Monolithic Integration of Diluted-Nitride III-V-N Compounds on Silicon Substrates: Toward the III-V/Si Concentrated Photovoltaics

被引:17
作者
机构
[1] UMR FOTON, CNRS, INSA de Rennes, Rennes
[2] Tyndall National Institute, Cork
[3] INL, INSA de Lyon, Bâtiment Blaise Pascal, 7 Avenue Jean Capelle, Villeurbanne, Cedex
[4] Institut de Recherche et Développement sur l'Energie Photovoltaïque (IRDEP), UMR 7174, CNRS-EDF-ENSCP, EDF RandD, 6 quai Watier, Chatou, Cedex
[5] CEMES-CNRS, Université de Toulouse, 29 rue J. Marvig BP 94347, Toulouse Cedex 4
来源
Durand, O. (olivier.durand@insa-rennes.fr) | 1600年 / Walter de Gruyter GmbH卷 / 01期
关键词
dilute nitride; III-V semiconductors; molecular beam epitaxy; multijunction solar cells; silicon;
D O I
10.1515/ehs-2014-0008
中图分类号
学科分类号
摘要
GaAsPN semiconductors are promising material for the development of high-efficiency tandem solar cells on silicon substrates. GaAsPN diluted-nitride alloy is studied as the top-junction material due to its perfect lattice matching with the Si substrate and its ideal bandgap energy allowing a perfect current matching with the Si bottom cell. The GaP/Si interface is also studied in order to obtain defect-free GaP/Si pseudo-substrates suitable for the subsequent GaAsPN top junctions growth. Result shows that a double-step growth procedure suppresses most of the microtwins and a bi-stepped Si buffer can be grown, suitable to reduce the anti-phase domains density. We also review our recent progress in materials development of the GaAsPN alloy and our recent studies of all the different building blocks toward the development of a PIN solar cell. GaAsPN alloy with energy bandgap around 1.8 eV, lattice matched with the Si substrate, has been achieved. This alloy displays efficient photoluminescence at room temperature and good light absorption. An early-stage GaAsPN PIN solar cell prototype has been grown on a GaP(001) substrate. The external quantum efficiency and the I-V curve show that carriers have been extracted from the GaAsPN alloy absorber, with an open-circuit voltage above 1 eV, however a low short-circuit current density obtained suggests that GaAsPN structural properties need further optimization. Considering all the pathways for improvement, the 2.25% efficiency and IQE around 35% obtained under AM1.5G is however promising, therefore validating our approach for obtaining a lattice-matched dual-junction solar cell on silicon substrate. © 2014 by De Gruyter 2014.
引用
收藏
页码:147 / 156
页数:9
相关论文
共 35 条
[1]  
Aho A., Polojarvi V., Korpijarvi V.-M., Salmi J., Tukiainen A., Laukkanen P., Guina M., Composition Dependent Growth Dynamics in Molecular Beam Epitaxy of GaInNAs Solar Cells, Solar Energy Materials and Solar Cells, 124, (2014)
[2]  
Aho A., Tukiainen A., Polojarvi V., Salmi J., Guina M., High Current Generation in Dilute Nitride Solar Cells Grown by Molecular Beam Epitaxy, Proceedings of SPIE, 8620, pp. 86201I-1, (2013)
[3]  
Almosni S., Robert C., Nguyen Thanh T., Cornet C., Letoublon A., Quinci T., Levallois C., Perrin M., Kuyyalil J., Pedesseau L., Et al., Evaluation of InGaPN and GaAsPN Materials Lattice-Matched to Si for Multi-Junction Solar Cells, Journal of Applied Physics, 113, (2013)
[4]  
Baojun L., Enke L., Fujia Z., Pd/Zn/Pd Ohmic Contacts to p-Type GaP, Solid-State Electronics, 41, (1997)
[5]  
Berar J.-F., Boudet N., Breugnon P., Caillot B., Chantepie B., Clemens J.-C., Delpierre P., Dinkespiller B., Godiot S., Meessen C., Et al., Methods in Physics Research Section A: Accelerators, Spectrometers., Detectors and Associated Equipment, 607, (2009)
[6]  
Chamings J., Adams A.R., Sweeney S.J., Kunert B., Volz K., Stolz W., Temperature Dependence and Physical Properties of Ga(NAsP)/GaP Semiconductor Lasers, Applied Physics Letters, 93, (2008)
[7]  
Dagnelund D., Buyanova I.A., Wang X.J., Chen W.M., Utsumi A., Furukawa Y., Wakahara A., Yonezu H., Formation of Grown-in Defects in Molecular Beam Epitaxial Ga(in)NP: Effects of Growth Conditions and Postgrowth Treatments, Journal of Applied Physics, 103, (2008)
[8]  
Derkacs D., Jones-Albertus R., Suarez F., Fidaner O., Lattice-Matched Multijunction Solar Cells Employing a 1 eV GaInNAsSb Bottom Cell, Journal of Photonics for Energy, 2, (2012)
[9]  
Esaki L., New Phenomenon in Narrow Germanium p-N Junctions, Physical Review, 109, (1958)
[10]  
Fahy S., O'Reilly E.P., Intrinsic Limits on Electron Mobility in Dilute Nitride Semiconductors, Applied Physical Letters, 83, (2003)