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The Synthesis of Solid Supported Palladium Nanoparticles: Effective Catalysts for Batch and Continuous Cross Coupling Reactions

机译:固体负载钯纳米粒子的合成:间歇和连续交叉偶联反应的有效催化剂

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摘要

Catalysis is one of the pillars of the chemical industry. While the use of catalyst is typically recognized in the automobile industry, their impact is more widespread as; catalysts are used in the synthesis of 80% of the US commercial chemicals. Despite the improved selectivity provided by catalyst, process inefficiencies still threaten the sustainability of a number of synthesis methods, especially in the pharmaceutical industry. Recyclable solid supported catalysts offer a unique opportunity to address these inefficiencies. Such systems coupled with continuous synthesis techniques, have the potential to significantly reduce the waste to desired product ratio (E-factor) of the production techniques. This research focuses developing sustainable processes to synthesize organic molecules by using continuous synthesis methods. In doing so, solid supported metal catalyst systems were identified, developed, and implemented to assist in the formation of carbon-carbon bonds. Newly developed systems, which utilized metal nanoparticles, showed reactivity and recyclability, comparable to commercially available catalyst.Nanoparticles are emerging as useful materials in a wide variety of applications including catalysis. These applications include pharmaceutical processes by which complex and useful organic molecules can be prepared. As such, an effective and scalable synthesis method is required for the preparation of nanoparticle catalysts with significant control of the particle size, uniform dispersion, and even distribution of nanoparticles when deposited on the surface of a solid support. This project describes the production of palladium nanoparticles on a variety of solid supports and the evaluation of these nanoparticles for cross coupling reactions.This report highlights novel synthesis techniques used in the formation of palladium nanoparticles using traditional batch reactions. The procedures developed for the batch formation of palladium nanoparticles on different solid supports, such as graphene and carbon nanotubes, are initially described. The major drawbacks of these methods are discussed, including limited scalability, variation of nanoparticle characteristics from batch to batch, and technical challenges associated with efficient heating of samples.Furthermore, the necessary conditions and critical parameters to convert the batch synthesis of solid supported palladium nanoparticles to a continuous flow process are presented. This strategy not only alleviates the challenges associated with the robust preparation of the material and the limitations of scalability, but also showcases a new continuous reactor capable of efficient and direct heating of the reaction mixture under microwave irradiation. This strategy was further used in the synthesis of zinc oxide nanoparticles. Particles synthesized using this strategy as well as traditional synthesis methods, were evaluated in the context industrially relevant applications.
机译:催化是化学工业的支柱之一。尽管催化剂的使用在汽车行业中是公认的,但它们的影响更为广泛。催化剂用于合成80%的美国商业化学品。尽管催化剂提供了更高的选择性,但工艺效率低下仍然威胁着许多合成方法的可持续性,特别是在制药工业中。可回收的固体负载型催化剂提供了解决这些低效率问题的独特机会。这样的系统与连续合成技术相结合,具有将废物显着减少到生产技术所需的产品比率(E因子)的潜力。这项研究的重点是通过使用连续合成方法来开发可持续过程以合成有机分子。这样做,可以识别,开发和实施固体负载金属催化剂体系,以帮助形成碳-碳键。与金属催化剂相比,利用金属纳米粒子的新开发的系统显示出反应性和可回收性。纳米粒子在包括催化在内的各种应用中正在作为有用的材料出现。这些应用包括制药过程,通过该过程可以制备复杂而有用的有机分子。因此,需要有效且可扩展的合成方法来制备纳米粒子催化剂,当沉积在固体载体表面上时,该纳米粒子催化剂具有对纳米粒子的粒径,均匀分散和均匀分布的显着控制。该项目描述了在各种固体载体上钯纳米颗粒的生产以及对这些纳米颗粒进行交叉偶联反应的评估。该报告重点介绍了使用传统的间歇反应形成钯纳米颗粒的新型合成技术。首先描述了为在不同的固体载体(例如石墨烯和碳纳米管)上分批形成钯纳米颗粒而开发的程序。讨论了这些方法的主要缺点,包括有限的可扩展性,不同批次之间纳米颗粒特性的变化以及与有效加热样品相关的技术挑战,此外,转换固体负载钯纳米颗粒的批次合成的必要条件和关键参数介绍了一个连续的流程。该策略不仅减轻了材料稳健制备带来的挑战和可扩展性的局限性,而且展示了一种新型的连续反应器,该反应器能够在微波辐射下高效,直接地加热反应混合物。该策略被进一步用于氧化锌纳米颗粒的合成。在工业相关应用的背景下,评估了使用这种策略以及传统合成方法合成的颗粒。

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    Brinkley Kendra W;

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  • 年度 2015
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