A Cobotic, Digitally Controlled Schlenk‐line Unlocks Access to Elusive Lewis‐Base Stabilised Copper Bis(Disilylamides)

N Nicola L. Bell (School of Chemistry University of Glasgow Glasgow G12 8QQ UK) M Marina Gladkikh (School of Chemistry University of Glasgow Glasgow G12 8QQ UK) C Cameron Fraser M Mostafa Elsayed (School of Chemistry University of Glasgow Glasgow G12 8QQ UK) E Emma Richards (Cardiff Catalysis Institute School of Chemistry Cardiff University Maindy Road Cardiff CF24 4HQ UK) R Richard Drummond Turnbull (School of Chemistry University of Glasgow Glasgow G12 8QQ UK)

Abstract

Abstract Silylamides are important ligands in coordination chemistry for their ability to stabilise low coordination numbers and provide soluble, and even volatile, metal complexes. Such compounds provide valuable insights into the fundamental bonding and reactivity of their respective metals. Despite the wealth of homo‐ and heteroleptic hexamethyldisilazide complexes of divalent 3 d ions (Sc‐Ni, Zn), attempts to access the corresponding divalent copper complexes have yielded only Cu(I) species. Herein, we demonstrate the stabilisation and isolation of a formally Cu(II) bis‐hexamethyldisilazide which was achieved by implementing novel digital chemistry tools. In order to successfully isolate (DMAP)Cu II (N{SiMe 3 } 2 ) 2 (DMAP = N,N‐dimethylaminopyridine), we investigated the roles of the co‐ligand and silylamide transfer reagent in the kinetics of its formation. Crucial to these studies was our newly developed “cobotic” Schlenk line which provides digital control of the atmosphere under which we conduct our highly reactive syntheses. In digitising Schlenk‐line handling, we have improved synthetic productivity by creating protocols for automated inertisation, solvent evaporation, liquid handling and crystallisation all while capturing reaction log data. Importantly, our Cu silylamide synthesis provides a case study showing that our cobotics approach allows for the discovery and isolation of unstable species which may remain elusive by traditional manual or fully autonomous methodologies.

Article Details

Volume / Issue Vol. 64, Issue 33
Published August 11, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

N

Nicola L. Bell

School of Chemistry University of Glasgow Glasgow G12 8QQ UK

M

Marina Gladkikh

School of Chemistry University of Glasgow Glasgow G12 8QQ UK

C

Cameron Fraser

M

Mostafa Elsayed

School of Chemistry University of Glasgow Glasgow G12 8QQ UK

E

Emma Richards

Cardiff Catalysis Institute School of Chemistry Cardiff University Maindy Road Cardiff CF24 4HQ UK

R

Richard Drummond Turnbull

School of Chemistry University of Glasgow Glasgow G12 8QQ UK