Scalable semitransparent organic solar cells with robust film thickness tolerance for building-integrated photovoltaics
Abstract
Abstract Building-integrated photovoltaics (BIPVs) is a promising application for semitransparent organic solar cells (ST-OSCs). However, conventional ultra-thin (<80 nm) active layers for ST-OSCs, while balancing transmittance and efficiency, limit the cell-to-module efficiency remaining ratio (CTM) below 56%. Here, we achieve high semitransparency and efficiency in ST-OSCs with reasonable active layer thickness by manipulating the aggregation of acceptors in various donor-diluted blends processed with non-halogen solvent in ambient air. Using PM6:Qx-p-4Cl as a model system, we elucidate a unique film-formation mechanism and charge generation process, demonstrating that the fiber network and suitable aggregation size are crucial for ensuring higher performance in donor-diluted ST-OSCs. The 1 cm 2 donor-diluted ST-OSCs with active layer thicknesses of 119 and 301 nm exhibit high light utilization efficiencies (LUEs) of 4.04% and 3.02%, respectively. Notably, a 100 cm 2 module demonstrates a CTM ratio of ~85% and a LUE of 3.32%, owing to its high film thickness tolerance, setting a new benchmark for large-area semitransparent modules. Furthermore, we demonstrate the feasibility of BIPVs in terms of power generation, energy storage, and temperature control through a scale-down model with a 600 cm 2 power-generating window. These results reveal promising prospects for ST-OSCs in real-world applications.
Article Details
Authors (12)
Tong Wang
Jin Fang
Hao Zhang
Chenyang Tian
Yuhan Wang
Zhen Fu
School of Physics, State Key Laboratory of Crystal Materials
Wenjun Zou
Dan Deng
Xiaotao Hao
Chang He
Engineering Research Center of Advanced Rare Earth Materials, Department of Chemistry
Jianqi Zhang
Key Laboratory of Nanosystem and Hierarchical Fabrication
Zhixiang Wei
CAS Key Laboratory of Nanosystems and Hierarchical Fabrication, National Center for Nanoscience and Technology