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一种用于绿色一锅法合成四氢苯并[b]吡喃的新型可回收水解纳米磁性共聚物催化剂。

A novel recyclable hydrolyzed nanomagnetic copolymer catalyst for green, and one-pot synthesis of tetrahydrobenzo[b]pyrans.

作者信息

Maleki Behrooz, Ashrafi Samaneh Sedigh, Kargar Pouya Ghamari, Alipour Azita, Pahnavar Zohreh, Ebrahimzadeh Pegah

机构信息

Department of Organic Chemistry, Faculty of Chemistry, University of Mazandaran, Babolsar, Iran.

出版信息

Sci Rep. 2024 Dec 28;14(1):30940. doi: 10.1038/s41598-024-81647-w.

Abstract

Polymer-based catalysts have garnered significant interest for their efficiency, reusability, and compatibility with various synthesis processes. In catalytic applications, polymers offer the advantage of structural versatility, enabling functional groups to be tailored for specific catalytic activities. In this study, we developed a novel magnetic copolymer of methyl methacrylate and maleic anhydride (PMMAn), synthesized via in situ chemical polymerization of methyl methacrylate onto maleic anhydride, using benzoyl peroxide as a free-radical initiator. This polymerization process results in a robust copolymer matrix, which was subsequently hydrolyzed in an alkaline aqueous solution to introduce additional functional groups, yielding hydrolyzed PMMAn. These functional groups enhance the copolymer's ability to support the deposition of magnetic nanoparticles and participate in catalytic reactions. Following hydrolysis, we fabricated a unique magnetic composite, FeO@Hydrol-PMMAn, by in situ coprecipitating FeO nanoparticles onto the hydrolyzed copolymer, creating a stable nanocatalyst. The structural and magnetic properties of FeO@Hydrol-PMMAn were thoroughly analyzed using FTIR, XRD, SEM, EDX, VSM, and TGA. The FeO@Hydrol-PMMAn nanocatalyst demonstrated remarkable catalytic performance in synthesizing tetrahydrobenzo[b]pyran derivatives through a three-component reaction, conducted without solvents to support green chemistry principles. A series of reaction parameters were optimized, including solvent choice, catalyst loading, and recyclability. The catalyst performed efficiently across a broad range of aldehydes, delivering high product yields (81-96%) with rapid reaction times (5-30 min) at a low catalyst loading of 0.015 g. A hot filtration test confirmed the heterogeneous nature of the nanocatalyst, which could be recycled up to four cycles with minimal loss in activity. The high yield, short reaction time, solvent-free conditions, and excellent reusability make FeO@Hydrol-PMMAn a promising catalyst. These findings underscore its potential for converting waste products into valuable compounds, highlighting its utility in organic transformations and sustainable synthesis practices. Collectively, this work demonstrates that FeO@Hydrol-PMMAn is highly effective for organic compound synthesis, advancing the development of versatile, sustainable nanocatalysts.

摘要

基于聚合物的催化剂因其效率、可重复使用性以及与各种合成过程的兼容性而备受关注。在催化应用中,聚合物具有结构多样性的优势,能够针对特定的催化活性对官能团进行定制。在本研究中,我们通过以过氧化苯甲酰作为自由基引发剂,将甲基丙烯酸甲酯原位化学聚合到马来酸酐上,制备了一种新型的甲基丙烯酸甲酯与马来酸酐的磁性共聚物(PMMAn)。该聚合过程形成了一种坚固的共聚物基体,随后将其在碱性水溶液中水解以引入额外的官能团,得到水解后的PMMAn。这些官能团增强了共聚物支持磁性纳米颗粒沉积并参与催化反应的能力。水解后,我们通过将FeO纳米颗粒原位共沉淀到水解后的共聚物上,制备了一种独特的磁性复合材料FeO@Hydrol-PMMAn,从而得到一种稳定的纳米催化剂。使用傅里叶变换红外光谱(FTIR)、X射线衍射(XRD)、扫描电子显微镜(SEM)、能谱分析(EDX)、振动样品磁强计(VSM)和热重分析(TGA)对FeO@Hydrol-PMMAn的结构和磁性进行了全面分析。FeO@Hydrol-PMMAn纳米催化剂在通过无溶剂的三组分反应合成四氢苯并[b]吡喃衍生物的过程中表现出卓越的催化性能,符合绿色化学原则。对一系列反应参数进行了优化,包括溶剂选择、催化剂负载量和可回收性。该催化剂在多种醛类底物上均能高效发挥作用,在0.015 g的低催化剂负载量下,反应时间短(5 - 30分钟),产物收率高(81 - 96%)。热过滤试验证实了该纳米催化剂的非均相性质,其可循环使用多达四个周期,活性损失极小。高产率、短反应时间、无溶剂条件以及出色的可重复使用性使得FeO@Hydrol-PMMAn成为一种有前景的催化剂。这些发现突出了其将废品转化为有价值化合物的潜力,彰显了其在有机转化和可持续合成实践中的实用性。总体而言,这项工作表明FeO@Hydrol-PMMAn在有机化合物合成方面非常有效,推动了多功能、可持续纳米催化剂的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf5/11680866/a0a1b22b57d4/41598_2024_81647_Sch1_HTML.jpg

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