A Chiral Cyclic Tetraphenylene-Type AIEgen for Enantioselective Sensing Di- p -toluoyltartaric Acid Based on Emission Wavelength and Fluorescence Intensity Changes

Abstract Chiral di-p-toluoyltartaric acid (DTTA) is a critical resolving agent and catalyst in asymmetric synthesis and pharmaceutical development, necessitating highly selective and reliable methods for enantiomer discrimination. Conventional fluorescent probes for DTTA enantiomers predominantly rely on single-signal intensity changes, which often suffer from limited sensitivity, poor reproducibility, and environmental and instrumental fluctuations. Herein, we present a chiral macrocyclic tetraphenylene-type AIEgen, constructed by integrating a (1R,2R)-diphenylethylenediamine linker into a tetraphenylethylene framework. This macrocyclic architecture provides an enantioselective binding pocket and mechanically couples guest recognition to the conformational restriction of internal naphthalene rotors. This design enables a novel dual-signal transduction mechanism, synchronous changes in both fluorescence wavelength and intensity. Using DTTA enantiomers as model analytes, this system achieves a linear correlation between the emission maximum and enantiomer concentration, with a detection limit of 2.0 mM and an average absolute error (AAE) of less than 2.89% for enantiomeric excess (ee) determination. Interaction with D-DTTA induces a 95 nm hypsochromic shift (from 550 to 455 nm), while L-DTTA gives a 50 nm hypsochromic shift (from 550 to 500 nm), enabling visual discrimination by fluorescence color. To address the challenge of limited signal dimensionality, the dual-response strategy leverages the restricted rotation of the naphthalene rotor within the AIEgen cavity, theoretical calculations reveal that differential rotation angles modulate conjugation and excited-state energy gaps. By integrating aggregation-induced emission with dual-mode signal transduction, this platform offers a straightforward, accurate, and cost-effective strategy for chiral DTTA analysis, with broad implications for chiral drug screening and asymmetric synthesis.

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Journal
Analytical Chemistry
Published
2026-09-15
DOI
https://doi.org/10.1021/acs.analchem.6c03730
Primary Topic
Molecular Sensors and Ion Detection
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article
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article

A Chiral Cyclic Tetraphenylene-Type AIEgen for Enantioselective Sensing Di- p -toluoyltartaric Acid Based on Emission Wavelength and Fluorescence Intensity Changes

Baodui Wang, Fei Huang, Zhonghang Liu, Xitao Chen
Analytical Chemistry
Molecular Sensors and Ion Detection
article

A Chiral Cyclic Tetraphenylene-Type AIEgen for Enantioselective Sensing Di- p -toluoyltartaric Acid Based on Emission Wavelength and Fluorescence Intensity Changes

Baodui Wang, Fei Huang, Zhonghang Liu, Xitao Chen
article en

Abstract

Abstract Chiral di-p-toluoyltartaric acid (DTTA) is a critical resolving agent and catalyst in asymmetric synthesis and pharmaceutical development, necessitating highly selective and reliable methods for enantiomer discrimination. Conventional fluorescent probes for DTTA enantiomers predominantly rely on single-signal intensity changes, which often suffer from limited sensitivity, poor reproducibility, and environmental and instrumental fluctuations. Herein, we present a chiral macrocyclic tetraphenylene-type AIEgen, constructed by integrating a (1R,2R)-diphenylethylenediamine linker into a tetraphenylethylene framework. This macrocyclic architecture provides an enantioselective binding pocket and mechanically couples guest recognition to the conformational restriction of internal naphthalene rotors. This design enables a novel dual-signal transduction mechanism, synchronous changes in both fluorescence wavelength and intensity. Using DTTA enantiomers as model analytes, this system achieves a linear correlation between the emission maximum and enantiomer concentration, with a detection limit of 2.0 mM and an average absolute error (AAE) of less than 2.89% for enantiomeric excess (ee) determination. Interaction with D-DTTA induces a 95 nm hypsochromic shift (from 550 to 455 nm), while L-DTTA gives a 50 nm hypsochromic shift (from 550 to 500 nm), enabling visual discrimination by fluorescence color. To address the challenge of limited signal dimensionality, the dual-response strategy leverages the restricted rotation of the naphthalene rotor within the AIEgen cavity, theoretical calculations reveal that differential rotation angles modulate conjugation and excited-state energy gaps. By integrating aggregation-induced emission with dual-mode signal transduction, this platform offers a straightforward, accurate, and cost-effective strategy for chiral DTTA analysis, with broad implications for chiral drug screening and asymmetric synthesis.

Analytical Chemistry
Mongolian University of Science and Technology (MN), Lanzhou University of Technology (CN), Inner Mongolia University of Science and Technology (CN), Inner Mongolia University of Technology (CN), Lanzhou University (CN)
Gender equality, Peace, Justice and strong institutions
Openalex Percentile: Top 21%
Molecular Sensors and Ion Detection
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