Manganese-catalyzed C−H bond activation chemistry is emerging as a powerful and complementary method for molecular functionalization. A highly reactive seven-membered MnIintermediate is detected and characterized that is effective for H-transfer or reductive elimination to deliver alkenylated or pyridinium products, respectively. The two pathways are determined at MnIby judicious choice of an electron-deficient 2-pyrone substrate containing a 2-pyridyl directing group, which undergoes regioselective C−H bond activation, serving as a valuable system for probing the mechanistic features of Mn C−H bond activation chemistry
The development of new catalytic systems for cis-dihydroxylation and epoxidation of alkenes, based o...
The development of new catalytic systems for cis-dihydroxylation and epoxidation of alkenes, based o...
C–X bond reductive elimination and oxidative addition are key steps in many catalytic cycles for C–H...
Manganese-catalyzed C−H bond activation chemistry is emerging as a powerful and complementary method...
Manganese-catalyzed C−H bond activation chemistry is emerging as a powerful and complementary method...
Manganese-catalyzed C−H bond activation chemistry is emerging as a powerful and complementary method...
As a synthetic methodology, C–H activation represents a complimentary protocol to traditional cross-...
While Mn-catalyzed (de)hydrogenation of carbonyl derivatives has been well established, the reactivi...
As a synthetic methodology, C–H activation represents a complimentary protocol to traditional cross-...
Manganese(I) carbonyl-catalyzed C–H bond functionalization of 2-phenylpyridine and related compound...
Manganese(I) carbonyl-catalyzed C–H bond functionalization of 2-phenylpyridine and related compound...
Detailed understanding of the mechanistic processes that underpin transition metal-catalysed reactio...
Detailed understanding of the mechanistic processes that underpin transition metal-catalysed reactio...
The development of new first-row transition metal catalysts as both replacements for precious metal...
The development of new catalytic systems for cis-dihydroxylation and epoxidation of alkenes, based o...
The development of new catalytic systems for cis-dihydroxylation and epoxidation of alkenes, based o...
The development of new catalytic systems for cis-dihydroxylation and epoxidation of alkenes, based o...
C–X bond reductive elimination and oxidative addition are key steps in many catalytic cycles for C–H...
Manganese-catalyzed C−H bond activation chemistry is emerging as a powerful and complementary method...
Manganese-catalyzed C−H bond activation chemistry is emerging as a powerful and complementary method...
Manganese-catalyzed C−H bond activation chemistry is emerging as a powerful and complementary method...
As a synthetic methodology, C–H activation represents a complimentary protocol to traditional cross-...
While Mn-catalyzed (de)hydrogenation of carbonyl derivatives has been well established, the reactivi...
As a synthetic methodology, C–H activation represents a complimentary protocol to traditional cross-...
Manganese(I) carbonyl-catalyzed C–H bond functionalization of 2-phenylpyridine and related compound...
Manganese(I) carbonyl-catalyzed C–H bond functionalization of 2-phenylpyridine and related compound...
Detailed understanding of the mechanistic processes that underpin transition metal-catalysed reactio...
Detailed understanding of the mechanistic processes that underpin transition metal-catalysed reactio...
The development of new first-row transition metal catalysts as both replacements for precious metal...
The development of new catalytic systems for cis-dihydroxylation and epoxidation of alkenes, based o...
The development of new catalytic systems for cis-dihydroxylation and epoxidation of alkenes, based o...
The development of new catalytic systems for cis-dihydroxylation and epoxidation of alkenes, based o...
C–X bond reductive elimination and oxidative addition are key steps in many catalytic cycles for C–H...