Structural Engineering of Red Luminogens to Realize High Emission Efficiency through ACQ‐to‐AIE Transformation

Author:

Sun Hua1,He Tengfei2,Zhang Chuchen1,Wang Shifan1,Dong Liming1,Li Zhao1,Gu Pei‐Yang3,Wang Zhe1,Long Guankui2,Zhang Qichun45ORCID

Affiliation:

1. School of Material and Chemistry Engineering School of Food and Biology Engineering Xuzhou University of Technology 2 Lishui Road, Yunlong District 221018 Xuzhou P. R. China

2. School of Materials Science and Engineering National Institute for Advanced Materials Renewable Energy Conversion and Storage Center (RECAST) Nankai University 300350 Tianjin P. R. China

3. Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology School of Petrochemical Engineering Changzhou University 213164 Changzhou P. R. China

4. Department of Materials Science and Engineering City University of Hong Kong Kowloon 999077 Hong Kong P. R. China

5. Center of Super-Diamond and Advanced Films (COSDAF) City University of Hong Kong 999077 Hong Kong SAR P. R. China

Abstract

AbstractDeep red/near‐infrared (NIR, >650 nm) emissive organic luminophores with aggregation‐induced emission (AIE) behaviours have emerged as promising candidates for applications in optoelectronic devices and biological fields. However, the molecular design philosophy for AIE luminogens (AIEgens) with narrow band gaps are rarely explored. Herein, we rationally designed two red organic luminophores, FITPA and FIMPA, by considering the enlargement of transition dipole moment in the charge‐transfer state and the transformation from aggregation‐caused quenching (ACQ) to AIE. The transition dipole moments were effectively enhanced with a “V‐shaped” molecular configuration. Meanwhile, the ACQ‐to‐AIE transformation from FITPA to FIMPA was induced by a methoxy‐substitution strategy. The experimental and theoretical results demonstrated that the ACQ‐to‐AIE transformation originated from a crystallization‐induced emission (CIE) effect because of additional weak interactions in the aggregate state introduced by methoxy groups. Owing to the enhanced transition dipole moment and AIE behaviour, FIMPA presented intense luminescence covering the red‐to‐NIR region, with a photoluminescence quantum yield (PLQY) of up to 38 % in solid state. The promising cell‐imaging performance further verified the great potential of FIMPA in biological applications. These results provide a guideline for the development of red and NIR AIEgens through comprehensive consideration of both the effect of molecular structure and molecular interactions in aggregate states.

Funder

City University of Hong Kong

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Chemistry,Catalysis,Organic Chemistry

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