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通过干法拾取和放置转移实现纳米点单层的异质堆叠及其在量子点发光二极管中的应用。

Heterogeneous stacking of nanodot monolayers by dry pick-and-place transfer and its applications in quantum dot light-emitting diodes.

机构信息

Frontier Research Laboratory, Samsung Advanced Institute of Technology, Samsung Electronics, Yongin, Kyunggi-do 446-712, South Korea.

出版信息

Nat Commun. 2013;4:2637. doi: 10.1038/ncomms3637.

Abstract

Layered assembly structures composed of nanomaterials, such as nanocrystals, have attracted considerable attention as promising candidates for new functional devices whose optical, electromagnetic and electronic behaviours are determined by the spatial arrangement of component elements. However, difficulties in handling each constituent layer in a material-specific manner limit the 3D integration of disparate nanomaterials into the appropriate heterogeneous electronics. Here we report a pick-and-place transfer method that enables the transfer of large-area nanodot assemblies. This solvent-free transfer utilizes a lifting layer and allows for the reliable transfer of a quantum dot (QD) monolayer, enabling layer-by-layer design. With the controlled multistacking of different bandgap QD layers, we are able to probe the interlayer energy transfer among different QD monolayers. By controlling the emission spectrum through such designed monolayer stacking, we have achieved white emission with stable optoelectronic properties, the closest to pure white among the QD light-emitting diodes reported so far.

摘要

由纳米材料(如纳米晶体)组成的层状组装结构作为新型功能器件的候选材料引起了相当大的关注,其光学、电磁和电子行为由组成元素的空间排列决定。然而,由于难以以特定于材料的方式处理每个组成层,因此限制了不同纳米材料在适当的异质电子学中的 3D 集成。在这里,我们报告了一种拾取和放置转移方法,该方法能够转移大面积纳米点组件。这种无溶剂转移利用提升层,可以可靠地转移量子点(QD)单层,实现逐层设计。通过控制不同带隙 QD 层的多堆叠,可以探测不同 QD 单层之间的层间能量转移。通过通过这种设计的单层堆叠来控制发射光谱,我们实现了具有稳定光电性能的白色发射,这是迄今为止报道的 QD 发光二极管中最接近纯白色的。

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