Iodonium imides in organic synthesis; ARKIVOC; Vol. 2019, iss. part i
| Parent link: | ARKIVOC Vol. 2019, iss. part i.— 2019.— [P. 228-255] |
|---|---|
| Hlavní autor: | Yoshimura A. Akira |
| Korporace: | Национальный исследовательский Томский политехнический университет Исследовательская школа химических и биомедицинских технологий, Национальный исследовательский Томский политехнический университет Исследовательская школа химических и биомедицинских технологий Научно-исследовательский центр "Онкотераностика" |
| Další autoři: | Yusubov M. S. Mekhman Suleiman-Ogly (Suleimanovich), Zhdankin V. V. Viktor Vladimirovich |
| Shrnutí: | Title screen Iodonium imides (ArINR) represent an important class of hypervalent iodine(III) compounds recently emergingas versatile, efficient and environmentally friendly synthetic reagents with numerous applications in academicand industrial research. Iodonium imides, which are also known as iminoiodanes, are widely used in organicsynthesis as common nitrene precursors in the aziridination of alkenes and the amidation reactions of variousorganic substrates. In the present review, the preparation and structural features of iminoiodanes arediscussed, and recent developments in their synthetic applications are summarized. |
| Jazyk: | angličtina |
| Vydáno: |
2019
|
| Témata: | |
| On-line přístup: | https://doi.org/10.24820/ark.5550190.p010.975 |
| Médium: | Elektronický zdroj Kapitola |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=662835 |
Podobné jednotky
Iodonium ylides in organic synthesis; ARKIVOC; Vol. 2016
Autor: Yusubov M. S. Mekhman Suleiman-Ogly (Suleimanovich)
Vydáno: (2016)
Autor: Yusubov M. S. Mekhman Suleiman-Ogly (Suleimanovich)
Vydáno: (2016)
Iodonium Salts as Benzyne Precursors; Chemistry - A European Journal; Vol. 24, iss. 57
Autor: Yoshimura A. Akira
Vydáno: (2018)
Autor: Yoshimura A. Akira
Vydáno: (2018)
Flow Synthesis of Iodonium Trifluoroacetates through Direct Oxidation of Iodoarenes by Oxone®; European Journal of Organic Chemistry; Vol. 2019, iss. 10
Vydáno: (2019)
Vydáno: (2019)
Synthetic applications of pseudocyclic hypervalent iodine compounds; Organic and Biomolecular Chemistry; Vol. 14
Autor: Yoshimura A. Akira
Vydáno: (2016)
Autor: Yoshimura A. Akira
Vydáno: (2016)
Synthesis of arylbenziodoxoles using pseudocyclic benziodoxole triflate and arenes; Arkivoc; Vol. 2020, Part (iv) : Special Issue 'Hypervalent Iodine Chemistry, part 1'
Vydáno: (2020)
Vydáno: (2020)
Synthesis of 2-fluorobenzoic acids by nucleophilic fluorination of 1-arylbenziodoxolones; Arkivoc; Vol. 2022, Part (vii) : Special Issue 'Hypervalent Iodine Chemistry, part 3
Vydáno: (2022)
Vydáno: (2022)
Synthesis of Five-Membered Iodine–Nitrogen Heterocycles from Benzimidazole-Based Iodonium Salts; Journal of Organic Chemistry (JOC); Vol. 83, iss. 19
Vydáno: (2018)
Vydáno: (2018)
Preparation, structure, and oxidative reactivity of (dichloroiodo)pyridines: recyclable hypervalent iodine reagents; ARKIVOC; Vol. 2018, iss. part ii
Vydáno: (2018)
Vydáno: (2018)
Zwitterionic iodonium species afford halogen bond-based porous organic frameworks; Chemical Science; Vol. 13, iss. 19
Vydáno: (2022)
Vydáno: (2022)
Advanced Organic Chemistry; Part B: Reactions and Synthesis
Autor: Carey F. A. Francis A.
Vydáno: (New York, Springer, 2001)
Autor: Carey F. A. Francis A.
