Development of Low-Cost c-Si-Based CPV Cells for a Solar Co-Generation Absorber in a Parabolic Trough Collector

Author:

Aydin Elsen12,Buchroithner Armin3ORCID,Felsberger Richard3ORCID,Preßmair Rupert3,Azgın Ahmet45,Turan Rasit14,Keçeci Ahmet Emin15,Bektaş Gence15ORCID,Akinoglu Bulent146

Affiliation:

1. Center for Solar Energy Research and Applications (GÜNAM), Middle East Technical University (METU), Ankara 06800, Turkey

2. Department of Archaeometry, Middle East Technical University (METU), Ankara 06800, Turkey

3. Institute of Electrical Measurement and Sensor Systems (EMS), Graz University of Technology, 8010 Graz, Austria

4. Department of Physics, Middle East Technical University (METU), Ankara 06800, Turkey

5. Department of Micro and Nanotechnology, Middle East Technical University (METU), Ankara 06800, Turkey

6. Earth System Science Program, Middle East Technical University (METU), Ankara 06800, Turkey

Abstract

Concentrator photovoltaics (CPVs) have demonstrated high electrical efficiencies and technological potential, especially when deployed in CPV–thermal (CPV-T) hybrid absorbers, in which the cells’ waste heat can be used to power industrial processes. However, the high cost of tracking systems and the predominant use of expensive multi-junction PV cells have caused the market of solar co-generation technologies to stall. This paper describes the development and testing of a low-cost alternative CPV cell based on crystalline silicone (c-Si) for use in a novel injection-molded parabolic hybrid solar collector, generating both, photovoltaic electricity and thermal power. The study covers two different c-Si cell technologies, namely, passive emitter rear contact (PERC) and aluminum back surface field (Al-BSF). Simulation design and manufacturing are described with special attention to fingerprinting in order to achieve high current carrying capacities for concentrated sunlight. It was determined that Al-BSF cells offer higher efficiencies than PERC for the considered use case. Solar simulator tests showed that the highly doped 4 cm2 cells (50 ohm/sq) reach efficiencies of 16.9% under 1 sun and 13.1% under 60 suns at 25 °C with a temperature coefficient of −0.069%(Abs)/K. Finally, options to further improve the cells are discussed and an outlook is given for deployment in a field-testing prototype.

Funder

SOLAR-ERA.NET Cofund 2nd Call

Graz University of Technology

Publisher

MDPI AG

Reference36 articles.

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3. Papis-Frączek, K., and Sornek, K. (2022). A Review on Heat Extraction Devices for CPVT Systems with Active Liquid Cooling. Energies, 15.

4. Aydin, E., Tuncel, B., and Akinoglu, B.G. (December, January 30). A Concentrating Mini Solar Power System to Overcome the Market Share. Proceedings of the 2020 2nd International Conference on Photovoltaic Science and Technologies, PVCon, Ankara, Turkey.

5. Assessment viability of a concentrating photovoltaic/thermal-energy cogeneration system (CPV/T) with storage for a textile industry application;Youssef;Sol. Energy,2018

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