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有机配体在层状卤化物钙钛矿环境稳定性中的作用

Roles of Organic Ligands in Ambient Stability of Layered Halide Perovskites.

作者信息

Zhang Yalan, Yang Tinghuan, Bobba Raja Sekhar, Baniya Abiral, Niu Tianqi, Mabrouk Sally, Liu Shengzhong, Qiao Quinn, Zhao Kui

机构信息

Key Laboratory of Applied Surface and Colloid Chemistry, Ministry of Education; Shaanxi Key Laboratory for Advanced Energy Devices; Shaanxi Engineering Lab for Advanced Energy Technology, School of Materials Science and Engineering, Shaanxi Normal University, Xi'an 710119, China.

Department of Mechanical and Aerospace Engineering, Syracuse University, Syracuse, New York 13244, United States.

出版信息

ACS Appl Mater Interfaces. 2022 Jul 27;14(29):33085-33093. doi: 10.1021/acsami.2c05348. Epub 2022 Jul 13.

Abstract

The combination of organic ligands and inorganic Pb-I frameworks in layered perovskites has bestowed upon them high structural tunability and stability, while their microscopic degradation mechanism remains unclear. Here, we found the key role of ligands in intrinsic structural stability and the consequent morphological evolution in layered perovskites during long-term ambient aging based on (GA)(MA)PbI (GA = guanidinium, <> = 4) and (BDA)(MA)PbI (BDA = 1,4-butanediammonium, < > = 4) perovskites. The BDA-based perovskites have a low intrinsic stability due to high crystal formation energy (Δ), which are prone to hydration during ambient aging. We overserved changed crystal orientation from perpendicular to parallel, a delayed charge populating time from <1 ps to >50 ps, an inhibited carrier transfer kinetics between quantum wells, an increase of 0.9 μs of charge carrier transport time and a decrease of 1.2 μs of charge carrier lifetime in the BDA-based film during ambient aging, which accounts for a large power-conversion efficiency (PCE) loss (14.2% vs 11.2%). By contrast, the GA ligand increases the intrinsic structural stability of perovskites, which not only yields an initial PCE as high as 20.0% but also helps retain excellent optoelectronic properties during aging. Therefore, only a slight PCE loss (20.0% vs 19.1%) was observed. Our work reveals the key role of organic-inorganic interaction affecting the intrinsic structural stability and optoelectronic properties, and provides a theoretical basis for the future design of stable and efficient optoelectronic devices.

摘要

层状钙钛矿中有机配体与无机Pb-I骨架的结合赋予了它们高度的结构可调性和稳定性,但其微观降解机制仍不清楚。在此,我们基于(GA)(MA)PbI(GA = 胍鎓,<> = 4)和(BDA)(MA)PbI(BDA = 1,4-丁二铵,<> = 4)钙钛矿,发现了配体在层状钙钛矿长期环境老化过程中对其固有结构稳定性及随之而来的形态演变的关键作用。基于BDA的钙钛矿由于具有较高的晶体形成能(Δ)而具有较低的固有稳定性,在环境老化过程中容易发生水合作用。我们观察到基于BDA的薄膜在环境老化过程中晶体取向从垂直变为平行、电荷填充时间从<1 ps延迟到>50 ps、量子阱之间的载流子转移动力学受到抑制、电荷载流子传输时间增加0.9 μs以及电荷载流子寿命减少1.2 μs,这导致了较大的功率转换效率(PCE)损失(从14.2%降至11.2%)。相比之下,GA配体提高了钙钛矿的固有结构稳定性,这不仅使初始PCE高达20.0%,而且有助于在老化过程中保持优异的光电性能。因此,仅观察到轻微的PCE损失(从20.0%降至19.1%)。我们的工作揭示了有机-无机相互作用对固有结构稳定性和光电性能的关键作用,并为未来设计稳定高效的光电器件提供了理论基础。

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