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电子扩散长度对透明FAPbBr钙钛矿太阳能电池中辐照方向的影响

Electron Diffusion Length Effect on Direction of Irradiance in Transparent FAPbBr Perovskite Solar Cells.

作者信息

Almora Osbel, Jafarzadeh Farshad, Samir Mohamed, Escalante Renán, Di Girolamo Diego, Barichello Jessica, Brunetti Francesca, Marsal Lluis F, Matteocci Fabio, Anta Juan Antonio

机构信息

Department of Electronic, Electric, and Automatic Engineering, Universitat Rovira i Virgili, Tarragona 43007, Spain.

Center for Hybrid and Organic Solar Energy, Department of Electronics Engineering, University of Rome ≪Tor Vergata≫, Via del Politecnico 1, Roma 00133, Italy.

出版信息

J Phys Chem Lett. 2024 Oct 10;15(40):10153-10161. doi: 10.1021/acs.jpclett.4c02364. Epub 2024 Sep 30.

Abstract

Transparent photovoltaics for building integration represent a promising approach for renewable energy deployment. These devices require transparent electrodes to manage transmittance and to ensure proper cell operation. In this study, transparent FAPbBr-based perovskite solar cells optimized via a passivation treatment were demonstrated with average visible transmittance values above 60% and light utilization efficiencies up to 5.0%. Experiments under varying ultraviolet (UV) irradiance intensities from both front and rear directions revealed performance differences correlated with diffusion-limited transport and open-circuit voltage changes. Combining the UV-radiated experiments and drift-diffusion simulations, an asymmetry between the diffusion lengths of electrons and holes in the perovskite is revealed, with estimated values resulting in less than 50 nm and more than 99 nm, respectively. Our methods not only identify electron-hole diffusion length differences but also introduce a general protocol for characterizing solar cells with transparent electrodes.

摘要

用于建筑集成的透明光伏是可再生能源部署的一种有前景的方法。这些器件需要透明电极来管理透光率并确保电池正常运行。在本研究中,通过钝化处理优化的基于FAPbBr的透明钙钛矿太阳能电池被展示出平均可见光透过率高于60%且光利用效率高达5.0%。在来自前后两个方向的不同紫外线(UV)辐照强度下进行的实验揭示了与扩散限制传输和开路电压变化相关的性能差异。结合UV辐射实验和漂移 - 扩散模拟,揭示了钙钛矿中电子和空穴扩散长度的不对称性,估计值分别小于50 nm和大于99 nm。我们的方法不仅识别了电子 - 空穴扩散长度差异,还引入了一种用于表征带有透明电极的太阳能电池的通用方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68d7/11634021/ebcb3923b533/jz4c02364_0001.jpg

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