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用于加速倒置钙钛矿太阳能电池中电荷提取的NiO空穴传输层的改性

Modification of NiO hole transport layer for acceleration of charge extraction in inverted perovskite solar cells.

作者信息

Jin Zezhu, Guo Yanru, Yuan Shuai, Zhao Jia-Shang, Liang Xiao-Min, Qin Yujun, Zhang Jian-Ping, Ai Xi-Cheng

机构信息

Department of Chemistry, Renmin University of China Beijing 100872 China

出版信息

RSC Adv. 2020 Mar 25;10(21):12289-12296. doi: 10.1039/d0ra00209g. eCollection 2020 Mar 24.

Abstract

The modification of the inorganic hole transport layer has been an efficient method for optimizing the performance of inverted perovskite solar cells. In this work, we propose a facile modification of a compact NiO film with NiO nanoparticles and explore the effects on the charge carrier dynamic behaviors and photovoltaic performance of inverted perovskite devices. The modification of the NiO hole transport layer can not only enlarge the surface area and infiltration ability, but also adjust the valence band maximum to well match that of perovskite. The photoluminescence results confirm the acceleration of the charge separation and transport at the NiO /perovskite interface. The corresponding device possesses better photovoltaic parameters than the device based on control NiO films. Moreover, the charge carrier transport/recombination dynamics are further systematically investigated by the measurements of time-resolved photoluminescence, transient photovoltage and transient photocurrent. Consequently, the results demonstrate that proper modification of NiO can significantly enlarge interface area and improve the hole extraction capacity, thus efficiently promoting charge separation and inhibiting charge recombination, which leads to the enhancement of the device performances.

摘要

无机空穴传输层的改性一直是优化倒置钙钛矿太阳能电池性能的有效方法。在这项工作中,我们提出了一种用NiO纳米颗粒对致密NiO薄膜进行简便改性的方法,并探究其对倒置钙钛矿器件电荷载流子动力学行为和光伏性能的影响。NiO空穴传输层的改性不仅可以增大表面积和浸润能力,还能调整价带最大值以与钙钛矿的价带最大值良好匹配。光致发光结果证实了NiO/钙钛矿界面处电荷分离和传输的加速。相应器件的光伏参数优于基于对照NiO薄膜的器件。此外,通过时间分辨光致发光、瞬态光电压和瞬态光电流测量,进一步系统地研究了电荷载流子的传输/复合动力学。因此,结果表明对NiO进行适当改性可显著增大界面面积并提高空穴提取能力,从而有效地促进电荷分离并抑制电荷复合,进而导致器件性能的提升。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b447/9050867/df6f742f04f1/d0ra00209g-f1.jpg

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