Janus‐Type ESIPT Chromophores with Distinctive Intramolecular Hydrogen‐bonding Selectivity

Author:

Chen Yahui123,Lu Sheng1,Abbas Abedi Syed Ali4,Jeong Minseok5,Li Haidong6,Hwa Kim Myung23,Park Sungnam5,Liu Xiaogang4,Yoon Juyoung2ORCID,Chen Xiaoqiang1

Affiliation:

1. State Key Laboratory of Materials-Oriented Chemical Engineering College of Chemical Engineering Jiangsu National Synergetic Innovation Center for Advanced Materials (SICAM) Nanjing Tech University 211816 Nanjing China

2. Department of Chemistry and Nanoscience Ewha Womans University 03760 Seoul Korea

3. New and Renewable Energy Research Center Ewha Womans University 03760 Seoul Korea

4. Fluorescence Research Group Singapore University of Technology and Design 8 Somapah Road 487372 Singapore Singapore

5. Department of Chemistry and Research Institute for Natural Science Korea University 02841 Seoul Korea

6. School of Bioengineering Dalian University of Technology 2 Linggong Road, Hi-tech Zone 116024 Dalian China

Abstract

AbstractExcited‐state intramolecular proton transfer (ESIPT)‐based solid luminescent materials with multiple hydrogen bond acceptors (HBAs) remain unexplored. Herein, we introduced a family of Janus‐type ESIPT chromophores featuring distinctive hydrogen bond (H‐bond) selectivity between competitive HBAs in a single molecule. Our investigations showed that the central hydroxyl group preferentially forms intramolecular H‐bonds with imines in imine‐modified 2‐hydroxyphenyl benzothiazole (HBT) chromophores but tethers the benzothiazole moiety in hydrazone‐modified HBT chromophores. Imine‐derived HBTs generally exhibit higher fluorescence efficiency, while hydrazone‐derived HBTs show a reduced overlap between the absorption and fluorescence bands. Quantum chemical calculations unveiled the molecular origins of the biased intramolecular H‐bonds and their impact on the ESIPT process. This Janus‐type ESIPT chromophore skeleton provides new opportunities for the design of solid luminescent materials.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

National Research Foundation of Korea

National Research Foundation Singapore

Publisher

Wiley

Subject

General Chemistry,Catalysis

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