Rhodaelectro-Catalyzed C–H and C–C Activation DOI Creative Commons
Youai Qiu, Cuiju Zhu, Maximilian Stangier

et al.

CCS Chemistry, Journal Year: 2020, Volume and Issue: 3(2), P. 1529 - 1552

Published: July 17, 2020

Open AccessCCS ChemistryMINI REVIEW1 Feb 2021Rhodaelectro-Catalyzed C–H and C–C Activation Youai Qiu†, Cuiju Zhu†, Maximilian Stangier, Julia Struwe Lutz Ackermann Qiu† Institut für Organische und Biomolekulare Chemie, Georg-August-Universität Göttingen, Göttingen 37077 , Zhu† Stangier *Corresponding author: E-mail Address: [email protected] https://doi.org/10.31635/ccschem.020.202000365 SectionsAboutAbstractPDF ToolsAdd to favoritesDownload CitationsTrack Citations ShareFacebookTwitterLinked InEmail Rhodium(III) catalysis has set the stage for a plethora of oxidative functionalizations over last decade, which have predominantly employed stoichiometric amounts toxic expensive metal oxidants, such as silver(I) salts. In meantime, electrosynthesis emerged an increasingly viable alternative oxidants. Recently, significant momentum been achieved with merger electrocatalysis organometallic activation. However, user-friendly robust rhodaelectro-catalysis until very recently proven elusive activations. This minireview highlights current knowledge recent advances electrooxidation in rhodium-catalyzed or activations, topical focus on contributions from group through July 2020. Download figure PowerPoint Introduction Organometallic activation one most efficient tools molecular synthesis.1–10 Particularly, rhodium(III) received notable attention development functionalizations.11–16 Despite considerable advances, rhodium(III)-catalyzed activations heavily rely and/or copper(II) salts sacrificial oxidants.17–21 identified strategy decade.22–36 While general reviews reports metallaelectro-catalysis appeared,37–59 state-of-the-art rhodaelectro-catalyzed transformations is not yet available,60,61 despite its unique potential syntheses, pharmaceutical industries, material sciences.62–65 Herein, we discuss developments specific interests mechanistic aspects. Thus, specifically summarize our findings provide number useful structures and, more importantly, reveal new synthetic disconnections. Overall, C−H/C–C syntheses levels resource economy.66 Rhodaelectro-Catalyzed C−H Alkenylation 2018, key breakthrough was established by (Göttingen, Germany) (Scheme 1).67 Hence, cross-dehydrogenative C–H/C–H alkenylation weakly O-coordinating68 benzoic acids 1 alkenes 2, serving proof concept first rhodium electrocatalyzed The optimized reaction conditions were characterized using Potassium acetate (KOAc) additive mixture t-AmOH H2O effective solvent system, delivering desired products 3 undivided cell setup. Initially, various substituents ortho-, meta-, para-positions probe robustness transformation, proceeding excellent positional, diastereo-, chemoselectivities. Notably, variety valuable electrophilic functional groups, including sensitive esters ketones, fully tolerated this electrooxidative alkenylations. Likewise, variously substituted acrylates 2 proved be amenable, oxidation-sensitive aliphatic hydroxy group. Furthermore, procedure applicable amides indoles. Specifically, endogenous steroid pregnenolone 2k could efficiently converted 3k without racemization stereogenic centers. It worth noting that electrochemical vinyl initially realized study, well.69,70 Scheme | Rhodaelectro-catalyzed alkenylation. Competitive experiments showed clear preference favor electron-rich 1. experiment conducted analysis initial rates electron-deficient 1c 1d independent reactions 2a). observation good agreement base-assisted intramolecular electrophilic-type substitution (BIES)71–78 manifold. deuteration studies CD3OD cosolvent suggested facile reversible event, while highlighting mechanism 2b). A minor kinetic isotopic effect illustrated rhodanation rate-determining step, providing additional support fast scission 2c). (a–c) Summary findings. On basis findings, catalytic cycle depicted proposed. carboxylate-assisted BIES delivers cyclometalated intermediate 4b. Next, migratory alkene insertion generates catalytically competent species 4d. Thereafter, β-hydride elimination reductive deliver 3. Finally, anodic oxidation reduced rhodium(I) 4e regenerates active 4a via single-electron transfer (SET) event. Plausible contrast α,β-unsaturated carbonyl compounds under rhodaelectro-catalysis, reported intriguing unactivated 6 coordinating benzamides 4).79 Here, dehydrogenative 7 obtained NaOPiv instead previously KOAc additive. shown proceed ample substrate scope, heterocycles group, chloro, bromo, nitrile. hydroxyl substituents. gram-scale highlighted utility 4 reaction. Alkynylation rhodaelectro-catalytic broadly gave access synthetically polycyclic aromatic hydrocarbons (PAHs)80–84 two-step sequential annulation 5a).85 C−B/C−H [2 + 2] cyclization boronic featuring versatile catalysis. scope remarkable tolerance, ester, cyano substituents, chemoselectivity conversion iodo-substituted significantly improved compared typical chemical AgOAc Cu(OAc)2 5b). 