泰勒涡诱导的同手性成核使马尿酸的无添加剂对映纯结晶成为可能

IF 3.4 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Bowen Zhang*, , , Ziwen Deng, , , Dandan Han*, , and , Junbo Gong*, 
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引用次数: 0

摘要

在没有手性添加剂或研磨的情况下实现对映纯结晶仍然是基于结晶的手性分离的一个重大挑战。本研究表明,在Couette-Taylor结晶器内的周期性Taylor涡流(TVF)可以在结晶早期驱动手性对称破缺(CSB),导致早在诱导期就有近100%的马尿酸对映体过量(ee)。这一性能明显优于在随机湍流(RTF)下运行的传统混合槽结晶器。过饱和对CSB的范围有重要影响。虽然在RTF诱导期内,ee随着过饱和的增加而迅速减少,但周期性TVF在所有测试条件下保持满ee至1.8过饱和,并有力地促进了单个对映体的优势地位,尽管手性选择具有随机性。CFD模拟结果表明,泰勒涡在冷却结晶过程中产生了连贯的流动结构和有空间组织的热梯度,它们共同促进了分子排列和同手性预核团簇的形成。这些效应有利于单个对映体的初始成核,抑制随机的外消旋途径。重要的是,通过强调同手性原生成核和次生成核的作用,这项工作扩展了传统的CSB机制,并强调了结构流体动力学作为手性结果的关键调节因素。这项工作不仅推进了对流动介导的手性结晶的机理理解,而且还提出了一种可扩展的、无添加剂的生产对映纯材料的策略,与制药和精细化工制造具有广泛的相关性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Taylor Vortex Flow-Induced Homochiral Nucleation Enables Additive-Free Enantiopure Crystallization of Hippuric Acid

Taylor Vortex Flow-Induced Homochiral Nucleation Enables Additive-Free Enantiopure Crystallization of Hippuric Acid

Achieving enantiopure crystallization without the aid of chiral additives or grinding remains a significant challenge in crystallization-based chiral separation. This study demonstrates that periodic Taylor vortex flow (TVF) within a Couette–Taylor crystallizer can drive chiral symmetry breaking (CSB) during the early stages of crystallization, resulting in nearly 100% enantiomeric excess (ee) of hippuric acid as early as the induction period. This performance significantly exceeds that of conventional mixed-tank crystallizers operating under random turbulent flow (RTF). Supersaturation is found to critically influence the extent of CSB. While ee during the induction period under RTF diminishes rapidly with increasing supersaturation, periodic TVF sustains full ee up to a supersaturation of 1.8 and robustly facilitates the dominance of a single enantiomer across all tested conditions, despite the stochastic nature of handedness selection. CFD simulations reveal that Taylor vortices generate coherent flow structures and spatially organized thermal gradients during cooling crystallization, which collectively facilitate molecular alignment and the formation of homochiral prenucleation clusters. These effects favor initial nucleation of a single enantiomer and suppress stochastic, racemic pathways. Importantly, by emphasizing the roles of both homochiral primary nucleation and secondary nucleation, this work extends traditional CSB mechanisms and highlights structured hydrodynamics as a critical regulator of chiral outcomes. This work not only advances the mechanistic understanding of flow-mediated chiral crystallization but also presents a scalable, additive-free strategy for producing enantiopure materials, with broad relevance to pharmaceutical and fine chemical manufacturing.

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来源期刊
Crystal Growth & Design
Crystal Growth & Design 化学-材料科学:综合
CiteScore
6.30
自引率
10.50%
发文量
650
审稿时长
1.9 months
期刊介绍: The aim of Crystal Growth & Design is to stimulate crossfertilization of knowledge among scientists and engineers working in the fields of crystal growth, crystal engineering, and the industrial application of crystalline materials. Crystal Growth & Design publishes theoretical and experimental studies of the physical, chemical, and biological phenomena and processes related to the design, growth, and application of crystalline materials. Synergistic approaches originating from different disciplines and technologies and integrating the fields of crystal growth, crystal engineering, intermolecular interactions, and industrial application are encouraged.
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