Vydáno: (New York, Springer, 2001)
Preparation and Synthetic Applicability of Imidazole-Containing Cyclic Iodonium Salts; Journal of Organic Chemistry (JOC); Vol. 86, iss. 10
Vydáno: (2021)
Vydáno: (2021)
Oxidative Cycloaddition of Aldoximes with Maleimides using Catalytic Hydroxy(aryl)iodonium Species; Advanced Synthesis and Catalysis; Vol. 358, iss. 14
Vydáno: (2016)
Vydáno: (2016)
Facile and convenient method for synthesis of aryl- and heteroaryl iodonium salts; Современные проблемы органической химии
Vydáno: (2017)
Vydáno: (2017)
Preparation, X-ray Structure, and Reactivity of Triisopropylsilyl-Substituted Aryliodonium Salts; European Journal of Organic Chemistry; Vol. 2015, iss. 22
Vydáno: (2015)
Vydáno: (2015)
Formaldehyde Synthesis Over Foam Metal Catalysts; Current Organic Synthesis; Vol. 14, iss. 3
Autor: Pestryakov A. N. Aleksey Nikolaevich
Vydáno: (2017)
Autor: Pestryakov A. N. Aleksey Nikolaevich
Vydáno: (2017)
Can Plasmon Change Reaction Path? Decomposition of Unsymmetrical Iodonium Salts as an Organic Probe; Journal of Physical Chemistry Letters; Vol. 11, iss. 14
Vydáno: (2020)
Vydáno: (2020)
Strategic Synthesis and Supramolecular Organization of Arylenebis(aryliodonium) Salts; Journal of Organic Chemistry; Vol. 90, iss.44
Vydáno: (2025)
Vydáno: (2025)
Increasing the Selectivity of Synthesis Stages for Linear Alkyl Benzenes; Current Organic Synthesis; Vol. 14, iss. 3
Vydáno: (2017)
Vydáno: (2017)
Electrochemical oxidation of aryliodides as effective approach for generation of iodonium ylides; Mendeleev 2021
Autor: Vlasenko Yu. A. Yuliya Aleksandrovna
Vydáno: (2021)
Autor: Vlasenko Yu. A. Yuliya Aleksandrovna
Vydáno: (2021)
The Branched C5-C6 Hydrocarbons Synthesis on Pt-Catalyst; Current Organic Synthesis; Vol. 14, iss. 3
Vydáno: (2017)
Vydáno: (2017)
General and Simple Method for the Synthesis of 3-nitroformazan Using Arenediazonium Tosylates; Current Organic Synthesis; Vol. 13, iss. 4
Vydáno: (2016)
Vydáno: (2016)
Reagents for Organic Synthesis; Vol. 14
Autor: Fieser M. Mary
Vydáno: (New York, John Wiley & Sons, Inc., 1989)
Autor: Fieser M. Mary
Vydáno: (New York, John Wiley & Sons, Inc., 1989)
Reagents for Organic Synthesis; Vol. 15
Autor: Fieser M. Mary
Vydáno: (New York, Wiley, 1990)
Autor: Fieser M. Mary
Vydáno: (New York, Wiley, 1990)
Synthesis, Structure, and Synthetic Potential of Arenediazonium Trifluoromethanesulfonates as Stable and Safe Diazonium Salts; European Journal of Organic Chemistry; Vol. 2019, iss. 4
Vydáno: (2019)
Vydáno: (2019)
Geochemical conditions and organic synthesis of coal and kerogens; Coke and Chemistry; Vol. 58, iss. 6
Autor: Ivanov V. P. Vladimir Petrovich
Vydáno: (2015)
Autor: Ivanov V. P. Vladimir Petrovich
Vydáno: (2015)
Ligand Constraints and Synthesis of Metal–Organic Polyhedra; Australian Journal of Chemistry; Vol. 68, iss. 5
Autor: Vardhan H. Harsh
Vydáno: (2015)
Autor: Vardhan H. Harsh
Vydáno: (2015)
Metal-Organic Polyhedra: Catalysis and Reactive Intermediates; Advanced Synthesis and Catalysis; Vol. 357, iss. 7
Autor: Vardhan H. Harsh
Vydáno: (2015)
Autor: Vardhan H. Harsh
Vydáno: (2015)
Hypervalent iodine in the structure of N-heterocycles: synthesis, structure, and application in organic synthesis; Chemistry of Heterocyclic Compounds; Vol. 56, iss. 7
Vydáno: (2020)
Vydáno: (2020)
Synthesis and properties of nanocrystalline CsI; Inorganic Materials; Vol. 47, iss. 9
Vydáno: (2011)
Vydáno: (2011)
Silicon reagents for organic synthesis
Autor: Weber W. P. William P.