5 (a b) C–B/C–H annulation. Further transformation tetraphenyl naphthalenes into π-conjugation PAHs presence 20 mol % 2,3-Dichloro-5,6-dicyano-1,4-benzoquinone (DDQ) divided at room temperature 6).86,87 Thereby, late-stage diversification provided important derivatives. unambiguous structure cyclodehydrogenated product 11 confirmed X-ray diffraction analysis, revealing structurally nonplanar PAH. addition, photoabsorption cyclic voltammetry (CV) measurements reflected optoelectronic properties electrochemically generated 7).88,89 Late-stage DDQ-catalyzed cyclodehydrogenation. (a) Photoabsorption (b) CV 11e 11f. Importantly, also flow alkyne annulations aryl imidates 12 substrates 8).90 particularly noteworthy C−H/N−H amenable electroflow technology slightly modified IKA setup.91–98 represents tool upscaling control heat mass transfer. challenging isoquinolines, well azo-tetracycles, 8 Flow-rhodaelectro-catalyzed annulations.a [Cp*Rh(CH3CN)3](SbF6)2 (5.0 %) catalyst, 50 °C, 10 h, batch In-depth performed catalyst's modus operandi 8). synthesis two novel complexes 17a 17b 12a accomplished 9a). well-defined found 9b). formation well-characterized rhodium(III)-heptacycle 18 observed when treating complex 13a, whereas 13a underwent 9c). 14a electricity applied, thus oxidation-induced within unusual rhodium(III/IV/II) regime 9d).99,100 gain further insights role sodium salt. These indicated additive, NaOPiv, accelerated rhodacycle upon electrolysis. 9 (a–d) Synthesis rhodacyles 17a, 17b, 18, applications computational rationalized favorable Rh(III/IV/II) manifold barrier 15.2 kcal mol–1 oxidatively induced step (Figure 1). experimental Figure Gibbs free-energy profile (in mol–1) comparing direct B3LYP-D3(BJ)/6-311++G(d,p),SDD(Rh)+SMD(methanol)//B3LYP-D3(BJ)/6-31G(d,p),SDD(Rh) level theory. Nonparticipating hydrogen atoms omitted clarity. these studies, plausible proposed feature cyclometallated 17 10). SET rhodium(IV) C subsequently undergo C. 14 released, regenerated. Proposed flow-rhodaelectro-catalyzed Electrooxidative merged multiple domino 11).101 previous transformation,85 use easily accessible imidamides 19 enabled aza-PAHs. cascade tolerance. Having demonstrated versatility annulation, encouraged investigate 12). occurred rhodacycles 21 22 catalysts. order three subsequent events. An application dendrimer 23 assembly protected d-lactone 24 13). Key 13 functionalization Phosphorylation Xu group102 concurrently disclosed mechanistically related phosphorylation N-coordinating directing 14). utilized diphenylphosphines 26. To prove scalability, decagram scale successfully performed, illustrating future industrial applications. phosphorylation. interrogated detailed studies. 28 29 prepared. Both settings 15a). undergoes ligand exchange form oxidizable 29, followed generate 27 15b). 15 electrochemistry ideal platform proof-of-concept Chang group103 probed viability steps First, stable 33 35a prepared their investigated 16a). irreversible Epa = 0.331 V versus Fc/Fc+ tetrahydrofuran (THF), can oxidized silver salt putative high-valence according known AgI (E1/2 0.41 vs THF). Indeed, arylated methylated 37a 37b obtained, did take place even 80 °C oxidant-free conditions. confirm (Schemes 16b 16c). 16 Oxidatively complexes. C−C limited transformations. alkenylation, representing functionalization104 electrocatalysis.105 Within manifold, chelation-assisted outstanding chemo- position-based selectivities 17a). competition between revealed preferential reactivity position selectively furnishing densely decorated 1,2,3-substituted arenes, common strategies 17b). selectivity. mode action 18). Competition arenes olefins preferentially 18a). faster than 18b). isotopically labeled [D]1-tAmOD D2O lead unreacted starting product. are indicative slow 18c). sole byproduct cathodic proton reduction headspace gas chromatographic 18d). 42a 42b catalysts nature 18e). (a–e) Their 19. Initiated catalyst 4a, seven-membered 43 formed chelating nitrogen oxygen 38 catalyst. 46. furnished 40, regenerated 47. 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Language: Английский

Iridium‐Catalyzed Electrooxidative C−H Activation by Chemoselective Redox‐Catalyst Cooperation DOI
Youai Qiu, Maximilian Stangier, Tjark H. Meyer

et al.

