Mechanistic insights into the rhodium-catalyzed aryl C–H carboxylation
Literature Information
DeGuang Liu, ZheYuan Xu, MingQiang Liu, Yao Fu
The recently reported Rh(II)-catalyzed direct C–H bond activation and lactonization of 2-arylphenols uncovers an attractive strategy to prepare coumarin derivatives with novel chemoselectivity. Motivated by the mechanistic ambiguity (on the origin of the chemoselectivity and the details for lactonization etc.), we conducted a detailed mechanistic study for the rhodium-catalyzed lactonization of 2-arylphenols with density functional theory (DFT) calculations. The results suggest that the reaction occurs via the coordination exchange, C–H bond activation, carboxylation, protonation and lactonization steps. The rate-determining step is the carboxylation, in which CO2 favorably inserts into the Rh–C bond (instead of the more nucleophilic Rh–O bond). The protonation step after carboxylation is critical, which makes the subsequent CO2-assisted lactonization feasible. Interestingly, the corresponding pKa value of the base can reasonably predict the reaction energy barrier of the C–H bond activation step. The calculations will provide insights and suggestions for developing and advancing the subsequent C–H bond activation carboxylation reaction.
Related Literature
Digitalization of the agro-food sector for achieving sustainable development goals: a review
Adithya Sridhar, Muthamilselvi Ponnuchamy, P. Senthil Kumar, Ashish Kapoor, Dai-Viet Nguyen Vo
DOI: 10.1039/D3FB00124E
Effect of chloride salts and microwaves on polyethylene terephthalate (PET) hydrolysis by iron chloride/acetic acid Lewis/Brønsted acidic deep eutectic solvent
Marco Rollo, Massimo A. G. Perini, Alessandro Sanzone, Lorenzo Polastri, Matteo Tiecco, Alejandro Torregrosa-Chinillach, Elisa Martinelli, Gianluca Ciancaleoni
DOI: 10.1039/D3SU00205E
Towards sustainable synthesis: a life cycle assessment of polymer of intrinsic microporosity (PIM-1) by green mechanosynthesis
Ching Yoong Loh, Rui Huang, Roy Bell, Ming Xie
DOI: 10.1039/D3SU00340J
Biological and postharvest interventions to manage the ethylene in fruit: a review
Ram Asrey, Swati Sharma, Kalyan Barman, Uma Prajapati, Narender Negi
DOI: 10.1039/D3FB00037K
Al(iii)-based MOF for the selective adsorption of phosphate and arsenate from aqueous solutions
Herlys Viltres, Valeria B. López-Cervantes, Camilo Serrano-Fuentes, Amin Reza Rajabzadeh, Seshasai Srinivasan, Ricardo A. Peralta, Carolina Leyva
DOI: 10.1039/D3LF00061C
Cholinium-based ionic liquid catalysts for polyethylene terephthalate glycolysis: understanding the role of solvent and a reappraisal of the cation contribution
Diana Bura, Lorenzo Pedrini, Stephen J. Connon
DOI: 10.1039/D3SU00336A
Construction of Pd–TiOx interfaces for selective hydrodeoxygenation of CO bonds in vanillin by supporting Pd nanoparticles on ETS-10 zeolite
Jianbin Huang, Chang Zhou, Jian Zhang, Hao Meng, Shiyao Lu
DOI: 10.1039/D3SU00271C
A guide to lignin valorization in biorefineries: traditional, recent, and forthcoming approaches to convert raw lignocellulose into valuable materials and chemicals
David Cannella, Diego Montesdeoca, Iwona Cybulska, Damien P. Debecker
DOI: 10.1039/D3SU00140G
You might also like
What industries use (1R,3S)-1,3-Cyclopentanediol (CAS: 16326-97-9)?
(1R,3S)-1,3-Cyclopentanediol finds applications in various industries. In the ph...
What precautions should be taken when handling N'-[4-(Dimethylamino)phenyl]-N,N-dimethyl-1,4-benzenediamine (CAS: 637-31-0)?
When handling N'-[4-(Dimethylamino)phenyl]-N,N-dimethyl-1,4-benzenediamine, it i...
Are there alternatives to 5-(2,4-Difluorophenyl)-2-methoxypyrimidine (CAS: 1352318-16-1) in synthesis?
There are several alternatives to 5-(2,4-Difluorophenyl)-2-methoxypyrimidine in ...
What regulatory guidelines apply to 1-(3-Methoxyphenoxy)propan-2-ol (CAS: 382141-68-6)?
1-(3-Methoxyphenoxy)propan-2-ol (CAS: 382141-68-6) must comply with the Globally...
Is Tetrodotoxin Citrate (CAS: 18660-81-6) safe?
Tetrodotoxin Citrate is extremely dangerous and should be handled with extreme c...
What are the main uses of 2-Methyl-2-propanyl [(1R,3S)-3-hydroxycyclopentyl]carbamate (CAS: 225641-84-9)?
2-Methyl-2-propanyl [(1R,3S)-3-hydroxycyclopentyl]carbamate (CAS: 225641-84-9) i...
How should waste containing 4-(2-Hydroxyhexafluoroisopropyl)Benzoic Acid (CAS: 16261-80-6) be handled?
Waste containing 4-(2-Hydroxyhexafluoroisopropyl)Benzoic Acid (CAS: 16261-80-6) ...
How is 2-Methyl-2-proanyl {(2S)-1-[(benzyloxy)amino]-3-hydroxy-3-methyl-1-oxo-2-butanyl}carbamate (CAS: 102507-19-7) typically synthesized?
2-Methyl-2-proanyl {(2S)-1-[(benzyloxy)amino]-3-hydroxy-3-methyl-1-oxo-2-butanyl...
What is Benzeneethanamine, α-ethyl-, hydrochloride (1:1) (CAS: 20735-15-3)?
Benzeneethanamine, α-ethyl-, hydrochloride (1:1) is an organic compound with the...
Are there alternatives to 3-{(E)-[4-(Dimethylamino)phenyl]diazenyl}benzoic acid (CAS: 20691-84-3) in synthesis?
In the synthesis of compounds similar to 3-{(E)-[4-(Dimethylamino)phenyl]diazeny...
Source Journal
Organic Chemistry Frontiers

Organic Chemistry Frontiers publishes high-quality research from across organic chemistry. Emphases are placed on studies that make significant contributions to the field of organic chemistry by reporting either new or significantly improved protocols or methodologies. Topics include, but are not limited to the following: Organic synthesis Development of synthetic methodologies Catalysis Natural products Functional organic materials Supramolecular and macromolecular chemistry Physical and computational organic chemistry














