Introduction

Enantiopure vicinal amino alcohols and their derivatives represent one of the most significant synthetic building blocks and key subunits of pharmaceutically active molecules, chiral auxiliaries and ligands. Synthesis of such compounds has stimulated continuing interest and extensive efforts1,2,3,4,Full size image

Compared with the above protocols, radical cross-coupling between amine and alcohol moieties represents an inherently efficient and flexible way for construction of vicinal amino alcohols (Fig. 1a-IV). By using SmI2 as reductant and oxophilic coordination center, reductive cross-coupling of imine derivatives9,10,11 or nitrones12,13,14,15 with carbonyl compounds (e.g., aldehydes/ketones) allows for an easy access to these compounds with various structures. However, the use of SmI2 in stoichiometric quantity poses a substantial challenge for enantioselective induction from chiral ligands16, along with unavoidable side reactions such as pinacol-type homocoupling and reduction of substrates (Fig. 1b). Recently, photocatalysis17,18,19,20,21,26,27,28, including three enantioselective protocols catalyzed by photocatalyst-merged dual catalyst systems with chiral phosphoric acid organocatalyst23 or chiral rhodium Lewis acid24, as well as bifunctional Lewis acid/photoredox catalyst25 of chiral-at-metal iridium complex29. Nevertheless, all of these methods relied heavily on specially designed substrates.

We recently envisioned that an efficient and flexible strategy for enantiopure vicinal amino alcohols might be realized by aptly combining merits of the aforementioned SmI2-mediated12,13,14,15 and photocatalytic23,24,25,26,27,28 protocols from nitrones and aldehydes. That is, a photocatalytic protocol featuring with intermolecular single-electron-transfer (SET) can be used to reduce selectively the substrate of higher electron affinity (i.e., higher reduction potential)26,30 and an oxophilic Lewis acid co-catalyst (e.g., rare earth metal cation) can be introduced to bind simultaneously both substrates31,32, and, more importantly, an appropriate chiral ligand to form precursor complex I and to induce desired enantioselectivity likely through a radical-type Zimmerman–Traxler transition state TS II 33,34 in the subsequent cross-coupling. Herein we report a synergistic catalysis of chiral N,N′-dioxides (Feng’s ligands)35,36 coordinated rare earth ion and Ru-photocatalyst for enantioselective radical convergent synthesis of enantiopure vicinal hydroxyamino alcohols from nitrones and aromatic aldehydes, together with a mechanism deciphering catalytic cycle and stereoselectivity of this reaction.