Thin-film solar cell with a thermoelectric layer
Problemy fiziki, matematiki i tehniki, no. 1 (2020), pp. 39-44.

Voir la notice de l'article provenant de la source Math-Net.Ru

One of the economically viable solutions of the thin-film solar cell on the basis of: the photoelectric converter, based on CuInSe$_2$-CdS, and the thermoelectric layer, based on CuInSe$_2$, is considered in this paper. This construction of the solar cell is implemented in the COMSOL Multiphysics software package. During the simulation, conditions close to operational conditions were taken into account. The temperature patterns and the temperature gradient patterns of the solar cell are obtained by using numerical methods. The use of the thermoelectric layer, the solar radiation concentration as well as maintenance of the operating temperature of the photoelectric converter due to the temperature stabilization of the substrate back side made it possible to achieve an increase in the output power of the solar cell up to 5%.
Keywords: thermoelectric layer, photoelectric converter, concentrated solar radiation, COMSOL Multiphysics, temperature gradient.
@article{PFMT_2020_1_a4,
     author = {A. K. Esman and G. L. Zykov and V. A. Potachits},
     title = {Thin-film solar cell with a thermoelectric layer},
     journal = {Problemy fiziki, matematiki i tehniki},
     pages = {39--44},
     publisher = {mathdoc},
     number = {1},
     year = {2020},
     language = {ru},
     url = {http://geodesic.mathdoc.fr/item/PFMT_2020_1_a4/}
}
TY  - JOUR
AU  - A. K. Esman
AU  - G. L. Zykov
AU  - V. A. Potachits
TI  - Thin-film solar cell with a thermoelectric layer
JO  - Problemy fiziki, matematiki i tehniki
PY  - 2020
SP  - 39
EP  - 44
IS  - 1
PB  - mathdoc
UR  - http://geodesic.mathdoc.fr/item/PFMT_2020_1_a4/
LA  - ru
ID  - PFMT_2020_1_a4
ER  - 
%0 Journal Article
%A A. K. Esman
%A G. L. Zykov
%A V. A. Potachits
%T Thin-film solar cell with a thermoelectric layer
%J Problemy fiziki, matematiki i tehniki
%D 2020
%P 39-44
%N 1
%I mathdoc
%U http://geodesic.mathdoc.fr/item/PFMT_2020_1_a4/
%G ru
%F PFMT_2020_1_a4
A. K. Esman; G. L. Zykov; V. A. Potachits. Thin-film solar cell with a thermoelectric layer. Problemy fiziki, matematiki i tehniki, no. 1 (2020), pp. 39-44. http://geodesic.mathdoc.fr/item/PFMT_2020_1_a4/

[1] I.I. Maronchuk, D.D. Sanikovich, V.I. Maronchuk, “Solnechnye elementy: sovremennoe sostoyanie i perspektivy razvitiya”, Energetika. Izvestiya vysshikh uchebnykh zavedenii i energeticheskikh ob'edinenii SNG, 2019, no. 2, 105–123

[2] G.F. Novikov, M.V. Gapanovich, “Solnechnye preobrazovateli tretego pokoleniya na osnove Cu-In-Ga-(S, Se)”, Uspekhi fizicheskikh nauk, 187:2 (2017), 173–191 | DOI

[3] M.W. Davis, A.H. Fanney, B.P. Dougherty, “Prediction of building integrated photovoltaic cell temperatures”, J. Sol. Energy Eng., 123:2 (2001), 200–210 | DOI

[4] A.K. Esman, V.A. Potachits, G.L. Zykov, “Povyshenie energoeffektivnosti tonkoplenochnykh solnechnykh elementov na osnove soedineniya CuIn$_{1-x}$Ga$_x$Se$_2$”, Problemy fiziki, matematiki i tekhniki, 2016, no. 1(26), 30–33

[5] A.K. Esman, V.K. Kuleshov, G.L. Zykov i dr., Sposob izgotovleniya tonkoplenochnogo solnechnogo elementa, pat. 20481 Resp. Belarus: MPK H 01L 31/18, H 01L 31/0264, data publ. 30.10.2016

[6] A.K. Esman, G.L. Zykov, V.A. Potachits, “Modelirovanie kharakteristik solnechnogo elementa na osnove CuInSe$_2$”, Priborostroenie – 2018, Materialy 11-i Mezhdunarodnoi nauchno-tekhnicheskoi konferentsii (14–16 noyabrya 2018 goda, Minsk, Respublika Belarus), eds. O.K. Gusev i dr., BNTU, Minsk, 2018, 279–281

[7] O.A. Ali, “CuInSe$_2$ (CIS) as a light absorption layer of photovoltaic solar cells”, American Journal of Nanotechnology, 7:1 (2016), 13–19

[8] Analyze thermal effects with the Heat Transfer Module, COMSOL, Inc., USA (Date of access: 05.12.2019) https://www.comsol.com/heat-transfer-module

[9] Zh.I. Alferov, V.M. Andreev, V.D. Rumyantsev, “Tendentsii i perspektivy razvitiya solnechnoi fotoenergetiki”, Fizika i tekhnika poluprovodnikov, 38:8 (2004), 937–948

[10] M. Khamooshi et al., “A review of solar photovoltaic concentrators”, International Journal of Photoenergy, 2014 (2014), 958521, 17 pp. | DOI

[11] S.P. Khromov, M.A. Petrosyants, Meteorologiya i klimatologiya, uchebnik, 7-e izd., Izd-vo Mosk. un-ta: Nauka, M., 2006, 212–214