Dynamic nanodomains dictate macroscopic properties in lead halide perovskites.

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