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Rapid chiral analysis based on liquid-phase cyclic chemiluminescence

Rapid chiral analysis has become one of the important aspects of academic and industrial research. Here we describe a new strategy based on liquid-phase cyclic chemiluminescence (CCL) for rapid resolution of enantiomers and determination of enantiomeric excess (ee). A single CCL measurement can acqu...

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Autores principales: Zhang, Runkun, Zhong, Yanhui, Lu, Zhenyu, Chen, Yanlong, Li, Gongke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179003/
https://www.ncbi.nlm.nih.gov/pubmed/34163797
http://dx.doi.org/10.1039/d0sc03496g
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author Zhang, Runkun
Zhong, Yanhui
Lu, Zhenyu
Chen, Yanlong
Li, Gongke
author_facet Zhang, Runkun
Zhong, Yanhui
Lu, Zhenyu
Chen, Yanlong
Li, Gongke
author_sort Zhang, Runkun
collection PubMed
description Rapid chiral analysis has become one of the important aspects of academic and industrial research. Here we describe a new strategy based on liquid-phase cyclic chemiluminescence (CCL) for rapid resolution of enantiomers and determination of enantiomeric excess (ee). A single CCL measurement can acquire multistage signals that provide a unique way to examine the intermolecular interactions between chiral hosts and chiral guests, because the lifetime (τ) of the multistage signals is a concentration-independent and distinguishable constant for a given chiral host–guest system. According to the τ values, CCL allows discrimination between a wide range of enantiomeric pairs including chiral alcohols, amines and acids by using only one chiral host. Even the chiral systems hardly distinguished by nuclear magnetic resonance and fluorescence methods can be distinguished easily by CCL. Additionally, the τ value of a mixture of two enantiomers is equal to the weighted average of each enantiomer, which can be used for the direct determination of ee without the need to separate the chiral mixture and create calibration curves. This is extremely crucial for the cases without readily available enantiomerically pure samples. This strategy was successfully applied to monitoring of the Walden inversion reaction and analysis of chiral drugs. The results were in good agreement with those obtained by high-performance liquid chromatography, indicating the utility of CCL for routine quick ee analysis. Mechanism study revealed that the τ value is possibly related to the activity of the chiral substance to catalyze a luminol–H(2)O(2) reaction. Our research provides an unprecedented and general protocol for chirality differentiation and ee determination, which is anticipated to be a useful technology that will find wide application in chirality-related fields, particularly in asymmetric synthesis and the pharmaceutical industry.
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spelling pubmed-81790032021-06-22 Rapid chiral analysis based on liquid-phase cyclic chemiluminescence Zhang, Runkun Zhong, Yanhui Lu, Zhenyu Chen, Yanlong Li, Gongke Chem Sci Chemistry Rapid chiral analysis has become one of the important aspects of academic and industrial research. Here we describe a new strategy based on liquid-phase cyclic chemiluminescence (CCL) for rapid resolution of enantiomers and determination of enantiomeric excess (ee). A single CCL measurement can acquire multistage signals that provide a unique way to examine the intermolecular interactions between chiral hosts and chiral guests, because the lifetime (τ) of the multistage signals is a concentration-independent and distinguishable constant for a given chiral host–guest system. According to the τ values, CCL allows discrimination between a wide range of enantiomeric pairs including chiral alcohols, amines and acids by using only one chiral host. Even the chiral systems hardly distinguished by nuclear magnetic resonance and fluorescence methods can be distinguished easily by CCL. Additionally, the τ value of a mixture of two enantiomers is equal to the weighted average of each enantiomer, which can be used for the direct determination of ee without the need to separate the chiral mixture and create calibration curves. This is extremely crucial for the cases without readily available enantiomerically pure samples. This strategy was successfully applied to monitoring of the Walden inversion reaction and analysis of chiral drugs. The results were in good agreement with those obtained by high-performance liquid chromatography, indicating the utility of CCL for routine quick ee analysis. Mechanism study revealed that the τ value is possibly related to the activity of the chiral substance to catalyze a luminol–H(2)O(2) reaction. Our research provides an unprecedented and general protocol for chirality differentiation and ee determination, which is anticipated to be a useful technology that will find wide application in chirality-related fields, particularly in asymmetric synthesis and the pharmaceutical industry. The Royal Society of Chemistry 2020-10-22 /pmc/articles/PMC8179003/ /pubmed/34163797 http://dx.doi.org/10.1039/d0sc03496g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Runkun
Zhong, Yanhui
Lu, Zhenyu
Chen, Yanlong
Li, Gongke
Rapid chiral analysis based on liquid-phase cyclic chemiluminescence
title Rapid chiral analysis based on liquid-phase cyclic chemiluminescence
title_full Rapid chiral analysis based on liquid-phase cyclic chemiluminescence
title_fullStr Rapid chiral analysis based on liquid-phase cyclic chemiluminescence
title_full_unstemmed Rapid chiral analysis based on liquid-phase cyclic chemiluminescence
title_short Rapid chiral analysis based on liquid-phase cyclic chemiluminescence
title_sort rapid chiral analysis based on liquid-phase cyclic chemiluminescence
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179003/
https://www.ncbi.nlm.nih.gov/pubmed/34163797
http://dx.doi.org/10.1039/d0sc03496g
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AT luzhenyu rapidchiralanalysisbasedonliquidphasecyclicchemiluminescence
AT chenyanlong rapidchiralanalysisbasedonliquidphasecyclicchemiluminescence
AT ligongke rapidchiralanalysisbasedonliquidphasecyclicchemiluminescence