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通过控制量子点间的间距实现高亮红外量子点发光二极管。

Bright infrared quantum-dot light-emitting diodes through inter-dot spacing control.

机构信息

School of Applied and Engineering Physics, Cornell University, Ithaca, New York 14853, USA.

出版信息

Nat Nanotechnol. 2012 May 6;7(6):369-73. doi: 10.1038/nnano.2012.63.

Abstract

Infrared light-emitting diodes are currently fabricated from direct-gap semiconductors using epitaxy, which makes them expensive and difficult to integrate with other materials. Light-emitting diodes based on colloidal semiconductor quantum dots, on the other hand, can be solution-processed at low cost, and can be directly integrated with silicon. However, so far, exciton dissociation and recombination have not been well controlled in these devices, and this has limited their performance. Here, by tuning the distance between adjacent PbS quantum dots, we fabricate thin-film quantum-dot light-emitting diodes that operate at infrared wavelengths with radiances (6.4 W sr(-1) m(-2)) eight times higher and external quantum efficiencies (2.0%) two times higher than the highest values previously reported. The distance between adjacent dots is tuned over a range of 1.3 nm by varying the lengths of the linker molecules from three to eight CH(2) groups, which allows us to achieve the optimum balance between charge injection and radiative exciton recombination. The electroluminescent powers of the best devices are comparable to those produced by commercial InGaAsP light-emitting diodes. By varying the size of the quantum dots, we can tune the emission wavelengths between 800 and 1,850 nm.

摘要

目前,红外发光二极管是采用外延技术由直接带隙半导体制成的,这使得它们昂贵且难以与其他材料集成。另一方面,基于胶体半导体量子点的发光二极管可以低成本溶液加工,并且可以直接与硅集成。然而,到目前为止,这些器件中的激子解离和复合尚未得到很好的控制,这限制了它们的性能。在这里,通过调整相邻 PbS 量子点之间的距离,我们制造了在红外波长下工作的薄膜量子点发光二极管,其辐射亮度(6.4 W sr(-1) m(-2))比之前报道的最高值高 8 倍,外量子效率(2.0%)高 2 倍。通过改变连接分子的长度从三个到八个 CH(2)基团,相邻点之间的距离在 1.3nm 的范围内进行了调谐,这使得我们能够在电荷注入和辐射激子复合之间实现最佳平衡。最佳器件的电致发光功率与商业 InGaAsP 发光二极管相当。通过改变量子点的尺寸,我们可以将发射波长调谐到 800 到 1850nm 之间。

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