Preview

Simulation of Tandem Thin-Film Solar Cell on the Basis of CuInSe2

https://doi.org/10.21122/1029-7448-2018-61-5-385-395

Abstract

CuInSe2 thin-film solar cells are promising materials for photovoltaic devices. One of the main tasks of researchers is to find ways to increase the solar cells efficiency. In this paper we propose an original structure of a thin-film solar cell based on a tandem connection of a photoelectric converter and a thermoelectric layer based on CuInSe2. The photoelectric converter consists of CuInSe2 and CdS layers. A 3D model of the proposed thin-film solar cell was implemented in the COMSOL Multiphysics environment with using the Heat Transfer module. The simulation was carried out taking into account the diurnal and seasonal variations of both the ambient temperature and the power density of the AM1.5 solar spectrum for the geographical coordinates of Minsk. The solar radiation power density of about 500 kW/m2 can be achieved by using concentrators. The temperature pattern and temperature gradients are calculated in each layer of the solar cell without and with the temperature stabilization of the substrate back side as well as without and with the thermal insulation of the substrate ends. Graphs of the temperature gradients of the thermoelectric layer and the temperature variations of the photoelectric converter of the solar cell are given. As a result of the simulation, it is shown how the uneven heating of both the surface of a thin-film solar cell and its layers occur under conditions of diurnal and seasonal variations of both the ambient temperature and the solar radiation power density. Under concentrated solar radiation exposure, the photoelectric converter surface can be heated up to 700 °C without temperature stabilization of the solar cell substrate. The operating temperature of the photoelectric converter was maintained at no more than 2.35 °C in January and at no more than 14.23 °C in July due to the temperature stabilization of the substrate back side of the proposed device. This made it possible to achieve an increase in the output power of the solar cell both by summing the photoand thermoelectric output voltages and by the concentration of solar radiation.

About the Authors

A. K. Esman
Belаrusian National Technical University
Belarus

Address for correspondence: Esman Alexander K. – Belarusian National Technical University, 9 B. Khmel'nitskogo str., 220013, Minsk, Republic of Belarus.  Tel.: +375 17 331-00-50    ak_esman@bntu.by

 



V. K. Kuleshov
University of Civil Protection of the Ministry for Emergency Situations of the Republic of Belarus
Belarus


V. A. Potachits
Belаrusian National Technical University
Belarus


G. L. Zykov
Belаrusian National Technical University
Belarus


References

1. Novikov G. F., Gapanovich M. V. (2017) Third Generation Cu-In-Ga-(S, Se)-Based Solar Inverters. Physics-Uspekhi, 60 (2), 161–178. https://doi.org/10.3367/ufne.2016.06.037827

2. Haloui H., Touafek K., Zaabat M., Ben Cheikh el Hocine B., Khelifa A. (2015) The Copper Indium Selenium (CuInSe2) Thin-Films Solar Cells for Hybrid Photovoltaic Thermal Collectors (PVT). Energy Procedia, 74, 1213–1219. https://doi.org/10.1016/j.egypro.2015.07.765

3. Mahdjoub A., Remache L., Moualkia H., Bordji B., Hafid A. (2015) Easily Realizable Heterojunction CdS/CuInSe2 for Thin Films Photovoltaic Application. Chalcogenide Letters, 12 (2), 59–66.

4. Dottermusch S., Quintilla A., Gomard G., Roslizar A., Voggu V. R., Simonsen B. A., Park J. S., Pernik D. R., Korgel B. A., Paetzold U. W., Richards B. S. (2017) Infiltrated Photonic Crystals for Light-Trapping in CuInSe2 Nanocrystal-Based Solar Cells. Optics Express, 25 (12), A502–A514. https://doi.org/10.1364/oe.25.00a502

5. Sadewasser S., Salome P. M. P., Rodriguez-Alvarez H. (2017) Materials Efficient Deposition and Heat Management of CuInSe2 Micro-Concentrator Solar Cells. Solar Energy Materials and Solar Cells, 159, 496–502. https://doi.org/10.1016/j.solmat.2016.09.041

