Exclusive Hydroformylation of Terminal Olefins: A Phosphorus‐Free Ruthenium System for the Selective Functionalization of Complex Mixtures

M Mohamed Niyaz Vellala Syed Ali (Leibniz Institute for Catalysis, Albert-Einstein-Straße 29a, 18059 Rostock, Germany) I Ida Ziccarelli (Laboratory of Industrial and Synthetic Organic Chemistry (LISOC) Department of Chemistry and Chemical Technologies University of Calabria Arcavacata di Rende Cosenza Italy) D Dilver Peña Fuentes (Leibniz-Institut für Katalyse e.V, Albert-Einstein-Straße 29a, Rostock 18059, Germany) C Christoph Kubis (Advanced Methods for Applied Catalysis, Leibniz-Institut für Katalyse, Albert Einstein-Str. 29a, 18059 Rostock, Germany) R Robert Franke (Lehrstuhl für Theoretische Chemie) R Ralf Jackstell (Leibniz-Institut für Katalyse e.V, Albert-Einstein-Straße 29a, Rostock 18059, Germany) M Matthias Beller (Leibniz-Institut für Katalyse)

Abstract

ABSTRACT We report a paradigm shift in ruthenium‐catalyzed hydroformylation using a remarkably simple, phosphorus‐free system based on ruthenium carbonyl complexes and DBU (1,8‐diazabicyclo[5.4.0]undec‐7‐ene). The optimal catalytic system operates under mild conditions and exhibits an unprecedented “terminal‐only” selectivity. It quantitatively discriminates between terminal and internal or multi‐substituted double bonds, which has been a long‐standing challenge in oxo synthesis. Traditional systems often trigger the isomerization of internal olefins, but our catalyst leaves them untouched, even within complex industrial feedstocks. Comprehensive mechanistic investigations, including in situ IR spectroscopy and high‐pressure VT NMR spectroscopy, identify the tetranuclear ruthenium‐hydride cluster [DBUH] 2 + [H 2 Ru 4 (CO) 12 ] 2− as the pivotal active species. Isolating this cluster and successfully reapplying it confirms its role as the catalytic resting state. Combining low‐cost, air‐stable components with exceptional chemo‐ and regioselectivity provides this system with a robust, economically superior alternative to precious rhodium‐phosphine catalysts for academic synthesis and large‐scale industrial applications .

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 23, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

M

Mohamed Niyaz Vellala Syed Ali

Leibniz Institute for Catalysis, Albert-Einstein-Straße 29a, 18059 Rostock, Germany

I

Ida Ziccarelli

Laboratory of Industrial and Synthetic Organic Chemistry (LISOC) Department of Chemistry and Chemical Technologies University of Calabria Arcavacata di Rende Cosenza Italy

D

Dilver Peña Fuentes

Leibniz-Institut für Katalyse e.V, Albert-Einstein-Straße 29a, Rostock 18059, Germany

C

Christoph Kubis

Advanced Methods for Applied Catalysis, Leibniz-Institut für Katalyse, Albert Einstein-Str. 29a, 18059 Rostock, Germany

R

Robert Franke

Lehrstuhl für Theoretische Chemie

R

Ralf Jackstell

Leibniz-Institut für Katalyse e.V, Albert-Einstein-Straße 29a, Rostock 18059, Germany

M

Matthias Beller

Leibniz-Institut für Katalyse