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具有内置激子转换功能的有机双层异质结构用于二维光子加密

Organic Bilayer Heterostructures with Built-In Exciton Conversion for 2D Photonic Encryption.

作者信息

Wu Bin, Zheng Min, Zhuo Ming-Peng, Zhao Yu-Dong, Su Yang, Fan Jian-Zhong, Luo Peng, Gu Lin-Feng, Che Zong-Lu, Wang Zuo-Shan, Wang Xue-Dong

机构信息

College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou, 215123, China.

National Engineering Laboratory for Modern Silk, College of Textile and Clothing Engineering, Soochow University, Suzhou, 215123, China.

出版信息

Adv Mater. 2023 Dec;35(51):e2306541. doi: 10.1002/adma.202306541. Epub 2023 Nov 10.

Abstract

Organic multilayer heterostructures with accurate spatial organization demonstrate strong light-matter interaction from excitonic responses and efficient carrier transfer across heterojunction interfaces, which are considered as promising candidates toward advanced optoelectronics. However, the precise regulation of the heterojunction surface area for finely adjusting exciton conversion and energy transfer is still formidable. Herein, organic bilayer heterostructures (OBHs) with controlled face-to-face heterojunction via a stepwise seeded growth strategy, which is favorable for efficient exciton propagation and conversion of optical interconnects are designed and synthesized. Notably, the relative position and overlap length ratio of component microwires (L /L = 0.39-1.15) in OBHs are accurately regulated by modulating the crystallization time of seeded crystals, resulting into a tailored heterojunction surface area (R = L /L = 37.6%-65.3%). These as-prepared OBHs present the excitation position-dependent waveguide behaviors for optical outcoupling characteristics with tunable emission colors and intensities, which are applied into two-dimensional (2D) photonic barcodes. This strategy opens a versatile avenue to purposely design OBHs with tailored heterojunctions for efficient energy transfer and exciton conversion, facilitating the application possibilities of advanced integrated optoelectronics.

摘要

具有精确空间组织的有机多层异质结构表现出由激子响应产生的强光-物质相互作用以及跨异质结界面的高效载流子转移,这些被认为是先进光电子学的有前途的候选者。然而,精确调节异质结表面积以精细调整激子转换和能量转移仍然具有很大难度。在此,通过逐步种子生长策略设计并合成了具有可控面对面异质结的有机双层异质结构(OBHs),这种结构有利于高效激子传播和光互连转换。值得注意的是,通过调节种子晶体的结晶时间,可以精确调控OBHs中组分微丝的相对位置和重叠长度比(L /L = 0.39 - 1.15),从而得到定制的异质结表面积(R = L /L = 37.6% - 65.3%)。这些制备好的OBHs呈现出与激发位置相关的波导行为,具有可调谐的发射颜色和强度的光外耦合特性,并被应用于二维(2D)光子条形码。该策略为有目的地设计具有定制异质结的OBHs以实现高效能量转移和激子转换开辟了一条通用途径,促进了先进集成光电子学的应用可能性。

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