Angewandte Chemie International Edition, Journal Year: 2018, Volume and Issue: 57(43), P. 14179 - 14183

Published: Sept. 10, 2018

Iridium-catalyzed electrochemical C-H activation was accomplished within a cooperative catalysis manifold, setting the stage for electrooxidative alkenylations through weak O-coordination. The iridium-electrocatalyzed featured high functional-group tolerance assistance of metal-free redox mediator indirect electrolysis. Detailed mechanistic insights provided strong support an organometallic cleavage and synergistic iridium(III/I)/redox catalyst regime, enabling use sustainable electricity as terminal oxidant with improved selectivity features.

Language: Английский

Citations

136

Electrochemical Cobalt‐Catalyzed C−H Activation DOI

Nicolas Sauermann,

Tjark H. Meyer, Lutz Ackermann

et al.

Chemistry - A European Journal, Journal Year: 2018, Volume and Issue: 24(61), P. 16209 - 16217

Published: June 19, 2018

Carbon-heteroatom bonds represent omnipresent structural motifs of the vast majority functionalized materials and bioactive compounds. C-H activation has emerged as arguably most efficient strategy to construct C-Het bonds. Despite major advances, these transformations were largely dominated by precious transition metal catalysts, in combination with stoichiometric, toxic oxidants. Herein, we discuss recent evolution cobalt-catalyzed activations that enable formations electricity sole sustainable oxidant until May 2018.

Language: Английский

Citations

128

Electrooxidative Allene Annulations by Mild Cobalt-Catalyzed C–H Activation DOI
Tjark H. Meyer, João C. A. Oliveira, Samaresh Sau

et al.

ACS Catalysis, Journal Year: 2018, Volume and Issue: 8(10), P. 9140 - 9147

Published: Aug. 15, 2018

Versatile cobalt catalysis enabled electrochemical C–H activation with allenes. Thus, allene annulations were accomplished in terms of C–H/N–H functionalizations excellent levels chemoselectivity, site selectivity, and regioselectivity under exceedingly mild conditions. Detailed mechanistic studies conducted, including reactions isotopically labeled compounds, kinetic investigations, in-operando infrared spectroscopic studies. Further, computational supportive a non-rate-determining cleavage gave key insights into the annulation. The practical utility user-friendly approach was furthermore highlighted by gram-scale electrocatalysis.

Language: Английский

Citations

128

Alkyne Linchpin Strategy for Drug:Pharmacophore Conjugation: Experimental and Computational Realization of a Meta-Selective Inverse Sonogashira Coupling DOI

Sandip Porey,

Xinglong Zhang,

Suman Bhowmick

et al.

Journal of the American Chemical Society, Journal Year: 2020, Volume and Issue: 142(8), P. 3762 - 3774

Published: Jan. 7, 2020

The late-stage functionalization (LSF) of pharmaceutical and agrochemical compounds by the site-selective activation C–H bonds provides access to diverse structural analogs expands synthetically-accessible chemical space. We report a LSF strategy that hinges on use an alkyne linchpin assemble conjugates sp2-rich marketed pharmaceuticals agrochemicals with sp3-rich 3D fragments natural products. This is accomplished through template-assisted inverse Sonogashira reaction displays high levels selectivity for meta position. protocol also amenable distal modifications α-amino acids. transformation functionality other functional groups further highlights applicative potential. Computational experimental mechanistic studies shed light detailed mechanism. Turnover-limiting 1,2-migratory insertion bromoalkyne coupling partner occurs after relatively fast activation. While this unselectively, regioconvergence results from one adducts undergoing 1,2-trialkylsilyl migration form alkynylated product. A heterobimetallic Pd–Ag transition structure essential product formation in β-bromide elimination step.

Language: Английский

Citations

127

para-Selective C–H Olefination of Aniline Derivatives via Pd/S,O-Ligand Catalysis DOI Creative Commons

Kananat Naksomboon,

Jordi Poater, F. Matthias Bickelhaupt

et al.

