Electrochemistry in organics: a powerful tool for "green" synthesis

被引:21
作者
Budnikova, Yulia H. [1 ]
Dolengovski, Egor L. [1 ]
Tarasov, Maxim V. [1 ]
Gryaznova, Tatyana V. [1 ]
机构
[1] RAS, FRC Kazan Sci Ctr, Arbuzov Inst Organ & Phys Chem, Arbuzov Str 8, Kazan 420088, Russia
关键词
Electrochemistry; Electrosynthesis; Green chemistry; Electrocatalysis; Paired electrolysis; CONVERGENT PAIRED ELECTROLYSIS; H ACTIVATION; FUNCTIONALIZATION; ELECTROSYNTHESIS; CATALYSIS; FLUOROALKYLATION; PALLADIUM; ARYLATION; ACIDS; ARYL;
D O I
10.1007/s10008-023-05507-9
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Advances in electro-organic synthesis are associated with searching for new innovative synthetic approaches, especially those to synthesizing and functionalizing complex molecules for medicinal chemistry through functionalization and diversification at later stages, as well as with the desire to minimize waste and ensure energy efficient chemical transformations for future industrial processes. Organic chemistry is a branch of science possessing almost infinite possibilities of performing chemical reactions, identifying the mechanisms of complex processes, and generating active reagents, such as radicals, radical ions, and metals in various oxidation states, including unusual ones. In many cases, reasonably choosing an electrode potential and excluding any external oxidants or reductants allow controlling the process selectivity. In many cases, very large range of applicable electrode potentials makes electrochemistry capable of both oxidizing/reducing low-reactive molecules and fine-tuning the chemoselectivity of functional group conversions. Using mediators or catalysts, the active forms of which are generated on the electrodes and then react with the desired compounds within the solution volume, makes it possible to reduce the potential of electrolyses and increase the rates of processes. Currently, some new areas can be discerned in the organic electrosynthesis research, including the integration with well-developed and emerging process techniques, such as flow chemistry for scaling-up processes to increase efficiency and sustainability. In this review, some examples of synthetic organic electrochemistry are considered, which are based on the principles of green chemistry. They are of interest, in terms of developing and teaching the methodology of organic synthesis and electrosynthesis.
引用
收藏
页码:659 / 676
页数:18
相关论文
共 50 条
  • [31] Synthesis and Electrochemistry of Silver Hollandite
    Zhu, Shali
    Marschilok, Amy C.
    Lee, Chia-Ying
    Takeuchi, Esther S.
    Takeuchi, Kenneth J.
    ELECTROCHEMICAL AND SOLID STATE LETTERS, 2010, 13 (08) : A98 - A100
  • [32] Synthesis and (Spectro) electrochemistry of Ferrocenyl-Substituted Pyridine Derivatives
    Podolan, Gabriel
    Hettmanczyk, Lara
    Hommes, Paul
    Sarkar, Biprajit
    Reissig, Hans-Ulrich
    EUROPEAN JOURNAL OF ORGANIC CHEMISTRY, 2015, 2015 (33) : 7317 - 7323
  • [33] New Redox Strategies in Organic Synthesis by Means of Electrochemistry and Photochemistry
    Liu, Jinjian
    Lu, Lingxiang
    Wood, Devin
    Lin, Song
    ACS CENTRAL SCIENCE, 2020, 6 (08) : 1317 - 1340
  • [34] Green synthesis of zin tin oxide (ZnSnO3) nanoparticles using Aspalathus Linearis natural extracts: Structural, morphological, optical and electrochemistry study
    Mayedwa, Noluthando
    Mongwaketsi, Nametso
    Khamlich, Saleh
    Kaviyarasu, Kasinathan
    Matinise, Nolubabalo
    Maaza, Malik
    APPLIED SURFACE SCIENCE, 2018, 446 : 250 - 257
  • [35] Merging Photocatalysis with Electrochemistry: The Dawn of a new Alliance in Organic Synthesis
    Capaldo, Luca
    Quadri, Lorenzo L.
    Ravelli, Davide
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2019, 58 (49) : 17508 - 17510
  • [36] Recent advances in polyoxometalates based strategies for green synthesis of drugs
    Wang, Tengteng
    Ju, Yiming
    Cheng, Yao
    Wang, Haiyang
    Zang, Dejin
    CHINESE CHEMICAL LETTERS, 2025, 36 (05)
  • [37] Green Synthesis of Methyl Formate via Electrolysis of Pure Methanol
    Kishi, Ryoji
    Ogihara, Hitoshi
    Yoshida-Hirahara, Miru
    Shibanuma, Kazuya
    Yamanaka, Ichiro
    Kurokawa, Hideki
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2020, 8 (31) : 11532 - 11540
  • [38] Electrochemistry and green chemical processes: Electrochemical ozone production
    da Silva, LM
    Santana, MHP
    Boodts, JFC
    QUIMICA NOVA, 2003, 26 (06): : 880 - 888
  • [39] Greener and Sustainable Trends in Synthesis of Organics and Nanomaterials
    Varma, Rajender S.
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2016, 4 (11): : 5866 - 5878
  • [40] Green Chemistry in Organic Synthesis
    Deligeorgiev, T.
    Gadjev, N.
    Vasilev, A.
    Kaloyanova, St.
    Vaquero, J. J.
    Alvarez-Builla, J.
    MINI-REVIEWS IN ORGANIC CHEMISTRY, 2010, 7 (01) : 44 - 53