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混合卤化物体相钙钛矿三重态敏化剂:能带排列、带隙中陷阱与声子之间的相互作用

Mixed halide bulk perovskite triplet sensitizers: Interplay between band alignment, mid-gap traps, and phonons.

作者信息

Bieber Alexander S, VanOrman Zachary A, Drozdick Hayley K, Weiss Rachel, Wieghold Sarah, Nienhaus Lea

机构信息

Department of Chemistry and Biochemistry, Florida State University, Tallahassee, Florida 32306, USA.

出版信息

J Chem Phys. 2021 Dec 21;155(23):234706. doi: 10.1063/5.0077439.

Abstract

Photon upconversion, particularly via triplet-triplet annihilation (TTA), could prove beneficial in expanding the efficiencies and overall impacts of optoelectronic devices across a multitude of technologies. The recent development of bulk metal halide perovskites as triplet sensitizers is one potential step toward the industrialization of upconversion-enabled devices. Here, we investigate the impact of varying additions of bromide into a lead iodide perovskite thin film on the TTA upconversion process in the annihilator molecule rubrene. We find an interplay between the bromide content and the overall device efficiency. In particular, a higher bromide content results in higher internal upconversion efficiencies enabled by more efficient charge extraction at the interface likely due to a more favorable band alignment. However, the external upconversion efficiency decreases as the absorption cross section in the near infrared is reduced. The highest upconversion performance is found in our study for a bromide content of 5%. This result can be traced back to a high absorption cross section in the near infrared and higher photoluminescence quantum yield in comparison to the iodide-only perovskite and an increased driving force for charge transfer.

摘要

光子上转换,特别是通过三重态-三重态湮灭(TTA),在提高多种技术的光电器件效率和整体影响方面可能具有重要意义。最近,体相金属卤化物钙钛矿作为三重态敏化剂的发展是实现上转换器件工业化的一个潜在步骤。在此,我们研究了在碘化铅钙钛矿薄膜中加入不同量的溴化物对湮灭分子红荧烯中TTA上转换过程的影响。我们发现溴化物含量与器件整体效率之间存在相互作用。特别是,较高的溴化物含量会导致更高的内部上转换效率,这可能是由于更有利的能带排列使得界面处的电荷提取更有效。然而,随着近红外吸收截面的减小,外部上转换效率降低。在我们的研究中,溴化物含量为5%时上转换性能最佳。这一结果可归因于与仅含碘化物的钙钛矿相比,其在近红外区域具有较高的吸收截面和较高的光致发光量子产率,以及电荷转移驱动力的增加。

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