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Developing Continuous Electroorganic Catalysis - It's Got Potential

Developing Continuous Electroorganic Catalysis - It's Got Potential
开发连续有机电催化——它有潜力
批准号:
EP/R006504/1
负责人:
Louis Morrill
金额:
$50.45万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2017
资助国家:
英国
项目状态:
已结题
起止时间:
2017 至 --

项目摘要

项目成果

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中文摘要
翻译
电与化学反应的结合有着悠久的历史。使用电流中的单个电子来触发化学反应的能力是一个令人兴奋的概念,特别是从可持续性的角度来看。电子是最干净的化学试剂之一(即使用它们不会产生废物),光子代表互补的替代品。因此,令人惊讶的是,有机化学,化学的分支,涉及为社会创造分子,如药物,作物保护剂,染料,颜料,香料,香料和聚合物,在发现和制造阶段都不经常使用这种电化学方法。这种缺乏采用的关键原因之一是,通常所施加的电流或电子的能量没有适当地调整到反应系统。这可能导致不期望的反应和不纯的反应曲线。然而,最近在该领域有一些开拓性的发展,可能会扩大这种电有机化学的应用。发展是双重的,涉及化学和反应器设计。1)关于化学,现在存在几个例子,其中复杂的反应过程可以通过适当选择电解质和仔细规划化学反应物来触发。此外,最近已经证明,催化系统可以通过电子的输入来维持,这样的过程产生了复杂和有趣的分子,这种分子可以在"社会分子“中发挥作用。连续流动化学的发展与进展(在管道和管道回路中而不是烧杯和烧瓶中的化学)已经允许降低电流并因此允许在反应过程中形成更敏感的“手术切口”,从而减少不希望的反应和产生不纯反应曲线的倾向。这个提议看起来在被称为有机催化的催化领域中起作用,其中少量的有机分子用于加速反应速率(这与基于贵金属的系统相反)。在这里,电化学方法将有助于维持和维持催化循环。值得注意的是,在这种类型的所有其他有机催化方法中,需要等量的加成化学品来保持催化活性。这种化学品本质上是纯粹的牺牲品,因此非常浪费。来自英国的初步研究已经表明,有机催化反应可以使用电化学方法来维持。本提案旨在使这一意见的适用范围大大多样化。有机催化、电化学和连续流方法的结合将有助于增强我们用于提供这些工业上有用的反应的工艺的可持续性。
英文摘要
The combination of electricity with chemical reactions has a long history. The ability to use a single electron from an electric current in order to trigger a chemical reaction is an exciting concept, especially from the perspective of sustainability. Electrons are one of the cleanest possible chemical reagents (i.e. there is no waste generated from their use) with photons of light representing a complementary alternative. It is surprising therefore that organic chemistry, the branch of chemistry involved with creating molecules for society, such as pharmaceuticals, crop-protection agents, dyes, pigments, flavours, fragrances and polymers does not often use such electro-chemical methods at both the discovery and manufacture stages. One of the key reasons for this lack of adoption is that often the applied current, or the energy of the electron, is not properly tuned to the reaction system. This can lead to undesired reactions and impure reaction profiles. However, there have been some recent pioneering developments in the field that may permit broadening of the application of this electro-organic chemistry. The developments are two-fold and concern the chemistry and the reactor design.1) With regards to the chemistry, several examples now exist where complex reaction processes can be triggered by appropriate choice of electrolyte and careful planning of the chemical reactants. Furthermore, it has recently been proven that catalytic systems can be sustained by the input of electrons, with such processes giving rise to complex and interesting molecules of the kind that could feature in 'molecules for society'.2) With regards to the reactor design, the development and advancement of continuous flow chemistry (chemistry in pipes and tubing circuits rather than beakers and flasks) has permitted the lowering of the electric current and thus allows more sensitive 'surgical incisions' to be made in the reaction process, thus reducing the undesired reactions and propensity to yield impure reaction profiles. This proposal looks to work in an area of catalysis known as organo-catalysis, where a small amount of an organic molecule is used to accelerate the rate of reactions (this is in contrast to a precious metal-based system). Here the electro-chemistry approach will help to sustain and maintain the catalytic cycle. Notably, in all other organo-catalytic processes of this type an equal amount of an addition chemical is needed to maintain the catalytic activity. This chemical is purely sacrificial in nature and is thus extremely wasteful. A preliminary hit from the UK has already demonstrated that organo-catalytic reactions can be sustained using electro-chemical methods. This proposal aims to greatly diversify the application of this observation. The combination of an organo-catalytic, electro-chemical and continuous flow approach will serve to amplify the sustainability of the processes that we use to deliver these industrially useful reactions.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
Ball-Milling-Enabled Reactivity of Manganese Metal**
锰金属的球磨反应活性**
DOI: 10.1002/ange.202108752
发表时间: 2021
期刊: Angewandte Chemie
影响因子: --
作者: [Nicholson W]
通讯作者: Nicholson W
DOI: 10.26434/chemrxiv.9275441.v1
发表时间: 2019-08
期刊: Organic Letters
影响因子: 5.2
作者: [Benjamin D W Allen;Mishra Deepak Hareram;Alex C Seastram;T. McBride;T. Wirth;D. Browne;Louis C. Morrill-Loui]
通讯作者: Benjamin D W Allen;Mishra Deepak Hareram;Alex C Seastram;T. McBride;T. Wirth;D. Browne;Louis C. Morrill-Loui
Ball Milling Enabled Reactivity of Manganese Metal
球磨使锰金属具有反应性
DOI: 10.33774/chemrxiv-2021-s7r6b
发表时间: 2021
期刊:
影响因子: --
作者: [Browne D]
通讯作者: Browne D
DOI: 10.1002/anie.202108752
发表时间: 2021-10-18
期刊: Angewandte Chemie (International ed. in English)
影响因子: --
作者: [Nicholson WI, Howard JL, Magri G, Seastram AC, Khan A, Bolt RRA, Morrill LC, Richards E, Browne DL]
通讯作者: Browne DL
共 6 条
    Harnessing the Potential of Alkoxy Radicals
    • 批准号:
      EP/Z001021/1
    • 项目类别:
      Fellowship
    • 资助金额:
      $26.26万
    • 财政年份:
      2024
    • 负责人:
      Louis Morrill
    • 依托单位:
    海外基金