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具有界面偶极层的高开路电压宽带隙钙钛矿太阳能电池

High Open-Circuit Voltage Wide-Bandgap Perovskite Solar Cell with Interface Dipole Layer.

作者信息

Heo Jihyeon, Prayogo Juan Anthony, Lee Seok Woo, Park Hansol, Muthu Senthilkumar, Hong JeeHee, Kim Haeun, Kim Young-Hoon, Whang Dong Ryeol, Chang Dong Wook, Park Hui Joon

机构信息

Department of Organic and Nano Engineering, Hanyang University, Seoul, 04763, Republic of Korea.

Human-Tech Convergence Program, Hanyang University, Seoul, 04763, Republic of Korea.

出版信息

Small. 2024 Dec;20(50):e2404784. doi: 10.1002/smll.202404784. Epub 2024 Aug 29.

Abstract

Wide-bandgap perovskite solar cells (PSCs) with high open-circuit voltage (V) represent a compelling and emerging technological advancement in high-performing perovskite-based tandem solar cells. Interfacial engineering is an effective strategy to enhance V in PSCs by tailoring the energy level alignments between the constituent layers. Herein, n-type quinoxaline-phosphine oxide-based small molecules with strong dipole moments is designed and introduce them as effective cathode interfacial layers. Their strong dipole effect leads to appropriate energy level alignment by tuning the work function of the Ag electrode to form an ohmic contact and enhance the built-in potential within the device, thereby improving charge-carrier transport and mitigating charge recombination. The organic interfacial layer-modified wide-bandgap PSCs exhibit a high V of 1.31 V (deficit of <0.44 V) and a power conversion efficiency (PCE) of 20.3%, significantly improved from the device without an interface dipole layer (V of 1.26 V and PCE of 16.7%). Furthermore, the hydrophobic characteristics of the small molecules contribute to improved device stability, retaining 95% of the initial PCE after 500 h in ambient air.

摘要

具有高开路电压(V)的宽带隙钙钛矿太阳能电池(PSC)是高性能钙钛矿基串联太阳能电池中一项引人注目的新兴技术进步。界面工程是通过调整组成层之间的能级排列来提高PSC中V的有效策略。在此,设计了具有强偶极矩的基于n型喹喔啉-氧化膦的小分子,并将其作为有效的阴极界面层引入。它们的强偶极效应通过调节银电极的功函数导致适当的能级排列,以形成欧姆接触并增强器件内的内建电势,从而改善电荷载流子传输并减轻电荷复合。有机界面层修饰的宽带隙PSC表现出1.31 V的高V(不足<0.44 V)和20.3%的功率转换效率(PCE),与没有界面偶极层的器件(V为1.26 V,PCE为16.7%)相比有显著提高。此外,小分子的疏水特性有助于提高器件稳定性,在环境空气中500小时后保留了初始PCE的95%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d180/11636069/c83434495cba/SMLL-20-2404784-g003.jpg

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