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Design of Grating Al2O3 Passivation Structure Optimized for High-Efficiency Cu(In,Ga)Se2 Solar Cells
Chan Hyeon Park1, Jun Yong Kim2, Shi-Joon Sung3
1School of Electronics Engineering, Kyungpook National University, 80, Daehak-ro, Daegu 41566, Korea.
Sensors (Basel, Switzerland)
|July 24, 2021
Summary
Optimized thin copper indium gallium selenide (CIGS) solar cells with a grating aluminum oxide passivation layer (GAPL) achieved 20.38% efficiency. This structure reduces carrier recombination and enhances reflectivity for improved power conversion.
Area of Science:
- Photovoltaics
- Materials Science
- Semiconductor Devices
Background:
- Thin-film solar cells, particularly copper indium gallium selenide (CIGS), are crucial for renewable energy.
- Achieving high power conversion efficiency in CIGS cells requires minimizing carrier recombination and maximizing light absorption.
- Surface passivation is a key strategy to enhance the performance of thin-film solar cells.
Purpose of the Study:
- To propose and optimize a novel structure for thin CIGS solar cells using a grating aluminum oxide passivation layer (GAPL).
- To investigate the impact of structural parameters, specifically contact opening width (COW) and GAPL pitch, on cell efficiency.
- To enhance the power conversion efficiency of thin CIGS solar cells through advanced optoelectrical simulations.
Main Methods:
- Optoelectrical simulations were employed to design and analyze the optimized solar cell structure.
- A grating aluminum oxide (Al2O3) passivation layer (GAPL) was integrated to provide nano-sized contact openings.
- Key structural parameters, including contact opening width (COW) and GAPL pitch, were systematically varied.
Main Results:
- The optimized structure with GAPL significantly improved efficiency compared to unpassivated cells.
- An efficiency of up to 20.38% was achieved with a GAPL pitch of 7.5-12.5 μm.
- Maximum efficiency was obtained at a COW of 100 nm, attributed to effective carrier recombination inhibition and high Al2O3 reflectivity.
Conclusions:
- The proposed optimized structure with a grating aluminum oxide passivation layer offers a viable pathway to high-efficiency thin CIGS solar cells.
- Careful manipulation of COW and GAPL pitch is critical for maximizing photovoltaic performance.
- This design provides valuable insights for photovoltaic generator and sensor designers seeking to enhance photosensitive CIGS devices.

