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用丁酰肼对MAPbI钙钛矿进行表面和体缺陷钝化:对载流子动力学和迁移率的影响

Surface and Bulk Defect Passivation in MAPbI Perovskites with Daminozide: Effects on Carrier Dynamics and Mobility.

作者信息

Xie Junhan, Li Di, Li Haozheng, Peng Bo, Bao Qinye, Jiang Jiaming, Li Bo, Liu Weimin

机构信息

School of Physical Science and Technology, ShanghaiTech University, Shanghai, 201210, P. R. China.

Department of Physics, East China Normal University, Shanghai, 200062, P. R. China.

出版信息

Adv Sci (Weinh). 2025 Jun;12(23):e2500530. doi: 10.1002/advs.202500530. Epub 2025 May 8.

Abstract

Metal halide perovskite semiconductors are highly valued for their outstanding optoelectronic properties. However, the high density of intrinsic defect states in their polycrystalline thin films on the surface and within the bulk poses a significant challenge by diminishing carrier mobility and lifetime, thus hindering device performance. This study reveals a previously unidentified mid-IR emissive trapping state in MAPbI that differs from conventional Shockley-Read-Hall (SRH) defects, exhibiting unique surface-localized characteristics detectable through transient mid-IR spectroscopy. A dual-function passivation strategy using daminozide (DA) is developed, where the interlayer selectively passivates mid-IR-active surface defects while the additive mitigates bulk SRH defects through carbonyl-Pb⁺ coordination. This passivation strategy yields remarkable improvements in carrier dynamics, increasing diffusion constants from 0.135 to 0.165 cm s⁻¹ and significantly enhancing the device performance, including open-circuit voltage and power conversion efficiency. These findings highlight the crucial importance of addressing both surface and bulk defects to optimize the optoelectronic properties of perovskites.

摘要

金属卤化物钙钛矿半导体因其出色的光电特性而备受重视。然而,其表面和体相中的多晶薄膜存在高密度的本征缺陷态,这通过降低载流子迁移率和寿命对器件性能构成了重大挑战,从而阻碍了器件性能。本研究揭示了一种先前未被识别的MAPbI中的中红外发射俘获态,它不同于传统的肖克利-里德-霍尔(SRH)缺陷,具有独特的表面局域化特征,可通过瞬态中红外光谱检测到。开发了一种使用氨基丁三醇(DA)的双功能钝化策略,其中中间层选择性地钝化中红外活性表面缺陷,而添加剂通过羰基-Pb⁺配位减轻体相SRH缺陷。这种钝化策略在载流子动力学方面产生了显著改善,将扩散常数从0.135提高到0.165 cm s⁻¹,并显著提高了器件性能,包括开路电压和功率转换效率。这些发现突出了解决表面和体相缺陷对于优化钙钛矿光电特性的至关重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26c4/12199444/5de019677625/ADVS-12-2500530-g003.jpg

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