3.8 Proceedings Paper

Photonic Structures for III-V//Si Multi-Junction Solar Cells with Efficiency > 33%

期刊

PHOTONICS FOR SOLAR ENERGY SYSTEMS VII
卷 10688, 期 -, 页码 -

出版社

SPIE-INT SOC OPTICAL ENGINEERING
DOI: 10.1117/12.2307831

关键词

Multi-junction solar cells; III-V solar cells; Silicon solar cells; diffraction gratings; optical modelling; nanoimprint lithography; light trapping; photon management

资金

  1. European Union [727497, 641023]
  2. German Federal Ministry for Economic Affairs and Energy [0324247]
  3. Marie Sklodowska-Curie grant [655272]
  4. Marie Curie Actions (MSCA) [655272] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

Silicon based multi-junction solar cells are a promising option to overcome the theoretical efficiency limit of a silicon solar cell (29.4%). With III-V semiconductors, high bandgap materials applicable for top cells are available. For the application of such silicon based multi-junction devices, a full integration of all solar cell layers in one 2-terminal device is of great advantage. We realized a triple-junction device by wafer-bonding two III-V-based top cells onto the silicon bottom cell. However, in such a series connected solar cell system, the currents of all sub-cells need to be matched in order to achieve highest efficiencies. To fulfil the current matching condition and maximise the power output, photonic structures were investigated. The reference system without photonic structures, a triple-junction cell with identical GaInP/GaAs top cells, suffered from a current limitation by the weakly absorbing indirect semiconductor silicon bottom cell. Therefore rear side diffraction gratings manufactured by nanoimprint lithography were implemented to trap the infrared light and boost the solar cell current by more than 1 mA/cm(2). Since planar passivated surfaces with an additional photonic structure (i.e. electrically planar but optically structured) were used, the optical gain could be realized without deterioration of the electrical cell properties, leading to a strong efficiency increase of 1.9% absolute. With this technology, an efficiency of 33.3% could be achieved.

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