串联
材料科学
钙钛矿(结构)
光电子学
纳米颗粒
硅
纳米技术
复合材料
化学工程
工程类
作者
Deniz Türkay,Nicolas Blondiaux,Matthieu Boccard,Kerem Artuk,Daniel A. Jacobs,Julien Gay,Quentin Jeangros,Christophe Ballif,Christian Wolff
标识
DOI:10.1002/solr.202400704
摘要
Infrared light management is crucial to maximize the optical performance of crystalline Si‐based single junction and tandem solar cells. For this end, a low refractive index dielectric is typically inserted under the rear metal and an electrical contact is obtained locally through the dielectric. However, the realization of such an architecture can require numerous fabrication steps that are time and resource intensive. Herein, a simple approach is proposed in which commercially available, low‐cost SiO 2 nanoparticles (NPs) are spin coated as rear reflectors on pyramid‐textured Si, leaving the pyramid tips locally exposed for direct contact by an electrode without additional patterning. In Si heterojunction solar cells, complementing a 40 nm‐thick indium tin oxide (ITO) layer with the SiO 2 ‐NPs yields a gain of 0.3 mA cm −2 in short‐circuit current density compared to that obtained with a bare, 100 nm‐thick ITO layer. Combined with reduced electrical losses, power conversion efficiency gains of 0.5% abs to 0.3% abs for single junction Si and perovskite‐Si tandem cells are demonstrated, respectively. Finally, it is shown that the NPs can also be processed on large areas via blade coating and that the process can be further simplified by a change in the fabrication sequence of the SiO 2 ‐NP and ITO layers.
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