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

Author:

Wu Bin1,Zheng Min2,Zhuo Ming‐Peng2,Zhao Yu‐Dong1,Su Yang1,Fan Jian‐Zhong3,Luo Peng1,Gu Lin‐Feng1,Che Zong‐Lu4,Wang Zuo‐Shan1,Wang Xue‐Dong4ORCID

Affiliation:

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

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

3. School of Physics and Electronics Shandong Normal University Jinan 250014 China

4. Institute of Functional Nano & Soft Materials (FUNSOM) Jiangsu Key Laboratory for Carbon‐Based Functional Materials & Devices Soochow University Suzhou 215123 China

Abstract

AbstractOrganic 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 (LDSA/LBPEA = 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 = Loverlap/LBPEA = 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.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

Science and Technology Support Program of Jiangsu Province

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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