Journal of the American Chemical Society, Journal Year: 2019, Volume and Issue: 141(16), P. 6719 - 6725

Published: March 28, 2019

Herein we report a highly para-selective C–H olefination of aniline derivatives by Pd/S,O-ligand-based catalyst. The reaction proceeds under mild conditions with high efficiency and broad substrate scope, including mono-, di-, trisubstituted tertiary, secondary, primary anilines. S,O-ligand is responsible for the dramatic improvements in scope para-selectivity observed. This methodology operationally simple, scalable, can be performed aerobic conditions.

Language: Английский

Citations

123

Reactivity-Controlling Factors in Carboxylate-Assisted C–H Activation under 4d and 3d Transition Metal Catalysis DOI
Torben Rogge, João C. A. Oliveira, Rositha Kuniyil

et al.

ACS Catalysis, Journal Year: 2020, Volume and Issue: 10(18), P. 10551 - 10558

Published: Aug. 17, 2020

Detailed density functional theory calculations provide valuable insight into reactivity-controlling factors in transition metal-catalyzed C–H activation by carboxylate assistance. The chelation-assisted of a variety arenes 3d and 4d metal complexes was analyzed means bond order analysis through (DFT) as well energy decomposition DLPNO–CCSD(T) calculations, thereby providing in-depth information on distinct electronic influences the key state demonstrating preferred base-assisted internal electrophilic substitution (BIES) rather than concerted metalation-deprotonation (CMD) pathway.

Language: Английский

Citations

93

Mechanochemical Solvent‐Free Catalytic C−H Methylation DOI Creative Commons
Shengjun Ni, Matic Hribersek, Swarna K. Baddigam

et al.

Angewandte Chemie International Edition, Journal Year: 2020, Volume and Issue: 60(12), P. 6660 - 6666

Published: Oct. 8, 2020

The mechanochemical, solvent-free, highly regioselective, rhodium-catalyzed C-H methylation of (hetero)arenes is reported. reaction shows excellent functional-group compatibility and demonstrated to work for the late-stage biologically active compounds. method requires no external heating benefits from considerably shorter times than previous solution-based protocols. Additionally, mechanochemical approach shown enable efficient synthesis organometallic complexes that are difficult generate conventionally.

Language: Английский

Citations

92

C−H Oxygenation Reactions Enabled by Dual Catalysis with Electrogenerated Hypervalent Iodine Species and Ruthenium Complexes DOI Creative Commons
Leonardo Massignan, Xuefeng Tan, Tjark H. Meyer

et al.

Angewandte Chemie International Edition, Journal Year: 2019, Volume and Issue: 59(8), P. 3184 - 3189

Published: Nov. 28, 2019

The catalytic generation of hypervalent iodine(III) reagents by anodic electrooxidation was orchestrated towards an unprecedented electrocatalytic C-H oxygenation weakly coordinating aromatic amides and ketones. Thus, quantities iodoarenes in concert with amounts ruthenium(II) complexes set the stage for versatile activations ample scope high functional group tolerance. Detailed mechanistic studies experiment computation substantiate role iodoarene as electrochemically relevant species oxygenations electricity a sustainable oxidant molecular hydrogen sole by-product. para-Selective likewise proved viable absence directing groups.

Language: Английский

Citations

90

Cobaltaelectro‐Catalyzed C−H Activation with Carbon Monoxide or Isocyanides DOI
Samaresh Sau, Ruhuai Mei, Julia Struwe

et al.

ChemSusChem, Journal Year: 2019, Volume and Issue: 12(13), P. 3023 - 3027

Published: March 21, 2019

Abstract Electrochemical oxidative C−H/N−H activations with isocyanides have been realized a versatile cobalt catalyst. The widely applicable catalysis manifold further enabled electrooxidative carbonylations carbon monoxide under ambient conditions. C−H functionalizations were efficiently ample scope and outstanding functional group tolerance in user‐friendly undivided cell setup.

Language: Английский

Citations

84

Cobaltaelectro-Catalyzed Oxidative C–H/N–H Activation with 1,3-Diynes by Electro-Removable Hydrazides DOI
Ruhuai Mei, Wenbo Ma,

Yin Zhang

et al.

Organic Letters, Journal Year: 2019, Volume and Issue: 21(16), P. 6534 - 6538

Published: July 31, 2019

An efficient electro-oxidative C–H/N–H activation with 1,3-diynes has been achieved a robust earth-abundant cobalt catalyst. The electrochemical C–H functionalization was accomplished ample scope and remarkable functional group compatibility in simple undivided cell. This protocol avoids the utilization of stoichiometric cost-intensive chemical oxidants activation, thus forming hydrogen as only byproduct.

Language: Английский

Citations

83