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PbS Quantum Dots Decorating TiO2 Nanocrystals: Synthesis, Topology, and Optical Properties of the Colloidal Hybrid Architecture

机译:PBS量子点装饰TiO2纳米晶体:胶体混合架构的合成,拓扑和光学性质

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摘要

Fabrication of heterostructures by merging two or more materials in a single object. The domains at the nanoscale represent a viable strategy to purposely address materials’ properties for applications in several fields such as catalysis, biomedicine, and energy conversion. In this case, solution-phase seeded growth and the hot-injection method are ingeniously combined to fabricate TiO2/PbS heterostructures. The interest in such hybrid nanostructures arises from their absorption properties that make them advantageous candidates as solar cell materials for more efficient solar light harvesting and improved light conversion. Due to the strong lattice mismatch between TiO2 and PbS, the yield of the hybrid structure and the control over its properties are challenging. In this study, a systematic investigation of the heterostructure synthesis as a function of the experimental conditions (such as seeds’ surface chemistry, reaction temperature, and precursor concentration), its topology, structural properties, and optical properties are carried out. The morphological and chemical characterizations confirm the formation of small dots of PbS by decorating the oleylamine surface capped TiO2 nanocrystals under temperature control. Remarkably, structural characterization points out that the formation of heterostructures is accompanied by modification of the crystallinity of the TiO2 domain, which is mainly ascribed to lattice distortion. This result is also confirmed by photoluminescence spectroscopy, which shows intense emission in the visible range. This originated from self-trapped excitons, defects, and trap emissive states.
机译:通过在单个物体中合并两种或更多种材料来制备异质结构。纳米级的域代表了可行的策略,以便在诸如催化,生物医学和能量转换等几个领域中寻出任何可行的材料的应用程序。在这种情况下,溶液相接种的生长和热注射方法是巧妙地组合以制造TiO2 / PBS异质结构。这种杂化纳米结构的兴趣产生了它们的吸收性能,使其成为优于太阳能电池材料的有利候选物,以便更高效的太阳能光收集和改善的光转化。由于TiO2和PBS之间的强格错配,混合结构的产量和对其性质的控制是具有挑战性的。在该研究中,作为实验条件(例如种子表面化学,反应温度和前体浓度),其拓扑,结构性能和光学性质,对异质结构合成的系统研究。形态学和化学表征通过在温度控制下装饰油胺表面盖TiO2纳米晶体来证实小点的形成。值得注意的是,结构表征指出异质结构的形成伴随着TiO 2结构域的结晶度的修饰,其主要归因于晶格变形。该结果也通过光致发光光谱证实,其显示在可见范围内的强烈排放。这起源于自杀的激子,缺陷和陷阱发光状态。

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