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Laser-Induced Morphological and Structural Changes of Cesium Lead Bromide Nanocrystals

纳米晶 材料科学 卤化物 钙钛矿(结构) 激光器 吸收(声学) 晶体生长 化学工程 纳米技术 无机化学 结晶学 化学 光学 复合材料 工程类 物理
作者
Αθανασία Κωστοπούλου,Konstantinos Brintakis,Maria Sygletou,Kyriaki Savva,Nikolaos Livakas,Michaila Akathi Pantelaiou,Zhiya Dang,Alexandros Lappas,Liberato Manna,Emmanuel Stratakis
出处
期刊:Nanomaterials [Multidisciplinary Digital Publishing Institute]
卷期号:12 (4): 703-703 被引量:5
标识
DOI:10.3390/nano12040703
摘要

Metal halide perovskite nanocrystals, an emerging class of materials for advanced photonic and optoelectronic applications, are mainly fabricated with colloidal chemistry routes. On the quest for new properties according to application needs, new perovskite systems of various morphologies and levels of doping and alloying have been developed, often also involving post-synthesis reactions. Recently, laser irradiation in liquids has been utilized as a fast method to synthesize or transform materials and interesting laser-induced transformations on nanocrystals were induced. These studies in general have been limited to small nanocrystals (~15 nm). In the case of halide perovskites, fragmentation or anion exchange have been observed in such laser-based processes, but no crystal structure transformations were actually observed or deliberately studied. Nanocrystals are more sensitive to light exposure compared to the corresponding bulk crystals. Additional factors, such as size, morphology, the presence of impurities, and others, can intricately affect the photon absorption and heat dissipation in nanocrystal suspensions during laser irradiation. All these factors can play an important role in the final morphologies and in the time required for these transformations to unfold. In the present work, we have employed a 513 nm femtosecond (fs) laser to induce different transformations in large nanocrystals, in which two phases coexist in the same particle (Cs4PbBr6/CsPbBr3 nanohexagons of ~100 nm), dispersed in dichlorobenzene. These transformations include: (i) the exfoliation of the primary nanohexagons and partial anion exchange; (ii) fragmentation in smaller nanocubes and partial anion exchange; (iii) side-by-side-oriented attachment, fusion, and formation of nanoplatelets and complete anion exchange; (iv) side-by-side attachment, fusion, and formation of nanosheets. Partial or complete Br-Cl anion exchange in the above transformations was triggered by the partial degradation of dichlorobenzene. In addition to the detailed analysis of the various nanocrystal morphologies observed in the various transformations, the structure-photoluminescence relationships for the different samples were analyzed and discussed.
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