带耦合光纤的可持续先进 LED 植入式微流控光反应器可实现高效光催化合成和在线反应进展监测

IF 3.7 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Gyanendra Chaudhary, Amar Dhwaj, Aman Verma, Priyanka Kumari, Kanhaya Lal, Deepti Verma* and Amit Prabhakar*, 
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引用次数: 0

摘要

光诱导合成苯并咪唑的传统方法可能需要进一步改进,以建立更安全、更节能的合成平台,并进行过程监控,从而在更短的反应时间内获得最高产率。本研究介绍了一种新型光流控芯片实验室技术,该技术可用于更安全、节能、快速地合成苯并咪唑衍生物,产量极高,并可在产品形成过程中进行实时定量测量。这种创新方法是在嵌入 LED 的微流控反应器中进行合成,利用玫瑰红/荧光素光催化剂,通过芳基醛和邻苯二胺的光诱导缩合环化反应快速合成苯并咪唑衍生物。与批量反应(2-3 小时)相比,该方法能在更短的时间内(10 分钟)获得良好甚至极佳的产率(85-94%)。反应监测微流控装置与微流控反应器(微反应器)单元精确连接,成功地避免了光源的干扰,确保了对生成的苯并咪唑衍生物进行一致的紫外可见光谱观测。这种嵌入 LED 的微流控装置具有光诱导合成能力和实时光谱分析能力,是有机合成领域的一项重大突破。所提出的方法最大限度地降低了事故发生的可能性,避免了化学品的浪费,最大限度地提高了原子经济性,并设计了一条节能的合成路线,同时还能对过程进行实时监控。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sustainable and Advanced LED-Implanted Microfluidic Photoreactor with Coupled Optical Fiber Enabling Efficient Photocatalytic Synthesis Beside Online Reaction Progress Monitoring

The conventional methods for the photoinduced synthesis of benzimidazoles may need further improvement regarding a safer and energy-efficient synthesis platform with in-process monitoring for maximum yield within a much reduced reaction time. This work describes the use of a novel optofluidic Lab-on-a-Chip technology for safer, energy-efficient, and expedited synthesis of benzimidazole derivatives in excellent yields along with real-time quantitative measurement during product formation. This innovative method involves synthesis within LED-embedded microfluidic reactors, allowing for rapid synthesis of benzimidazole derivatives via photoinduced condensation cyclization reactions of aryl aldehydes and o-phenylenediamines using a Rose Bengal/fluorescein photocatalyst. It results in good to excellent yields (85–94%) in a notably shorter period of time (10 min) as compared to that for the batch protocol reaction (2–3 h). The incorporation of a reaction-monitoring microfluidic device precisely connected to the microfluidic reactor (microreactor) unit successfully avoids interference from light sources, ensuring consistent UV–vis spectroscopic observations of the produced benzimidazole derivatives. This LED-embedded microfluidic device’s capability of photoinduced synthesis, along with real-time spectroscopic analysis, represents a promising breakthrough in organic synthesis. The proposed approach minimizes the potential for accidents, prevents waste of chemicals, maximizes atom economy, and designs an energy-efficient synthesis route, along with real-time in-process monitoring.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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