动态纳米结构域决定了卤化铅钙钛矿的宏观性质

IF 38.1 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Milos Dubajic, James R. Neilson, Johan Klarbring, Xia Liang, Stephanie A. Bird, Kirrily C. Rule, Josie E. Auckett, Thomas A. Selby, Ganbaatar Tumen-Ulzii, Yang Lu, Young-Kwang Jung, Cullen Chosy, Zimu Wei, Yorrick Boeije, Martin v. Zimmermann, Andreas Pusch, Leilei Gu, Xuguang Jia, Qiyuan Wu, Julia C. Trowbridge, Eve M. Mozur, Arianna Minelli, Nikolaj Roth, Kieran W. P. Orr, Arman Mahboubi Soufiani, Simon Kahmann, Irina Kabakova, Jianning Ding, Tom Wu, Gavin J. Conibeer, Stephen P. Bremner, Michael P. Nielsen, Aron Walsh, Samuel D. Stranks
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引用次数: 0

摘要

卤化铅钙钛矿以其优异的光电性能成为太阳能转换和x射线探测的重要材料。然而,它们卓越性能的微观起源仍不清楚。在这里,我们发现在高对称性平均立方相中存在低对称性动态纳米畴,其特征由a位阳离子决定,控制着宏观行为。我们结合x射线漫射、非弹性中子光谱学、高光谱光致发光显微镜和机器学习辅助的分子动力学模拟,直接将局部纳米尺度动力学与宏观光电响应联系起来。我们的方法揭示了甲基铵基钙钛矿形成密集的、各向异性的动态纳米畴,具有相外八面体倾斜,而甲脒基钙钛矿形成稀疏的、各向同性的、具有相内倾斜的球形纳米畴,即使晶体学平均显示为立方对称。我们证明,这些稀疏分布的各向同性纳米结构域存在于甲脒基系统中,减少了电子动态紊乱,从而产生了有益的光电响应,从而提高了甲脒基卤化铅钙钛矿器件的性能。通过阐明a位阳离子对局部动态纳米畴的影响,进而对宏观性质的影响,我们建议利用这种关系来设计这些材料的光电响应,推动钙钛矿基光伏、光电子学和x射线成像的进一步发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dynamic nanodomains dictate macroscopic properties in lead halide perovskites

Dynamic nanodomains dictate macroscopic properties in lead halide perovskites

Lead halide perovskites have emerged as promising materials for solar energy conversion and X-ray detection owing to their remarkable optoelectronic properties. However, the microscopic origins of their superior performance remain unclear. Here we show that low-symmetry dynamic nanodomains present in the high-symmetry average cubic phases, whose characteristics are dictated by the A-site cation, govern the macroscopic behaviour. We combine X-ray diffuse scattering, inelastic neutron spectroscopy, hyperspectral photoluminescence microscopy and machine-learning-assisted molecular dynamics simulations to directly correlate local nanoscale dynamics with macroscopic optoelectronic response. Our approach reveals that methylammonium-based perovskites form densely packed, anisotropic dynamic nanodomains with out-of-phase octahedral tilting, whereas formamidinium-based systems develop sparse, isotropic, spherical nanodomains with in-phase tilting, even when crystallography reveals cubic symmetry on average. We demonstrate that these sparsely distributed isotropic nanodomains present in formamidinium-based systems reduce electronic dynamic disorder, resulting in a beneficial optoelectronic response, thereby enhancing the performance of formamidinium-based lead halide perovskite devices. By elucidating the influence of the A-site cation on local dynamic nanodomains, and consequently, on the macroscopic properties, we propose leveraging this relationship to engineer the optoelectronic response of these materials, propelling further advancements in perovskite-based photovoltaics, optoelectronics and X-ray imaging.

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来源期刊
Nature nanotechnology
Nature nanotechnology 工程技术-材料科学:综合
CiteScore
59.70
自引率
0.80%
发文量
196
审稿时长
4-8 weeks
期刊介绍: Nature Nanotechnology is a prestigious journal that publishes high-quality papers in various areas of nanoscience and nanotechnology. The journal focuses on the design, characterization, and production of structures, devices, and systems that manipulate and control materials at atomic, molecular, and macromolecular scales. It encompasses both bottom-up and top-down approaches, as well as their combinations. Furthermore, Nature Nanotechnology fosters the exchange of ideas among researchers from diverse disciplines such as chemistry, physics, material science, biomedical research, engineering, and more. It promotes collaboration at the forefront of this multidisciplinary field. The journal covers a wide range of topics, from fundamental research in physics, chemistry, and biology, including computational work and simulations, to the development of innovative devices and technologies for various industrial sectors such as information technology, medicine, manufacturing, high-performance materials, energy, and environmental technologies. It includes coverage of organic, inorganic, and hybrid materials.
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