Literature DB >> 31823612

A Survival Guide for the "Electro-curious".

Cian Kingston1, Maximilian D Palkowitz1, Yusuke Takahira1, Julien C Vantourout1, Byron K Peters1, Yu Kawamata1, Phil S Baran1.   

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.

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Year:  2019        PMID: 31823612      PMCID: PMC6996934          DOI: 10.1021/acs.accounts.9b00539

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  32 in total

1.  Synthetic Organic Electrochemical Methods Since 2000: On the Verge of a Renaissance.

Authors:  Ming Yan; Yu Kawamata; Phil S Baran
Journal:  Chem Rev       Date:  2017-10-09       Impact factor: 60.622

Review 2.  Synthetic Organic Electrochemistry: Calling All Engineers.

Authors:  Ming Yan; Yu Kawamata; Phil S Baran
Journal:  Angew Chem Int Ed Engl       Date:  2017-11-03       Impact factor: 15.336

3.  A High-Performance Li-O2 Battery with a Strongly Solvating Hexamethylphosphoramide Electrolyte and a LiPON-Protected Lithium Anode.

Authors:  Bin Zhou; Limin Guo; Yantao Zhang; Jiawei Wang; Lipo Ma; Wen-Hua Zhang; Zhengwen Fu; Zhangquan Peng
Journal:  Adv Mater       Date:  2017-06-06       Impact factor: 30.849

4.  Radical Retrosynthesis.

Authors:  Joel M Smith; Stephen J Harwood; Phil S Baran
Journal:  Acc Chem Res       Date:  2018-08-02       Impact factor: 22.384

5.  Chemoselectivity: the mother of invention in total synthesis.

Authors:  Ryan A Shenvi; Daniel P O'Malley; Phil S Baran
Journal:  Acc Chem Res       Date:  2009-04-21       Impact factor: 22.384

Review 6.  The Shono-type electroorganic oxidation of unfunctionalised amides. Carbon-carbon bond formation via electrogenerated N-acyliminium ions.

Authors:  Alan M Jones; Craig E Banks
Journal:  Beilstein J Org Chem       Date:  2014-12-18       Impact factor: 2.883

7.  Ni-Catalyzed Electrochemical Decarboxylative C-C Couplings in Batch and Continuous Flow.

Authors:  Hui Li; Christopher P Breen; Hyowon Seo; Timothy F Jamison; Yuan-Qing Fang; Matthew M Bio
Journal:  Org Lett       Date:  2018-02-12       Impact factor: 6.005

Review 8.  Electrifying Organic Synthesis.

Authors:  Anton Wiebe; Tile Gieshoff; Sabine Möhle; Eduardo Rodrigo; Michael Zirbes; Siegfried R Waldvogel
Journal:  Angew Chem Int Ed Engl       Date:  2018-03-07       Impact factor: 15.336

9.  Divergent Synthesis of Pyrone Diterpenes via Radical Cross Coupling.

Authors:  Rohan R Merchant; Kevin M Oberg; Yutong Lin; Alexander J E Novak; Jakob Felding; Phil S Baran
Journal:  J Am Chem Soc       Date:  2018-06-11       Impact factor: 15.419

10.  The Fundamentals Behind the Use of Flow Reactors in Electrochemistry.

Authors:  Timothy Noël; Yiran Cao; Gabriele Laudadio
Journal:  Acc Chem Res       Date:  2019-10-01       Impact factor: 22.384

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  36 in total

Review 1.  Technological Innovations in Photochemistry for Organic Synthesis: Flow Chemistry, High-Throughput Experimentation, Scale-up, and Photoelectrochemistry.

Authors:  Laura Buglioni; Fabian Raymenants; Aidan Slattery; Stefan D A Zondag; Timothy Noël
Journal:  Chem Rev       Date:  2021-08-10       Impact factor: 60.622

2.  Monovalent Nickel-Mediated Radical Formation: A Concerted Halogen-Atom Dissociation Pathway Determined by Electroanalytical Studies.

Authors:  Qiao Lin; Yue Fu; Peng Liu; Tianning Diao
Journal:  J Am Chem Soc       Date:  2021-08-25       Impact factor: 15.419

3.  A radical way to forge carbon-carbon bonds.

Authors: 
Journal:  Nature       Date:  2022-06-01       Impact factor: 49.962

Review 4.  Photochemical and Electrochemical Applications of Proton-Coupled Electron Transfer in Organic Synthesis.

Authors:  Philip R D Murray; James H Cox; Nicholas D Chiappini; Casey B Roos; Elizabeth A McLoughlin; Benjamin G Hejna; Suong T Nguyen; Hunter H Ripberger; Jacob M Ganley; Elaine Tsui; Nick Y Shin; Brian Koronkiewicz; Guanqi Qiu; Robert R Knowles
Journal:  Chem Rev       Date:  2021-11-23       Impact factor: 60.622

5.  Electrochemical borylation of carboxylic acids.

Authors:  Lisa M Barton; Longrui Chen; Donna G Blackmond; Phil S Baran
Journal:  Proc Natl Acad Sci U S A       Date:  2021-08-24       Impact factor: 11.205

6.  Electroreductive Olefin-Ketone Coupling.

Authors:  Pengfei Hu; Byron K Peters; Christian A Malapit; Julien C Vantourout; Pan Wang; Jinjun Li; Lucas Mele; Pierre-Georges Echeverria; Shelley D Minteer; Phil S Baran
Journal:  J Am Chem Soc       Date:  2020-12-01       Impact factor: 15.419

7.  Electrosynthesis of 1,4-bis(diphenylphosphanyl) tetrasulfide via sulfur radical addition as cathode material for rechargeable lithium battery.

Authors:  Dan-Yang Wang; Yubing Si; Wei Guo; Yongzhu Fu
Journal:  Nat Commun       Date:  2021-05-28       Impact factor: 14.919

8.  "How Should I Think about Voltage? What Is Overpotential?": Establishing an Organic Chemistry Intuition for Electrochemistry.

Authors:  Jordan E Nutting; James B Gerken; Alexios G Stamoulis; David L Bruns; Shannon S Stahl
Journal:  J Org Chem       Date:  2021-10-05       Impact factor: 4.354

9.  Integrating hydrogen production with anodic selective oxidation of sulfides over a CoFe layered double hydroxide electrode.

Authors:  Lina Ma; Hua Zhou; Ming Xu; Peipei Hao; Xianggui Kong; Haohong Duan
Journal:  Chem Sci       Date:  2020-11-11       Impact factor: 9.825

Review 10.  Fragment-based drug discovery: opportunities for organic synthesis.

Authors:  Jeffrey D St Denis; Richard J Hall; Christopher W Murray; Tom D Heightman; David C Rees
Journal:  RSC Med Chem       Date:  2020-12-24
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