TY - JOUR
T1 - Amides Enable Room-Temperature CO2 Conversion
T2 - Simple Organic Molecules Challenging Metal Catalysts
AU - Jin, Chen
AU - Zhang, Lin
AU - Xing, En Hui
AU - Mu, Peng Fei
AU - Gao, En Qing
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025
Y1 - 2025
N2 - The conversion of carbon dioxide (CO2) into valuable chemicals has been intensively pursued for sustainable chemistry. It is highly desirable to achieve the conversion under ambient conditions using organocatalysts instead of precious or pollutive metal catalysts. Herein, we disclose a new class of organocatalysts for direct C(sp)-H carboxylation with CO2. Amide molecules such as N-methylacetamide and valerolactam behave as efficient bifunctional catalysts to promote the conversion of aromatic alkynes to propiolic acids. In particular, the simple organic catalysts enable the reaction to occur at room temperature, which has been achieved only with complex transition metal catalysts prior to this report. In the presence of the optimal base of Cs2CO3, the adjacent nitrogen and oxygen sites of the amide group concurrently activate CO2 and C(sp)-H and position them in favor of C-C coupling, affording a high catalytic activity on par with those of transition metal catalysts. The work sheds new light on the catalytic chemistry of CO2 and also illustrates the great potential of discovering new organocatalysts from simple molecules.
AB - The conversion of carbon dioxide (CO2) into valuable chemicals has been intensively pursued for sustainable chemistry. It is highly desirable to achieve the conversion under ambient conditions using organocatalysts instead of precious or pollutive metal catalysts. Herein, we disclose a new class of organocatalysts for direct C(sp)-H carboxylation with CO2. Amide molecules such as N-methylacetamide and valerolactam behave as efficient bifunctional catalysts to promote the conversion of aromatic alkynes to propiolic acids. In particular, the simple organic catalysts enable the reaction to occur at room temperature, which has been achieved only with complex transition metal catalysts prior to this report. In the presence of the optimal base of Cs2CO3, the adjacent nitrogen and oxygen sites of the amide group concurrently activate CO2 and C(sp)-H and position them in favor of C-C coupling, affording a high catalytic activity on par with those of transition metal catalysts. The work sheds new light on the catalytic chemistry of CO2 and also illustrates the great potential of discovering new organocatalysts from simple molecules.
UR - https://www.scopus.com/pages/publications/85217264829
U2 - 10.1021/acs.joc.5c00056
DO - 10.1021/acs.joc.5c00056
M3 - 文章
AN - SCOPUS:85217264829
SN - 0022-3263
JO - Journal of Organic Chemistry
JF - Journal of Organic Chemistry
ER -