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Updated: Aug 18, 2026

Retropinacol/Cross-pinacol Coupling Reactions - A Catalytic Access to 1,2-Unsymmetrical Diols
Published on: April 4, 2014
Photoredox-catalyzed direct deoxygenative coupling of alcohols to thioethers under batch and flow conditions
Yang Zeng1, Yujian Pang1, Dandan Fan1
1College of Biotechnology and Pharmaceutical Engineering, Nanjing Tech University, 30 Puzhu Road South, Nanjing 211816, China. liangshanhuoma@njtech.edu.cn.
Abstract:
Sulfur-containing compounds, particularly thioethers, are of significant value in the pharmaceutical, agrochemical, and functional materials industries. Traditional methods for constructing C-S bonds are often constrained by harsh reaction conditions and limited substrate scope. Alcohols represent the most abundant and structurally diverse class of alkyl sources; converting them into sulfur-containing compounds could greatly enrich the structural diversity of the latter, yet systematic studies in this direction remain scarce. Herein, we report an NHC-assisted photoredox catalytic strategy that enables the deoxygenative coupling of primary and secondary alcohols, as well as sugar derivatives, with disulfides or benzenesulfonyl peroxydithioates, affording thioethers and disulfides in a straightforward manner. This protocol accommodates both aliphatic and aromatic disulfides and can be efficiently scaled up in a microflow reactor. By transforming structurally diverse alcohols into versatile alkyl radical precursors, this approach opens up new avenues for the functionalization of alcohols and holds promise for industrial translation.
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