论文标题

核/外壳CDSE/CDS骨形纳米晶体,具有厚且各向异性壳作为光学发射器

Core/Shell CdSe/CdS Bone-Shaped Nanocrystals with a Thick and Anisotropic Shell as Optical Emitters

论文作者

Castelli, Andrea, Dhanabalan, Balaji, Polovitsyn, Anatolii, Caligiuri, Vincenzo, Di Stasio, Francesco, Scarpellini, Alice, Brescia, Rosaria, Palei, Milan, Martin-Garcia, Beatriz, Prato, Mirko, Manna, Liberato, Moreels, Iwan, Krahne, Roman, Arciniegas, Milena P.

论文摘要

胶体核/壳纳米晶体是光电子学的关键材料,通过精确的工程来控制其壳的形状,厚度和晶体晶格结构的基本特性。在这里,我们将CDS分支的纳米晶体的生长方案应用于CDSE纳米骨骼种子上,并获得具有高度各向异性壳的骨形异质结构。出人意料的是,纳米平板电脑承受350°C的高生长温度,我们获得了用CDSE纳米核心核心的结构,该结构被立方CD的外壳覆盖,上面是四面体CDS结构带有六边形晶格。这些复杂的核/壳纳米晶体显示了在657 nm附近的bod绕发射,光致发光量子产率为Ca。 42%的溶液也保留在薄膜中。有趣的是,纳米晶体同时表现出红色和绿色发射,而绿色发射的相对较长的波长表示CDS壳的立方/六边形界面处的电荷重组。纳米晶膜显示出放大的自发发射,随机激光和分布式反馈激光,当材料沉积在合适的光栅上时。我们的工作刺激了更奇特的核心/壳异质结构的设计和制造,可以设计电荷载体定位,偶极矩以及其他光学和电气性能。

Colloidal core/shell nanocrystals are key materials for optoelectronics, enabling control over essential properties via precise engineering of the shape, thickness, and crystal lattice structure of their shell. Here, we apply the growth protocol for CdS branched nanocrystals on CdSe nanoplatelet seeds and obtain bone-shaped heterostructures with a highly anisotropic shell. Surprisingly, the nanoplatelets withstand the high growth temperature of 350 °C and we obtain structures with a CdSe nanoplatelet core that is overcoated by a shell of cubic CdS, on top of which tetrahedral CdS structures with hexagonal lattice are formed. These complex core/shell nanocrystals show a bandedge emission around 657 nm with a photoluminescence quantum yield of ca. 42 % in solution, which is also retained in thin films. Interestingly, the nanocrystals manifest simultaneous red and green emission, and the relatively long wavelength of the green emission indicates charge recombination at the cubic/hexagonal interface of the CdS shell. The nanocrystal films show amplified spontaneous emission, random lasing, and distributed feedback lasing when the material is deposited on suitable gratings. Our work stimulates the design and fabrication of more exotic core/shell heterostructures where charge carrier delocalization, dipole moment, and other optical and electrical properties can be engineered.

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