Nanocrystal surface functionalization is becoming widespread for applications exploiting fast charge extraction or ultrasensitive redox reactions. A variety of molecular acceptors are being linked to the dot surface via a new generation of organic ligands, ranging from neutral linkers to charge delocalizers. Understanding how core states interact with these molecular orbitals, localized outside the dot, is paramount for optimizing the design of efficient nanocrystal–acceptor conjugates. Here we look at two examples of this interaction: charge transfer to a molecular acceptor linked through either an exciton-delocalizing ligand or a more conventional localizing molecule. We find that such transfer can be described in terms of an Auger-mediat...
Delocalization of excitons promoted by electronic coupling between clusters or quantum dots (QD) cha...
We report Gaussian basis set density functional theory (DFT) calculations of the structure and spect...
Quantum dots (QDs) are quantum-confined, nanometer-size semiconductor crystals that have gained popu...
Colloidal cadmium chalcogenide nanocrystals are usually stabilized in polar solvents by functionaliz...
Photoexcited charge transfer is essential to light energy conversion processes in photosynthesis and...
Abstract: Semiconductor nanocrystals have long been studied as alternatives to traditional bulk semi...
A characteristic property of colloidal semiconductor nanocrystal quantum dots (QDs) is their emissio...
Semiconductor nanocrystals exhibit optical properties that originate from the quantum confinement of...
In multielectron photocatalytic reactions, an absorbed photon triggers charge transfer from the ligh...
Harnessing the energy in photoexcitations requires efficient and controlled charge separation whethe...
Quantum confinement in nanoscale materials allows Auger-type electron–hole energy exchange. We show ...
In large molecular systems such as DNA, supramolecular complexes and dendrimers, functional groups l...
emiconductor and metal nanocrystals with sizes below the Bohr exciton radius exhibit quantum confine...
We have investigated the relationship between driving force and rate for interfacial hole transfer f...
A characteristic property of colloidal semiconductor nanocrystal quantum dots (QDs) is their emissio...
Delocalization of excitons promoted by electronic coupling between clusters or quantum dots (QD) cha...
We report Gaussian basis set density functional theory (DFT) calculations of the structure and spect...
Quantum dots (QDs) are quantum-confined, nanometer-size semiconductor crystals that have gained popu...
Colloidal cadmium chalcogenide nanocrystals are usually stabilized in polar solvents by functionaliz...
Photoexcited charge transfer is essential to light energy conversion processes in photosynthesis and...
Abstract: Semiconductor nanocrystals have long been studied as alternatives to traditional bulk semi...
A characteristic property of colloidal semiconductor nanocrystal quantum dots (QDs) is their emissio...
Semiconductor nanocrystals exhibit optical properties that originate from the quantum confinement of...
In multielectron photocatalytic reactions, an absorbed photon triggers charge transfer from the ligh...
Harnessing the energy in photoexcitations requires efficient and controlled charge separation whethe...
Quantum confinement in nanoscale materials allows Auger-type electron–hole energy exchange. We show ...
In large molecular systems such as DNA, supramolecular complexes and dendrimers, functional groups l...
emiconductor and metal nanocrystals with sizes below the Bohr exciton radius exhibit quantum confine...
We have investigated the relationship between driving force and rate for interfacial hole transfer f...
A characteristic property of colloidal semiconductor nanocrystal quantum dots (QDs) is their emissio...
Delocalization of excitons promoted by electronic coupling between clusters or quantum dots (QD) cha...
We report Gaussian basis set density functional theory (DFT) calculations of the structure and spect...
Quantum dots (QDs) are quantum-confined, nanometer-size semiconductor crystals that have gained popu...