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喷墨打印的分相纳米光子结构。

Phase-Separated Nanophotonic Structures by Inkjet Printing.

机构信息

Light Technology Institute, Karlsruhe Institute of Technology, Engesserstrasse 13, 76131 Karlsruhe, Germany.

InnovationLab, Speyerer Strasse 4, 69115 Heidelberg, Germany.

出版信息

ACS Nano. 2021 Apr 27;15(4):7305-7317. doi: 10.1021/acsnano.1c00552. Epub 2021 Apr 12.

Abstract

The spontaneous phase separation of two or more polymers is a thermodynamic process that can take place in both biological and synthetic materials and which results in the structuring of the matter from the micro- to the nanoscale. For photonic applications, it allows forming quasi-periodic or disordered assemblies of light scatterers at high throughput and low cost. The wet process methods currently used to fabricate phase-separated nanostructures (PSNs) limit the design possibilities, which in turn hinders the deployment of PSNs in commercialized products. To tackle this shortcoming, we introduce a versatile and industrially scalable deposition method based on the inkjet printing of a polymer blend, leading to PSNs with a feature size that is tuned from a few micrometers down to sub-100 nm. Consequently, PSNs can be rapidly processed into the desired macroscopic design. We demonstrate that these printed PSNs can improve light management in manifold photonic applications, exemplified here by exploiting them as a light extraction layer and a metasurface for light-emitting devices and point-of-care biosensors, respectively.

摘要

两种或多种聚合物的自发相分离是一种热力学过程,它可以在生物和合成材料中发生,并导致物质从微观到纳米尺度的结构化。对于光子学应用,它允许以高通量和低成本形成光散射体的准周期性或无序组装。目前用于制造相分离纳米结构(PSN)的湿法工艺方法限制了设计可能性,这反过来又阻碍了 PSN 在商业化产品中的应用。为了解决这一缺点,我们引入了一种基于聚合物共混物喷墨打印的通用且可工业扩展的沉积方法,从而得到特征尺寸可从几微米调谐至亚 100nm 的 PSN。因此,PSN 可以快速加工成所需的宏观设计。我们证明,这些打印的 PSN 可以改善多种光子学应用中的光管理,这里通过将它们分别用作发光器件和即时生物传感器的光提取层和超表面来举例说明。

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