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利用模块化流动化学加速环状磷酸酯单体的端到端生产。

Accelerating the end-to-end production of cyclic phosphate monomers with modular flow chemistry.

作者信息

Morodo Romain, Riva Raphaël, van den Akker Nynke M S, Molin Daniel G M, Jérôme Christine, Monbaliu Jean-Christophe M

机构信息

Center for Integrated Technology and Organic Synthesis, MolSys Research Unit, University of Liège B-4000 Liège Sart Tilman Belgium

Center for Education and Research on Macromolecules, Cesam Research Unit, University of Liège B-4000 Liège Sart Tilman Belgium.

出版信息

Chem Sci. 2022 Jul 30;13(36):10699-10706. doi: 10.1039/d2sc02891c. eCollection 2022 Sep 21.

Abstract

The biocompatibility, tunable degradability and broad functionalities of polyphosphoesters and their potential for biomedical applications have stimulated a renewed interest from Chemistry, Medicinal Chemistry and Polymer Sciences. Commercial applications of polyphosphoesters as biomaterials are still hampered because of the time and resource-intensive sourcing of their corresponding monomers, in addition to the corrosive and sensitive nature of their intermediates and by-products. Here, we present a groundbreaking challenge for sourcing the corresponding cyclic phosphate monomers by a different approach. This approach relies on the use of continuous flow technologies to intensify the end-to-end preparation of cyclic phosphate monomers with a semi-continuous modular flow platform. The applied flow technology mitigates both safety and instability issues related to the more classical production of cyclic phosphate monomers. The first flow module allows safe synthesis of a library of cyclic chlorophosphite building blocks and features in-line P NMR real-time monitoring. After optimization on the microfluidic scale, this first module is successfully transposed toward mesofluidic scale with a daily throughput of 1.88 kg. Downstream of the first module, a second module is present, allowing the quantitative conversion of cyclic chlorophosphites with molecular oxygen toward chlorophosphate derivatives within seconds. The two modules are concatenable with a downstream semi-batch quench of intermediate chlorophosphate with alcohols, hence affording the corresponding cyclic phosphate monomers. Such a continuous flow setup provides considerable unprecedented advantages to safely and efficiently synthesize a library of versatile high value-added cyclic phosphate monomers at large scale. These freshly produced monomers can be successfully (co)polymerized, using either batch or flow protocols, into well-defined polyphosphoesters with assessed thermal properties and cytotoxicity.

摘要

聚磷酸酯的生物相容性、可调节的降解性、广泛的功能及其在生物医学应用中的潜力,激发了化学、药物化学和高分子科学领域新的研究兴趣。聚磷酸酯作为生物材料的商业应用仍受到阻碍,这是因为其相应单体的获取需要耗费大量时间和资源,此外其中间体和副产物具有腐蚀性且性质不稳定。在此,我们提出了一种通过不同方法获取相应环状磷酸酯单体的开创性挑战。这种方法依赖于使用连续流动技术,通过一个半连续模块化流动平台强化环状磷酸酯单体的端到端制备。所应用的流动技术减轻了与传统环状磷酸酯单体生产相关的安全和稳定性问题。第一个流动模块能够安全地合成一系列环状亚磷酸氯构建块,并具备在线磷核磁共振实时监测功能。在微流控规模上进行优化后,该第一个模块成功转化为中流控规模,日产量为1.88千克。在第一个模块的下游,存在第二个模块,它能在数秒内将环状亚磷酸氯与分子氧定量转化为氯代磷酸酯衍生物。这两个模块可与下游用醇对中间氯代磷酸酯进行半间歇淬灭相连接,从而得到相应的环状磷酸酯单体。这样的连续流动装置为安全、高效地大规模合成一系列通用的高附加值环状磷酸酯单体提供了相当多前所未有的优势。这些新生产的单体可以使用间歇或流动方案成功地(共)聚合成具有评估热性能和细胞毒性的明确聚磷酸酯。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/65bd/9491087/28f0324d88fb/d2sc02891c-f1.jpg

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