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厚度可调的自组装胶体纳米片薄膜实现超薄光学增益介质。

Thickness-Tunable Self-Assembled Colloidal Nanoplatelet Films Enable Ultrathin Optical Gain Media.

作者信息

Erdem Onur, Foroutan Sina, Gheshlaghi Negar, Guzelturk Burak, Altintas Yemliha, Demir Hilmi Volkan

机构信息

Department of Electrical and Electronics Engineering, Department of Physics, UNAM - Institute of Materials Science and Nanotechnology, Bilkent University, Ankara 06800, Turkey.

Advanced Photon Source, Argonne National Laboratory, Lemont, Illinois 60439, United States.

出版信息

Nano Lett. 2020 Sep 9;20(9):6459-6465. doi: 10.1021/acs.nanolett.0c02153. Epub 2020 Aug 6.

Abstract

We propose and demonstrate construction of highly uniform, multilayered superstructures of CdSe/CdZnS core/shell colloidal nanoplatelets (NPLs) using liquid interface self-assembly. These NPLs are sequentially deposited onto a solid substrate into slabs having monolayer-precise thickness across tens of cm areas. Because of near-unity surface coverage and excellent uniformity, amplified spontaneous emission (ASE) is observed from an uncharacteristically thin film having 6 NPL layers, corresponding to a mere 42 nm thickness. Furthermore, systematic studies on optical gain of these NPL superstructures having thicknesses ranging from 6 to 15 layers revealed the gradual reduction in gain threshold with increasing number of layers, along with a continuous spectral shift of the ASE peak (∼18 nm). These observations can be explained by the change in the optical mode confinement factor with the NPL waveguide thickness and propagation wavelength. This bottom-up construction technique for thickness-tunable, three-dimensional NPL superstructures can be used for large-area device fabrication.

摘要

我们提出并展示了利用液界面自组装构建高度均匀的多层CdSe/CdZnS核/壳胶体纳米片(NPL)超结构。这些NPL被依次沉积到固体基板上,形成在数十平方厘米区域内具有单层精确厚度的平板。由于近乎完全的表面覆盖和出色的均匀性,从仅有6层NPL、厚度仅为42纳米的异常薄膜中观察到了放大自发辐射(ASE)。此外,对这些厚度范围从6层到15层的NPL超结构的光学增益进行的系统研究表明,随着层数增加,增益阈值逐渐降低,同时ASE峰发生连续的光谱移动(约18纳米)。这些观察结果可以通过光学模式限制因子随NPL波导厚度和传播波长的变化来解释。这种用于厚度可调的三维NPL超结构的自下而上构建技术可用于大面积器件制造。

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