Yue Yunfan, Chai NianYao, Li Mingyu, Zeng Zhongle, Li Sheng, Chen Xiangyu, Zhou Jiakang, Wang Huan, Wang Xuewen
Center of Femtosecond Laser Manufacturing for Advanced Materials and Devices, State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, P. R. China.
Foshan Xianhu Laboratory of the Advanced Energy Science and Technology Guangdong Laboratory, Foshan, 528216, P. R. China.
Adv Mater. 2024 Aug;36(33):e2407347. doi: 10.1002/adma.202407347. Epub 2024 Jun 16.
Quasi-2D perovskites exhibit great potential in photodetectors due to their exceptional optoelectronic responsivity and stability, compared to their 3D counterparts. However, the defects are detrimental to the responsivity, response speed, and stability of perovskite photodetectors. Herein, an ultrafast photoexcitation-induced passivation technique is proposed to synergistically reduce the dimensionality at the surface and induce oxygen doping in the bulk, via tuning the photoexcitation intensity. At the optimal photoexcitation level, the excited electrons and holes generate stretching force on the Pb─I bonds at the interlayered [PbI], resulting in low dimensional perovskite formation, and the absorptive oxygen is combined with I vacancies at the same time. These two induced processes synergistically boost the carrier transport and interface contact performance. The most outstanding device exhibits a fast response speed with rise/decay time of 201/627 ns, with a peak responsivity/detectivity of 163 mA W/4.52 × 10 Jones at 325 nm and the enhanced cycling stability. This work suggests the possibility of a new passivation technique for high performance 2D perovskite optoelectronics.
与三维钙钛矿相比,准二维钙钛矿因其卓越的光电响应性和稳定性,在光电探测器中展现出巨大潜力。然而,缺陷对钙钛矿光电探测器的响应性、响应速度和稳定性有害。在此,提出一种超快光激发诱导钝化技术,通过调节光激发强度,协同降低表面维度并在体相中诱导氧掺杂。在最佳光激发水平下,激发的电子和空穴在层间[PbI]处的Pb─I键上产生拉伸力,导致低维钙钛矿形成,同时吸收性氧与碘空位结合。这两个诱导过程协同提升载流子传输和界面接触性能。最出色的器件表现出快速响应速度,上升/衰减时间为201/627 ns,在325 nm处的峰值响应度/探测率为163 mA W/4.52×10 Jones,并具有增强的循环稳定性。这项工作表明了一种用于高性能二维钙钛矿光电器件的新型钝化技术的可能性。