Vydáno: (Berlin, Springer-Verlag, 1983)
Autor: Weber W. P. William P.
Vydáno: (Berlin, Springer-Verlag, 1983)
Plasmon-Assisted Activation and Grafting by Iodonium Salt: Functionalization of Optical Fiber Surface; Advanced Materials Interfaces; Vol. 5, iss. 20
Vydáno: (2018)
Vydáno: (2018)
Zwitterionic iodonium salts as tectons for design of halogen bonded organic frameworks (XOFs); Химия и химическая технология в XXI веке; Т. 2
Autor: Soldatova N. S. Nataliya Sergeevna
Vydáno: (2021)
Autor: Soldatova N. S. Nataliya Sergeevna
Vydáno: (2021)
Studying Patterns of Synthesis of Low Freezing Distillates from Atmospheric Gasoil by Means of Mathematical Modelling; Current Organic Synthesis; Vol. 14, iss. 3
Vydáno: (2017)
Vydáno: (2017)
Preparation, structure, and reactivity of ortho-hydroxy-substituted aryliodonium salts, precursors to ortho-iodo-substituted diaryl ethers; Arkivoc; Vol. 4
Vydáno: (2025)
Vydáno: (2025)
Mechanochemical Activation of the Reaction of Tetraacetylglycoluril with Some Cyclic Primary Amines. Synthesis of Acetamides; Russian Journal of Organic Chemistry; Vol. 54, iss. 4
Autor: Bakibaev A. A. Abdigali Abdimanapovich
Vydáno: (2018)
Autor: Bakibaev A. A. Abdigali Abdimanapovich
Vydáno: (2018)
Pyridinyl trifluoromethanesulfonates: preparation methods and use in organic synthesis; Russian Chemical Bulletin; Vol. 65, iss. 2
Vydáno: (2016)
Vydáno: (2016)
Synthesis and In Silico Evaluation of the Ninhydrin Derivatives Interaction with Target Proteins Involved in Cancer Pathogenesis and Progression; Organics; Vol. 7, iss. 2
Autor: Kovrizhina A. R. Anastasia Ruslanovna
Vydáno: (2026)
Autor: Kovrizhina A. R. Anastasia Ruslanovna
Vydáno: (2026)
Generation of benzyne from aryl benziodoxaborole triflate under aqueous conditions and its reactions with alkyl aryl sulfides; Arkivoc; Vol. 1
Vydáno: (2024)
Vydáno: (2024)
Chemical modification of gold surface via UV-generated aryl radicals derived 3,5-bis(trifluoromethyl)phenyl)iodonium salt; Progress in Organic Coatings; Vol. 136
Vydáno: (2019)
Vydáno: (2019)
Synthesis of 3-Phenylisoindolinones by Reaction of 2-Carboxybenzophenone and 2-Methoxycarbonylbenzophenone with Ureas in Formic Acid; Russian Journal of Organic Chemistry; Vol. 39, iss. 8
Autor: Bakibaev A. A. Abdigali Abdimanapovich
Vydáno: (2003)
Autor: Bakibaev A. A. Abdigali Abdimanapovich
Vydáno: (2003)
Podobné jednotky
-
Iodonium ylides in organic synthesis; ARKIVOC; Vol. 2016
Autor: Yusubov M. S. Mekhman Suleiman-Ogly (Suleimanovich)
Vydáno: (2016) -
Iodonium Salts as Benzyne Precursors; Chemistry - A European Journal; Vol. 24, iss. 57
Autor: Yoshimura A. Akira
Vydáno: (2018) -
Flow Synthesis of Iodonium Trifluoroacetates through Direct Oxidation of Iodoarenes by Oxone®; European Journal of Organic Chemistry; Vol. 2019, iss. 10
Vydáno: (2019) -
Synthetic applications of pseudocyclic hypervalent iodine compounds; Organic and Biomolecular Chemistry; Vol. 14
Autor: Yoshimura A. Akira
Vydáno: (2016) -
Synthesis of arylbenziodoxoles using pseudocyclic benziodoxole triflate and arenes; Arkivoc; Vol. 2020, Part (iv) : Special Issue 'Hypervalent Iodine Chemistry, part 1'
Vydáno: (2020)