Filippi Umberto, Toso Stefano, Zaffalon Matteo L, Pianetti Andrea, Li Zhanzhao, Marras Sergio, Goldoni Luca, Meinardi Francesco, Brovelli Sergio, Baranov Dmitry, Manna Liberato
Istituto Italiano di Tecnologia, Via Morego 30, Genova, 16136, Italy.
International Doctoral Program in Science, Università Cattolica del Sacro Cuore, Brescia, 25121, Italy.
Adv Mater. 2025 Jan;37(3):e2410949. doi: 10.1002/adma.202410949. Epub 2024 Nov 20.
Perovskite nanocrystal superlattices are being actively studied after reports have emerged on collective excitonic properties at cryogenic temperatures, where energetic disorder is minimized due to the frozen lattice vibrations. However, an important issue related to structural disorder of superlattices at low temperatures has received little attention to date. In this work, it is shown that CsPbBr nanocrystal superlattices undergo a reversible order-disorder transition upon cooling to 90 K. The transition consists of the loss of structural coherence, that is, increased nanocrystal misalignment, and contraction of the superlattices, as revealed by temperature-dependent X-ray diffraction, and is ascribed to the solidification of ligands (on the basis of Raman spectroscopy). Introducing shorter amines on the nanocrystal surface allows to mitigate these changes, improve order, and shorten interparticle distance. It is demonstrated that the low temperature phase of the short ligand-capped nanocrystal superlattices is characterized by a strong exciton migration observable in the photoluminescence decay, which is due to the shrinkage of the inter-nanocrystal distance.
自从有报道称在低温下钙钛矿纳米晶体超晶格具有集体激子特性后,人们便开始积极研究这种材料。在低温下,由于晶格振动冻结,能量无序性降至最低。然而,迄今为止,与超晶格在低温下的结构无序相关的一个重要问题却很少受到关注。在这项工作中,研究表明CsPbBr纳米晶体超晶格在冷却至90K时会发生可逆的有序-无序转变。如通过变温X射线衍射所揭示的,该转变包括结构相干性的丧失,即纳米晶体错位增加,以及超晶格收缩,这归因于配体的固化(基于拉曼光谱)。在纳米晶体表面引入较短的胺可以减轻这些变化,改善有序性,并缩短粒子间距离。结果表明,短配体封端的纳米晶体超晶格的低温相具有在光致发光衰减中可观察到的强烈激子迁移特性,这是由于纳米晶体间距离的缩小所致。