TY - JOUR
T1 - Protonation-Induced Electron Density Redistribution Facilitates Aggregation in PNNP Dicopper Hydride Complexes
AU - Bienenmann, Roel Laurentius Maria
AU - Thangsrikeattigun, Chattawat
AU - Schanz, Alexandra Julia
AU - Lutz, Martin
AU - Baik, Mu-Hyun
AU - Broere, Daniel Laurens Johannes
N1 - Publisher Copyright:
© 2025 The Author(s). Chemistry – A European Journal published by Wiley-VCH GmbH.
PY - 2025/12/16
Y1 - 2025/12/16
N2 - Copper(I) hydride complexes often exhibit diverse aggregation behavior that can profoundly influence their structure and reactivity. In this study, we investigate a series of dicopper hydride complexes supported by PNNP expanded pincer ligands that vary in both aggregation and ligand protonation state. Using a combined experimental and computational approach, we examine how these properties correlate and identify key structural and electronic factors that govern aggregation. Our analysis shows that electrostatic stabilization is reduced in charged monomers relative to the neutral system, making dimerization less favorable. At the same time, protonation of the ligands redistributes electron density at the hydride-bridged dicopper core, lowering interfragment overlap of occupied orbitals, which facilitates dimer formation in more protonated species. These results highlight the importance of ligand-controlled electronic structure in dictating the aggregation behavior of copper hydride complexes.
AB - Copper(I) hydride complexes often exhibit diverse aggregation behavior that can profoundly influence their structure and reactivity. In this study, we investigate a series of dicopper hydride complexes supported by PNNP expanded pincer ligands that vary in both aggregation and ligand protonation state. Using a combined experimental and computational approach, we examine how these properties correlate and identify key structural and electronic factors that govern aggregation. Our analysis shows that electrostatic stabilization is reduced in charged monomers relative to the neutral system, making dimerization less favorable. At the same time, protonation of the ligands redistributes electron density at the hydride-bridged dicopper core, lowering interfragment overlap of occupied orbitals, which facilitates dimer formation in more protonated species. These results highlight the importance of ligand-controlled electronic structure in dictating the aggregation behavior of copper hydride complexes.
KW - Aggregation
KW - Bimetallic
KW - Copper
KW - Hydride
KW - Interaction energies
UR - https://www.scopus.com/pages/publications/105025027339
U2 - 10.1002/chem.202502507
DO - 10.1002/chem.202502507
M3 - Article
C2 - 41402960
SN - 0947-6539
JO - Chemistry-A European Journal
JF - Chemistry-A European Journal
M1 - e2025GL119720
ER -