Non-covalent π-π interactions are central to chemical and biological processes, yet the full understanding of their origin that would unite the simplicity of empirical approaches with the accuracy of quantum calculations is still missing. Here we employ a quantum-mechanical Hamiltonian model for van der Waals interactions, to demonstrate that intermolecular electron correlation in large supramolecular complexes at equilibrium distances is appropriately described by collective charge fluctuations. We visualize these fluctuations and provide connections both to orbital-based approaches to electron correlation, as well as to the simple London pairwise picture. The reported binding energies of ten supramolecular complexes obtained from the quan...
This work reviews the increasing evidence that many-body van der Waals (vdW) or dispersion interacti...
Noncovalent interactions are ubiquitous in molecular and condensed-phase environments, and hence a r...
peer reviewedvan der Waals (vdW) dispersion interactions strongly impact the properties of molecules...
Non-covalent π−π interactions are central to chemical and biological processes, yet the full underst...
peer reviewedMutual Coulomb interactions between electrons lead to a plethora of interesting physica...
Quantum-mechanical methods are used for understanding molecular interactions throughout the natural ...
Mutual Coulomb interactions between electrons lead to a plethora of interesting physical and chemica...
peer reviewedVan der Waals (vdW) interactions are ubiquitous in molecules and condensed matter, and ...
Noncovalent interactions are ubiquitous in molecular and condensed-phase environments, and hence a r...
Intermolecular interactions are paramount for the stability, dynamics and response of systems acros...
peer reviewedNon-covalent interactions pervade all matter and play a fundamental role in layered mat...
Noncovalent interactions are ubiquitous in molecular and condensed-phase environments, and hence a r...
This work reviews the increasing evidence that many-body van der Waals (vdW) or dispersion interacti...
Noncovalent interactions are ubiquitous in molecular and condensed-phase environments, and hence a r...
peer reviewedvan der Waals (vdW) dispersion interactions strongly impact the properties of molecules...
Non-covalent π−π interactions are central to chemical and biological processes, yet the full underst...
peer reviewedMutual Coulomb interactions between electrons lead to a plethora of interesting physica...
Quantum-mechanical methods are used for understanding molecular interactions throughout the natural ...
Mutual Coulomb interactions between electrons lead to a plethora of interesting physical and chemica...
peer reviewedVan der Waals (vdW) interactions are ubiquitous in molecules and condensed matter, and ...
Noncovalent interactions are ubiquitous in molecular and condensed-phase environments, and hence a r...
Intermolecular interactions are paramount for the stability, dynamics and response of systems acros...
peer reviewedNon-covalent interactions pervade all matter and play a fundamental role in layered mat...
Noncovalent interactions are ubiquitous in molecular and condensed-phase environments, and hence a r...
This work reviews the increasing evidence that many-body van der Waals (vdW) or dispersion interacti...
Noncovalent interactions are ubiquitous in molecular and condensed-phase environments, and hence a r...
peer reviewedvan der Waals (vdW) dispersion interactions strongly impact the properties of molecules...