Monolithic multiple solar cells
09748426 ยท 2017-08-29
Assignee
Inventors
- Matthias Meusel (Heilbronn, DE)
- Gerhard Strobl (Stuttgart, DE)
- Frank Dimroth (Gundelfingen, DE)
- Andreas Bett (Freiburg, DE)
Cpc classification
H10F77/315
ELECTRICITY
H10F19/10
ELECTRICITY
H10F10/161
ELECTRICITY
H10F10/164
ELECTRICITY
H10F10/163
ELECTRICITY
H10F77/63
ELECTRICITY
Y02E10/52
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E10/544
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H10F77/1248
ELECTRICITY
H10F77/413
ELECTRICITY
H10F77/488
ELECTRICITY
International classification
H01L31/056
ELECTRICITY
H01L31/054
ELECTRICITY
H01L31/052
ELECTRICITY
H01L31/047
ELECTRICITY
H01L31/0232
ELECTRICITY
H01L31/0735
ELECTRICITY
H01L31/074
ELECTRICITY
Abstract
A monolithic multiple solar cell includes at least three partial cells, with a semiconductor mirror placed between two partial cells. The aim of the invention is to improve the radiation stability of said solar cell. For this purpose, the semiconductor mirror has a high degree of reflection in at least one part of a spectral absorption area of the partial cell which is arranged above the semiconductor mirror and a high degree of transmission within the spectral absorption range of the partial cell arranged below the semiconductor mirror.
Claims
1. A monolithic multiple solar cell comprising essentially of elements of the 3rd and 5th main groups of the periodic table, wherein the multiple solar cell comprises at least three partial cells, wherein a semiconductor mirror is integrated below a GaInAs partial cell, wherein the semiconductor mirror has multiple layers with different refraction indices and/or material compositions and/or thicknesses, wherein a thickness of the layers of the semiconductor mirror is 10 nmd150 nm, wherein the semiconductor mirror comprises n layers with 10n50, a half-width value of the semiconductor mirror being 50 nmHWB300 nm, and wherein the semiconductor mirror has a higher reflection degree in one part of a spectral absorption range of the partial cell or partial cells arranged above the semiconductor mirror and has a higher transmission degree in the spectral absorption range of the partial cell or partial cells arranged below the semiconductor mirror.
2. The monolithic multiple solar cell according to claim 1, wherein the layers of the semiconductor mirror are made of compound semiconductors of the 3rd and 5th main groups of the periodic table and are doped with Si, Te, Zn, C, Mg and/or Se.
3. The monolithic multiple solar cell according to claim 1, wherein the layer of the semiconductor mirror formed directly below the partial cell located above it constitutes a rear side field of the partial cell, which is made of AlGaInP.
4. The monolithic multiple solar cell according to claim 1, wherein the layer or layers of the semiconductor mirror that are arranged directly under the subsequent partial cell are lattice-matched to the partial cell.
5. The monolithic multiple solar cell according to claim 1, wherein the semiconductor mirror has materials with a band gap energy that is equal to or greater than that of the partial cell located above it.
6. The monolithic multiple solar cell according to claim 1, wherein the layers of the semiconductor mirror are made of compound semiconductors in the form of AlGaInAs material and/or AlGaInP material, wherein, in particular, the AlGaInAs material includes GaAs, InAs, AlAs, GaInAs, AlGaAs, AlInAs and/or the AlGaInP material includes GaP, InP, AlP, GaInP and/or AlInP.
7. The monolithic multiple solar cell according to claim 1, wherein the semiconductor mirror is made of at least three layers with different indices of diffraction and/or of at least three layers with different compositions and/or with different thicknesses.
8. The monolithic multiple solar cell according to claim 1, wherein the semiconductor mirror has a total thickness D with 500 nmD4000 nm, and wherein the semiconductor mirror comprises n layers with 15n35.
9. The monolithic multiple solar cell according to claim 8, wherein the semiconductor mirror has a total thickness D with 750 nmD2500 nm.
10. The monolithic multiple solar cell according to claim 1, wherein multiple semiconductor mirrors are integrated.
11. The monolithic multiple solar cell according to claim 1, wherein a reflection degree R of the semiconductor mirror for radiation in one part of the spectral absorption range of the partial cell or partial cells arranged above the semiconductor mirror is 0.7R1.
12. The monolithic multiple solar cell according to claim 1, wherein a semiconductor mirror transmission degree T of the semiconductor mirror for the radiation in the spectral absorption range of the partial cell or partial cells arranged below the semiconductor mirror is 0.8T1.
13. The monolithic multiple solar cell according to claim 1, wherein the multiple solar cell is constructed on a Ge substrate.
14. The monolithic multiple solar cell according to claim 1, wherein the half-width value of the semiconductor mirror is HWB150 nm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limitive of the present invention, and wherein:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) The schematic configuration of a multiple solar cell 10 with a semiconductor mirror integrated according to the invention can be seen in
(6) The multiple solar cell 10 is especially a triple solar cell, wherein the upper cell is made of Ga.sub.0.5In.sub.0.5P, the central cell is made of Ga.sub.0.99In.sub.0.01As, and the lower cell is made of Ge. The semiconductor mirror 22, which comprises several layers, is integrated in particular between the lower cell made of Ge and the central cell made of Ga.sub.0.99In.sub.0.01As. The layered structure is such that at least two layers of different materials, different thicknesses, and different indices of refraction are provided.
(7) Through the selection of the materials, layer thicknesses, and indices of refraction, in the ideal case a reflection behavior as that shown in
(8) The uppermost layer of the semiconductor mirror 22 can be made of GaInP and at the same time be the rear side field for the Ga.sub.0.99In.sub.0.01As central cell located above. GaInP is used as material, since it has very good properties as rear side passivation. The remaining layers of the semiconductor mirror 22 in the exemplary embodiment are made of three different materials: Ga.sub.0.99In.sub.0.01As, Al.sub.0.2Ga.sub.0.8As, and Al.sub.0.8Ga.sub.0.2As. There is an essential difference with respect to the Bragg reflector, which is made of only two different materials. Furthermore, various layer thicknesses are also in the example, while in the classic Bragg reflector all the layers of one material have the same thickness.
(9) A further essential characteristic of the layer sequence of the semiconductor mirror 22 is that it reaches, on the one hand, a high reflection for energies above the band edge of the partial cell located above it, but has, on the other hand, also a low reflection or high transmission for lower energies. The reflection of the semiconductor mirror on the boundary surface to the Ga.sub.0.99In.sub.0.01As partial cell disposed above is shown in
(10) The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are to be included within the scope of the following claims.