A Survival Guide for the “Electro-curious”

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Cian Kingston, Maximilian D. Palkowitz, Yusuke Takahira, Julien C. Vantourout, Byron K. Peters, Yu Kawamata, Phil S. Baran*
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引用次数: 262

Abstract

The appeal and promise of synthetic organic electrochemistry have been appreciated over the past century. In terms of redox chemistry, which is frequently encountered when forging new bonds, it is difficult to conceive of a more economical way to add or remove electrons than electrochemistry. Indeed, many of the largest industrial synthetic chemical processes are achieved in a practical way using electrons as a reagent. Why then, after so many years of the documented benefits of electrochemistry, is it not more widely embraced by mainstream practitioners? Erroneous perceptions that electrochemistry is a “black box” combined with a lack of intuitive and inexpensive standardized equipment likely contributed to this stagnation in interest within the synthetic organic community. This barrier to entry is magnified by the fact that many redox processes can already be accomplished using simple chemical reagents even if they are less atom-economic. Time has proven that sustainability and economics are not strong enough driving forces for the adoption of electrochemical techniques within the broader community. Indeed, like many synthetic organic chemists that have dabbled in this age-old technique, our first foray into this area was not by choice but rather through sheer necessity.

The unique reactivity benefits of this old redox-modulating technique must therefore be highlighted and leveraged in order to draw organic chemists into the field. Enabling new bonds to be forged with higher levels of chemo- and regioselectivity will likely accomplish this goal. In doing so, it is envisioned that widespread adoption of electrochemistry will go beyond supplanting unsustainable reagents in mundane redox reactions to the development of exciting reactivity paradigms that enable heretofore unimagined retrosynthetic pathways. Whereas the rigorous physical organic chemical principles of electroorganic synthesis have been reviewed elsewhere, it is often the case that such summaries leave out the pragmatic aspects of designing, optimizing, and scaling up preparative electrochemical reactions. Taken together, the task of setting up an electrochemical reaction, much less inventing a new one, can be vexing for even seasoned organic chemists. This Account therefore features a unique format that focuses on addressing this exact issue within the context of our own studies. The graphically rich presentation style pinpoints basic concepts, typical challenges, and key insights for those “electro-curious” chemists who seek to rapidly explore the power of electrochemistry in their research.

Abstract Image

“电好奇心”的生存指南
在过去的一个世纪里,合成有机电化学的吸引力和前景已经得到了充分的认识。就氧化还原化学而言,它在锻造新键时经常遇到,很难想象一种比电化学更经济的方式来添加或去除电子。事实上,许多规模最大的工业合成化学过程都是以电子作为试剂的实用方式实现的。那么,在记录了这么多年电化学的好处之后,为什么它没有被主流从业者更广泛地接受呢?错误地认为电化学是一个“黑盒子”,加上缺乏直观和廉价的标准化设备,可能导致对合成有机社区的兴趣停滞不前。许多氧化还原过程已经可以用简单的化学试剂完成,即使它们的原子经济性较低,这一事实也放大了这种进入壁垒。时间已经证明,可持续性和经济性不足以推动电化学技术在更广泛的社区中得到应用。的确,就像许多涉足这一古老技术的合成有机化学家一样,我们第一次涉足这一领域并非出于选择,而是完全出于需要。因此,必须强调和利用这种古老的氧化还原调节技术的独特反应性优势,以吸引有机化学家进入该领域。用更高水平的化学选择性和区域选择性来建立新的化学键可能会实现这一目标。在这样做的过程中,可以设想电化学的广泛采用将超越在普通氧化还原反应中取代不可持续的试剂,以发展令人兴奋的反应性范式,从而实现迄今为止无法想象的反合成途径。尽管电有机合成的严格的物理有机化学原理已经在其他地方进行了回顾,但通常情况下,这些总结忽略了设计、优化和扩大制备电化学反应的实用方面。综上所述,即使是经验丰富的有机化学家,建立一种电化学反应的任务也会让人烦恼,更不用说发明一种新反应了。因此,本帐户具有独特的格式,侧重于在我们自己的研究背景下解决这个确切的问题。图形丰富的演示风格精确指出了基本概念,典型的挑战,以及那些“电好奇”的化学家的关键见解,他们寻求在他们的研究中快速探索电化学的力量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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