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Published on: July 30, 2017
Remote substituent effects on phenylchlorocarbene C-H insertion reactions
1Department of Chemistry, Rutgers, The State University of New Jersey, New Brunswick, New Jersey 08903, USA. moss@rutchem.rutgers.edu
Phenylchlorocarbene reactivity was studied in adamantane derivatives. Insertion rates correlated with substituent electronic effects, with computational methods accurately predicting outcomes.
Area of Science:
- Organic Chemistry
- Reaction Mechanisms
- Computational Chemistry
Background:
- Carbenes are highly reactive intermediates crucial in organic synthesis.
- Understanding carbene insertion reactions into C-H bonds provides insights into reaction mechanisms.
- Adamantane derivatives offer a rigid framework to study substituent effects on reactivity.
Purpose of the Study:
- To investigate the insertion of phenylchlorocarbene into tertiary C-H bonds of substituted adamantanes.
- To correlate the observed reaction rates with electronic properties of substituents on the adamantane.
- To validate computational methods for predicting carbene insertion reactivity.
Main Methods:
- Experimental determination of relative and absolute rate constants for phenylchlorocarbene insertion.
- Synthesis of 1,3-dimethyladamantane and various 1-X-adamantanes (X = H, OMe, COOMe, Cl, CN).
- Density functional theory (DFT) calculations using the B3LYP/6-31G* level of theory.
Main Results:
- Phenylchlorocarbene successfully inserted into tertiary C-H bonds of all tested adamantane derivatives.
- A strong linear correlation was observed between relative rate constants and inductive substituent constants (sigma1), with rho = -1.5.
- Absolute rate constants varied from 2.5 x 10(5) M(-1) s(-1) for 1,3-dimethyladamantane to 2.5 x 10(4) M(-1) s(-1) for 1-cyanoadamantane.
Conclusions:
- The insertion reactivity of phenylchlorocarbene is significantly influenced by the electronic nature of substituents on the adamantane cage.
- Inductive effects play a dominant role in modulating the carbene insertion rates.
- B3LYP/6-31G* calculations accurately predict the observed reactivity trends, supporting their utility in studying carbene chemistry.
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