement in amorphous silicon nanowire and nanocone arrays.

          Hydrogenated amorphous Si (a-Si:H) is an important solar cell material. Here we demonstrate the fabrication of a-Si:H nanowires (NWs) and nanocones (NCs), using an easily scalable and IC-compatible process. We also investigate the optical properties of these nanostructures. These a-Si:H nanostructures display greatly enhanced absorption over a large range of wavelengths and angles of incidence, due to suppressed reflection. The enhancement effect is particularly strong for a-Si:H NC arrays, which provide nearly perfect impedance matching between a-Si:H and air through a gradual reduction of the effective refractive index. More than 90% of light is absorbed at angles of incidence up to 60 degrees for a-Si:H NC arrays, which is significantly better than NW arrays (70%) and thin films (45%). In addition, the absorption of NC arrays is 88% at the band gap edge of a-Si:H, which is much higher than NW arrays (70%) and thin films (53%). Our experimental data agree very well with simulation. The a-Si:H nanocones function as both absorber and antireflection layers, which offer a promising approach to enhance the solar cell energy conversion efficiency.
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            Intensity enhancement in textured optical sheets for solar cells

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              Erratum: Enhanced absorption and carrier collection in Si wire arrays for photovoltaic applications

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                Author and article information

                Journal
                Applied Physics Letters
                Appl. Phys. Lett.
                AIP Publishing
                0003-6951
                1077-3118
                May 24 2010
                May 24 2010
                : 96
                : 21
                : 213508
                Article
                10.1063/1.3435481
                f610617c-1f50-4928-9856-a2cf193964d6
                © 2010
                History

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