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开发用于微腔极化激元应用的溶液处理分布式布拉格反射器。

Developing Solution-Processed Distributed Bragg Reflectors for Microcavity Polariton Applications.

作者信息

Palo Emilia, Papachatzakis Michael A, Abdelmagid Ahmed, Qureshi Hassan, Kumar Manish, Salomäki Mikko, Daskalakis Konstantinos S

机构信息

Department of Mechanical and Materials Engineering, University of Turku, FI-20014 Turku, Finland.

Department of Chemistry, University of Turku, FI-20014 Turku, Finland.

出版信息

J Phys Chem C Nanomater Interfaces. 2023 Jul 17;127(29):14255-14262. doi: 10.1021/acs.jpcc.3c01457. eCollection 2023 Jul 27.

Abstract

Improving the performance of organic optoelectronics has been under vigorous research for decades. Recently, polaritonics has been introduced as a technology that has the potential to improve the optical, electrical, and chemical properties of materials and devices. However, polaritons have been mainly studied in optical microcavities that are made by vacuum deposition processes, which are costly, unavailable to many, and incompatible with printed optoelectronics methods. Efforts toward the fabrication of polariton microcavities with solution-processed techniques have been utterly absent. Herein, we demonstrate for the first time strong light-matter coupling and polariton photoluminescence in an organic microcavity consisting of an aluminum mirror and a distributed Bragg reflector (DBR) made by sequential dip coating of titanium hydroxide/poly(vinyl alcohol) (TiOH/PVA) and Nafion films. To fabricate and develop the solution-processed DBRs and microcavities, we automatized a dip-coating device that allowed us to produce sub-100 nm films consistently over many dip-coating cycles. Owning to the solution-based nature of our DBRs, our results pave the way to the realization of polariton optoelectronic devices beyond physical deposition methods.

摘要

几十年来,提高有机光电器件的性能一直是热门研究课题。最近,极化激元学作为一种有潜力改善材料和器件光学、电学及化学性质的技术被引入。然而,极化激元主要是在通过真空沉积工艺制造的光学微腔中进行研究,这种工艺成本高昂,许多人无法使用,且与印刷光电子方法不兼容。目前完全缺乏使用溶液处理技术制造极化激元微腔的相关研究。在此,我们首次展示了在由铝镜和通过依次浸涂氢氧化钛/聚乙烯醇(TiOH/PVA)和Nafion薄膜制成的分布式布拉格反射器(DBR)组成的有机微腔中实现的强光-物质耦合和极化激元光致发光。为了制造和开发溶液处理的DBR和微腔,我们将浸涂设备自动化,使其能够在多个浸涂周期中持续生产厚度小于100 nm的薄膜。由于我们的DBR具有基于溶液的特性,我们的研究结果为超越物理沉积方法实现极化激元光电器件铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a19a/10388359/5726cc68d1e2/jp3c01457_0002.jpg

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