6. Voggu V. R., Sham J., Preffer S., Pate J., Fillip L., Harvey T. B., Brown R. M. Jr., Korgel B. A. (2017) Flexible CuInSe2 Nanocrystal Solar Cells on Paper. ACS Energy Letters, 2 (3), 574–581. https://doi.org/10.1021/acsenergylett.7b00001

7. Davis M. W., Fanney A. H., Dougherty B. P. (2001) Prediction of Building Integrated Photovoltaic Cell Temperatures. Journal of Solar Energy Engineering, 123 (2), 200–210. https://doi.org/10.1115/1.1385825

8. Esman A. K., Potachits V. A., Zykov G. L. (2016) Increasing Energy Efficiency of Thin-Film Solar Cell on the Basis of CuIn1-xGaxSe2. Problemy Fiziki, Matematiki i Tekhniki = Problems of Physics, Mathematics and Technics, 1 (26), 30–33 (in Russian).

9. Esman A. K., Kuleshov V. K., Zykov G. L., Zalesski V. B., Leonova T.R. (2016) Method for Manufacturing Thin-Film Solar Cell: Patent of the Republic of Belarus No 20481 (in Russian).

10. Patel Ch., Shah P., Pandey A. I. (2017) Performance Improvement of Solar PV Cells using Various Cooling Methods: a Review. International Journal on Recent Trends in Computing and Communication, 5 (11), 194–198.

11. Esman A. K., Zykov G. L., Kuleshov V. K., Potachits V. A. (2017) Generated Electric Power Increase by a Thin Film Solar Cell Based on CuInSe2. Innovatsionnyye Tekhnologii Obuche- niya Fiziko-Matematicheskim i Professional'no-Tekhnicheskim Distsiplinam: Materialy IX Mezh-dunarodnoy Nauchno-Prakticheskoy Internet-Konferentsii [Innovative Teaching Techniques in Physics, Mathematics, Vocational and Mechanical Training: Materials of the IX Internatio- nal Online Research-to-Practice Conference]. Mozyr, Mozyr State Pedagogical University named after I.P.Shamyakin, 138–139 (in Russian).

12. Esman A. K., Potachits V. A., Zykov G. L. (2017) High-Efficiency Thin-Film Solar Cell. Priborostroyeniye-2017: Materialy X Mezhdunarodnoy Nauchno-Tekhnicheskoy Konferentsii [Instrument Making Engineering-2017: Materials of the X International Scientific and Technical Conference]. Minsk, Belarusian National Technical University, 364–366 (in Russian).

13. Analyze Thermal Effects with the Heat Transfer Module. Available at: https://www.comsol.com/heat-transfer-module (accessed: 15 Ma? 2018).

14. Alferov Zh. I., Andreev V. M., Rumyantsev V. D. (2004) Solar Photovoltaics: Trends and Prospects. Semiconductors, 38 (8), 899–908. https://doi.org/10.1134/1.1787110

15. Khamooshi M., Salati H., Egelioglu F., Hooshyar Faghiri A., Tarabishi J., Babadi S. (2014) A Review of Solar Photovoltaic Concentrators. International Journal of Photoenergy, 2014, 958521-1–17. https://doi.org/10.1155/2014/958521

16. Parasol and Solar Irradiation. Created in COMSOL Multiphysics 5.3a. Available at: https://www.comsol.com/model/download/466231/applications.parasol_and_solar_irradiation.pdf (accessed: 15 May 2018).


Review

For citations:


Esman A.K., Kuleshov V.K., Potachits V.A., Zykov G.L. Simulation of Tandem Thin-Film Solar Cell on the Basis of CuInSe2. ENERGETIKA. Proceedings of CIS higher education institutions and power engineering associations. 2018;61(5):385-395. https://doi.org/10.21122/1029-7448-2018-61-5-385-395

Views: 1453


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 1029-7448 (Print)
ISSN 2414-0341 (Online)