Mellor, AlexanderAlexanderMellorHylton, N.P.N.P.HyltonHauser, HubertHubertHauserThomas, T.T.ThomasLee, K.-H.K.-H.LeeAl-Saleh, Y.Y.Al-SalehGiannini, V.V.GianniniBraun, A.A.BraunLoo, J.J.LooVercruysse, D.D.VercruysseDorpe, P. vanP. vanDorpeBläsi, BenediktBenediktBläsiMaier, Stefan A.Stefan A.MaierEkins-Daukes, Nicholas J.Nicholas J.Ekins-Daukes2022-03-052022-03-052016https://publica.fraunhofer.de/handle/publica/24693110.1109/JPHOTOV.2016.2601944This paper contains a combined experimental and simulation study of the effect of Al and AlInP nanoparticles on the performance of multijunction (MJ) solar cells. In particular, we investigate oblique photon scattering by the nanoparticle arrays as a means of improving thinned subcells or those with low diffusion lengths, either inherently or due to radiation damage. Experimental results show the feasibility of integrating nanoparticle arrays into the antireflection coatings of commercial InGaP/InGaAs/Ge solar cells, and computational results show that nanoparticle arrays can improve the internal quantum efficiency via optical path length enhancement. However, a design that improves the external quantum efficiency of a state-of-The-Art cell has not been found, despite the large parameter space studied. We show a clear tradeoff between oblique scattering and transmission loss and present design principles and insights into how improvements can be made.enSolarzellen - Entwicklung und CharakterisierungPhotovoltaikIII-V und Konzentrator-PhotovoltaikNeuartige Photovoltaik-TechnologienIII-V Epitaxie und SolarzellenPhotonenmanagementManagementPlasmonicslithographyNanoparticle Scattering for Multijunction Solar Cells: The Tradeoff between Absorption Enhancement and Transmission Lossjournal article