H2020Individual fellowship2015–2017

HISTORIC · High efficiency GaInP/GaAs Tandem wafer bonded solar cell on silicon

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2015-06-01 → 2017-05-31
EU contribution
€159,461
Participants
1
Scheme
MSCA-IF-EF-ST

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Results in brief

High efficiency GaInP/GaAs Tandem wafer bonded solar cell on silicon

The direct conversion of sunlight into electricity is a promising clean energy solution to answer the multiple challenges of energy supply security, competitiveness, electricity prices and climate change. Crystalline silicon, the dominant technology on the photovoltaic market, benefits from a well-established industry and record sunlight to electricity power conversion efficiency around 26%. However, mainly limited by its inherent material properties, the silicon technology has very little room for further power conversion efficiency improvement. On the other hand, much higher solar cell efficiencies have been achieved by stacking several layers of different materials, namely III-V semiconductor crystals, to create a so-called multi-junction solar cell which utilized a larger fraction of the solar energyspectrum. At present, however the III-V solar cells are restricted to specific markets (e.g. space) for cost and availability reasons. A hybrid solution combining the advantages of III-V multi-junction solar cells with the benefits of silicon, the most wide-spread photovoltaic material, offers great opportunities. Indeed, power conversion efficiencies above 46% (under 1-sun AM1.5G conditions) can be theoretically expected (see fig. 1) for conventional silicon based solar cell when combined with two additional III-V active layers to form a triple-junction solar cell (Gallium Indium Phosphide - GaInP - and Gallium Arsenide - GaAs - on top of silicon). In the practice, however, there are still hurdles to be overcome. Combining III-V semiconductor materials with silicon is highly challenging. III-V materials have some fundamental crystallographic differences with silicon (lattice and thermal mismatch, polarity difference), and thus it is challenging to grow III-V layers with sufficient electrical quality directly on silicon. The innovative approach proposed in this project bypasses this issue and enables to have high quality III-V crystals combined with silicon, using a microelectronic technique called surface activated wafer bonding. With this approach, the III-V solar cells and the wafer based silicon solar cell are prepared separately, and combined using the surface activated wafer bonding technique. Once permanently joined, the III-V substrate is removed, resulting in 3-5 μm thin III-V solar cells on top of the silicon wafer (See fig. 2). The objective of this research project was to use the surface activated wafer bonding technique to produce such hybrid III-V/silicon triple-junction solar cells (GaInP/GaAs//Si), and achieve large area (4 cm2) devices with an efficiency exceeding 30% in 2-terminal configuration (under 1-sun AM1.5G conditions). These solar cells may serve as a drop in replacement into standard flat plate photovoltaic modules which facilitates market introduction.

Data: CORDIS, © European Union

Project objective

Direct conversion of photons into electricity is a promising clean energy solution to answer the challenge of energy supply security, competitiveness of the EU industry, electricity prices and climate change. Monocrystalline silicon (c-Si), the dominant technology on the photovoltaic (PV) market, benefits from a strong industry and record power conversion efficiency of 25%, with a cost decreasing every year. However, c-Si technology, mainly limited by material properties, has very little room for efficiency improvement. Much higher efficiencies has been achieved by stacking diodes made of III-V semiconductors; but for cost and availability reasons, the III-V solar cells are restricted to specific markets (space & terrestrial concentration). A hybrid solution combining the advantages III-V multi-junction cells with the benefits of Si, the most wide-spread PV material, offers great opportunities. Indeed, efficiencies up to 35% under 1-sun AM1.5G conditions is expected for a triple junction device based on conventional c-Si cells combined with additional (Al)GaAs and GaInP pn-junctions (4 µm of III-V material on top of a c-Si wafer). However the direct epitaxial growth of (Al)GaAs & GaInP on Si is highly mismatched and sufficient material quality has not been achieved so far. The innovative approach proposed in this project bypass the mismatch and enables to combine high crystal quality III-V compounds with Si through wafer bonding: III-V layers are grown lattice matched on GaAs or Ge and then bonded to Si, followed by substrate lift-off & re-use. The validity of the approach has been proven at Fraunhofer ISE with un-optimized GaInP/GaAs//Si triple-junction solar cells with >25% efficiency. This research project, relying on modeling and experimental work to optimize the cell structure (light trapping, bond interface quality, current matching, etc.), targets the significant breakthrough of a GaInP/GaAs//Si triple junction reaching >30% efficiency on large areas (>4cm2).

Original text from CORDIS.

Participants

  • FRAUNHOFER GESELLSCHAFT ZUR FORDERUNG DER ANGEWANDTEN FORSCHUNG EV · MunchenCoordinatorGermany

Links

Data: CORDIS, © European Union