论文标题

通过合成后的表面陷阱修复来增强卤化物钙钛矿纳米片的可调蓝色发光

Boosting tunable blue luminescence of halide perovskite nanoplatelets through post-synthetic surface trap repair

论文作者

Bohn, Bernhard J., Tong, Yu, Gramlich, Moritz, Lai, May Ling, Döblinger, Markus, Wang, Kun, Hoye, Robert L. Z., Müller-Buschbaum, Peter, Stranks, Samuel D., Urban, Alexander S., Polavarapu, Lakshminarayana, Feldmann, Jochen

论文摘要

在整个可见光谱中,卤化物钙钛矿纳米晶体的易于调谐发射使它们成为发光应用的极其有希望的材料。尽管在红色和绿色光谱范围内排放的纳米晶体已经达到了高量子产率和长期胶体稳定性,但目前蓝色区域落后于较低的量子产量,宽阔的发射曲线和胶体稳定性不足。在这项工作中,我们提出了一种可轻松的合成方法,用于获得二维CSPBBR3纳米板片,并对其厚度进行单层优先控制,从而导致光发光和电致发光峰,具有可调的发射波长在432和497 Nm之间,这是由于量子固定所致。随后添加了PBBR2-配合溶液修复可能是由溴化物和铅空位造成的表面缺陷,并在弱发射的纳米片质体的亚集合中。因此,蓝色发光胶体分散体的总光致发光量子产率提高到73+-2%的值。瞬时光谱测量集中在激子共振上,进一步证实了拟议的修复过程。此外,显示了这些纳米片的高稳定性,并显示了长时间的紫外线暴露。

The easily tunable emission of halide perovskite nanocrystals throughout the visible spectrum makes them an extremely promising material for light-emitting applications. Whereas high quantum yields and long-term colloidal stability have already been achieved for nanocrystals emitting in the red and green spectral range, the blue region currently lags behind, with low quantum yields, broad emission profiles and insufficient colloidal stability. In this work, we present a facile synthetic approach for obtaining two-dimensional CsPbBr3 nanoplatelets with monolayer-precise control over their thickness, resulting in sharp photoluminescence and electroluminescence peaks with a tunable emission wavelength between 432 and 497 nm due to quantum confinement. Subsequent addition of a PbBr2-ligand solution repairs surface defects likely stemming from bromide and lead vacancies in a sub-ensemble of weakly emissive nanoplatelets. The overall photoluminescence quantum yield of the blue-emissive colloidal dispersions is consequently enhanced up to a value of 73+-2 %. Transient optical spectroscopy measurements focusing on the excitonic resonances further confirm the proposed repair process. Additionally, the high stability of these nanoplatelets in films and to prolonged UV light exposure is shown.

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